WO2016180097A1 - 一种下行数据重复传输方法及设备 - Google Patents
一种下行数据重复传输方法及设备 Download PDFInfo
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- WO2016180097A1 WO2016180097A1 PCT/CN2016/078321 CN2016078321W WO2016180097A1 WO 2016180097 A1 WO2016180097 A1 WO 2016180097A1 CN 2016078321 W CN2016078321 W CN 2016078321W WO 2016180097 A1 WO2016180097 A1 WO 2016180097A1
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- physical downlink
- mapping
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
- H04L5/0057—Physical resource allocation for CQI
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/0626—Channel coefficients, e.g. channel state information [CSI]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/0001—Systems modifying transmission characteristics according to link quality, e.g. power backoff
- H04L1/0006—Systems modifying transmission characteristics according to link quality, e.g. power backoff by adapting the transmission format
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0044—Allocation of payload; Allocation of data channels, e.g. PDSCH or PUSCH
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0091—Signalling for the administration of the divided path, e.g. signalling of configuration information
- H04L5/0092—Indication of how the channel is divided
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/30—Resource management for broadcast services
Definitions
- the present invention relates to the field of communications technologies, and in particular, to a downlink data transmission method and device.
- MTC Machine Type Communication
- LTE Long Term Evolution
- MTC device or MTC terminal
- M2M Machine to Machine
- 3GPP Release 13 projects for the physical layer enhancement of MTC.
- An MTC device (or MTC terminal) may have some of the characteristics of a variety of Machine to Machine (M2M) communication features, such as low mobility, small amount of transmitted data, and insensitivity to communication delays. Very low power consumption, etc.
- M2M Machine to Machine
- a new UE type will be defined, and both uplink and downlink support only 1.4 megahertz (MHz) radio frequency bandwidth.
- Terminals working in some scenarios in existing networks are severely occluded by wireless signals, and signals are greatly attenuated and cannot communicate with the network, if in these scenarios
- the deep coverage of the network will greatly increase the network construction cost.
- a more feasible method to achieve coverage enhancement is to use repeated transmission or similar techniques for existing channels. In theory, a certain degree of coverage gain can be obtained by performing tens to hundreds of repeated transmissions on existing physical channels.
- CSI-RSs can be configured in a given cell, specifically: the terminal assumes 0 or 1 non-zero-power CSI-RS; the terminal assumes zero or more Zero Power (ZP) CSI-RS When some bits of the 16 bits of the ZP CSI-RS configured by the higher layer signaling are 1, the terminal assumes that the corresponding 4-port CSI-RS position is zero power unless these resource elements are configured with non-zero power of high layer signaling (Non -Zero Power, referred to as NZP) CSI-RS overlap.
- the bit corresponds to the 4-port CSI-RS configuration number, and the first bit corresponds to the lowest index number of the CSI-RS.
- the CSI-RS only occurs in the downlink time slot, the regular cyclic prefix (Cyclic Prefix, CP) satisfies the condition shown in Table 1, the extended CP satisfies the condition shown in Table 2, and the configuration period T CSI in the subframe according to the CSI-RS - RS and subframe offset ⁇ CSI-RS determines the transmission in the downlink subframe, as listed in Table 3. That is, the subframe containing the CSI-RS satisfies: Where, "mod" indicates modulo operation, n f denotes the radio frame number, n s denotes a slot number.
- the NZP CSI-RS and the ZP CSI-RS can be respectively configured as the configuration index parameter I CSI-RS in Table 3.
- the terminal assumes that the CSI-RS does not transmit: a special subframe of the type 2 subframe structure in the following cases; CSI-RS and synchronization signals, Physical Broadcast Channel (PBCH), and System Information Block Type 1 , SIB-1) A subframe in which collision occurs; a subframe in which paging information is configured.
- PBCH Physical Broadcast Channel
- SIB-1 System Information Block Type 1
- a Multicast/Multicast Single Frequency Network (MBSFN) subframe is defined.
- MBSFN subframe includes two areas, an MBSFN area and a non-MBSFN area.
- CRSs cell-specific reference signals
- PMCH Physical Multicast Channel
- the non-MBSFN area in the MBSFN subframe may transmit a Physical Downlink Control Channel (PDCCH), and use a CP type transmission consistent with the subframe 0 to schedule a physical uplink shared channel (Physical Uplink). Shared Channel, PUSCH) or Physical Downlink Shared Channel (PDSCH).
- the non-MBSFN subframes in the MBSFN subframes are configurable to be 0, 1, 2, and can be configured as 0 for MBSFN subframes that only transmit PMCH, and 1 or 2 for MBSFN subframes that support PDSCH transmission.
- the configuration is 2, that is, 2 OFDM symbols are reserved for transmitting the PDCCH.
- the size of the control region may be 1, 2, and 3, as shown in Table 4.
- the size of the Downlink Control Information (DCI) area indicated by the Control Format Indicator (CFI) information of the non-MBSFN area transmission in the MBSFN sub-frame and the non-MBSFN area pre-configured by the high layer signaling The size is the same.
- the PDSCH may be transmitted in an MBSFN subframe other than the MBSFN subframe: 1) the upper layer notifies the MBSFN subframe that needs to receive the PMCH; 2) is configured to transmit the positioning reference signals (PRS) and the PRS is only
- PRS positioning reference signals
- the configuration is transmitted in the MBSFN subframe and the subframe 0 uses the regular CP.
- the transmission of the PDSCH in the MBSFN subframe currently only supports the transmission mode 9 and the mode 10 based on the DMRS transmission, as shown in Table 5.
- cross-subframe channel estimation Joint channel estimation
- cross-subframe channel estimation refers to joint channel estimation using reference signals in multiple subframes.
- a typical processing method is to weight-average the results of channel estimation of multiple subframes.
- the data portions of multiple subframes also need to be merged (either symbol level merge or bit level merge).
- the premise of this merging is that the lengths of the transmitted signals in the plurality of subframes used for merging are the same.
- the CSI-RS is transmitted in a specific resource unit (RE, Resource Element) according to a configured period, and the CSI-RS conditions included in different downlink subframes are different, resulting in data transmission being available when resource mapping is performed.
- the number of REs is different.
- the difference between the reference signal and the size of the control region of the MBSFN subframe and the non-MBSFN subframe also causes the number of available REs when the data transmission is performed for resource mapping.
- the above situation will result in data channel coding and rate matching.
- the number of target coding bits is different, that is, data cannot be merged between subframes when multiple subframes are repeatedly transmitted.
- a downlink data repetition transmission method is needed to support data combining when multi-subframe channel estimation is employed.
- the embodiment of the present invention provides a method and a device for repeatedly transmitting downlink data, which are used to solve the problem that when the data transmission is different in the different subframes, the number of available REs is different, and the data cannot be inter-subframe when the data is repeatedly transmitted in multiple subframes.
- the problem of merging is used to solve the problem that when the data transmission is different in the different subframes, the number of available REs is different, and the data cannot be inter-subframe when the data is repeatedly transmitted in multiple subframes.
- a downlink data repetition transmission method including:
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to the calling All resources except the resources corresponding to the reference signal;
- the specific start symbol position is pre-configured by the high layer signaling; or the specific start symbol position is obtained according to the DCI area size of the downlink control information, where the DCI area size indicates CFI according to the control format. acquired.
- processing is performed in units of the subframe group, where the subframe group is composed of a set number of subframes participating in multi-subframe channel estimation, and the sub-frame
- a frame group includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- resource mapping on the physical downlink channel
- a specific start symbol in the first slot of the current subframe starts to map, including:
- the subframe set when the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, when performing resource mapping on the physical downlink channel,
- the specific start symbol position in the first time slot of the current subframe starts to be mapped, and specifically includes:
- determining the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- mapping starts from a starting symbol position determined according to the third symbol number in a first time slot of a current subframe, including:
- the physical downlink is When the channel performs resource mapping, the information on the first A symbols of the physical downlink channel bearer mapped to the start symbol position determined according to the third symbol number in the first slot of the current subframe is discarded. Not mapped or set to 0 or covered by the DCI transmitted on the A symbols, the A number of symbols being the difference between the actual number of symbols of the DCI area of the current subframe and the third number of symbols; or
- the physical downlink is When the channel performs resource mapping, starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and repeatedly mapping part of information in the information carried by the physical downlink channel
- the B symbols are the third symbol number and the current subframe, to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe The difference in the actual number of symbols in the DCI area.
- a subframe group consisting of a set number of subframes participating in multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the mapping is started from a specific start symbol position in the first slot of the current subframe, and is mapped to all resources except the resource corresponding to the call reference signal, and specifically includes:
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to a dedicated solution Adjusting all resources except the resource corresponding to the reference signal DMRS;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- when performing resource mapping on the physical downlink channel from the first time slot of the current subframe
- the specific start symbol position starts to be mapped, and is mapped to all resources except the resource corresponding to the call reference signal, and specifically includes:
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to a dedicated solution Adjusting all resources except the resource corresponding to the reference signal DMRS;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource.
- a subframe group consisting of a set number of subframes participating in multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the method also includes:
- the transmission mode includes at least a demodulation reference signal, a transmission port, and a port number, and Any one or combination of precoding methods
- the method further includes:
- the MBSFN subframe and the non-MBSFN subframe in the subframe set transmitting, by using the same transmission manner, the MBSFN subframe and the non-MBSFN subframe in the subframe set, where the transmission mode includes at least a demodulation reference signal, a transmission port and a port number, and precoding. Any one or combination of the modes.
- the transmission is performed using the same transmission method, including:
- the transmission is performed using a preset transmission method.
- the transmission is performed by using the transmission mode corresponding to the subframe set or the specific subframe in the subframe group, including:
- the transmission is performed by using the transmission mode corresponding to the subframe set or the MBSFN subframe in the subframe group.
- the physical downlink is performed.
- the mapping is started from a specific starting symbol position in the first slot of the current subframe, and is mapped to all resources except the resource corresponding to the calling reference signal, and specifically includes:
- the start symbol position starts mapping, and is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping All the resources except the resources corresponding to the calling reference signal include:
- the start symbol position starts mapping, and is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS.
- the physical downlink channel is used.
- the mapping is started from a specific starting symbol position in the first slot of the current subframe, and is mapped to all resources except the resource corresponding to the calling reference signal, and specifically includes:
- the start symbol position starts mapping, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the start symbol position starts to map, and maps to all the resources except the resource corresponding to the call reference signal, including:
- the start symbol position starts mapping and maps to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS.
- the method when performing resource mapping on the physical downlink channel in a subframe in which the channel state information reference signal CSI-RS resource is configured in the subframe set, the method further includes:
- a downlink data transmission method including:
- the specific start symbol position is pre-configured by the high layer signaling; or the specific start symbol position is obtained according to the DCI area size of the downlink control information, where the DCI area size indicates CFI according to the control format. acquired.
- processing is performed in units of the subframe group, where the subframe group is composed of a set number of subframes participating in multi-subframe channel estimation, and the sub-frame
- the frame group includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe, determining that the physical downlink channel performs a resource mapping from a specific start in the first time slot of the current subframe.
- the symbol position starts to map, including:
- the subframe set when the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, determining that the physical downlink channel performs resource mapping from the current
- the specific start symbol position in the first time slot of the subframe starts to be mapped, and specifically includes:
- determining the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- determining that the physical downlink channel starts mapping when starting resource mapping, starting from a starting symbol position determined according to the third symbol number in a first time slot of a current subframe including:
- the third symbol number is the minimum value of the first symbol number and the second symbol number, determining the physical downlink in a subframe in which the actual symbol number of the DCI region is greater than the third symbol number And performing mapping on the physical downlink channel to the information on the first A symbols starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe when performing resource mapping Discarding unmapped or set to 0 or covered by DCI transmitted on the A symbols, the A number of symbols being the difference between the actual number of symbols of the DCI area of the current subframe and the third number of symbols; or
- the channel starts to map from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and determines that the physical downlink channel performs the resource mapping.
- the partial information in the information carried by the physical downlink channel is repeatedly mapped to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe, the B symbols The number is the difference between the third symbol number and the actual number of symbols of the DCI region of the current subframe.
- determining When performing physical resource mapping the physical downlink channel starts to map from a specific start symbol position in the first slot of the current subframe, and maps to all resources except the resource corresponding to the call reference signal, specifically including :
- the information of the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0 when the resource mapping is performed. Or covered by a CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- determining that the physical downlink channel performs resource mapping from the first time slot of the current subframe determining that the physical downlink channel performs resource mapping from the first time slot of the current subframe.
- Determining, in the non-MBSFN subframe in the subframe set, the information of the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0 when the resource mapping is performed. Or covered by a CRS transmitted on the resource.
- a subframe group consisting of a set number of subframes participating in multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the method also includes:
- the transmission mode includes at least a demodulation reference signal, a transmission port, and a port number, and Any one or combination of precoding methods
- the method further includes:
- the transmission mode includes at least a demodulation reference signal, a transmission port and a port number, and precoding. Any one or combination of the modes.
- the same transmission method is used for receiving, including:
- receiving, by using the transmission mode corresponding to the subframe set or the specific subframe in the subframe group includes:
- Receiving is performed by using the transmission mode corresponding to the subframe set or the MBSFN subframe in the subframe group.
- the specific includes:
- the start symbol position starts to be mapped, and is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the non-multicast/multicast single frequency network MBSFN subframe when the non-multicast/multicast single frequency network MBSFN subframe is included in the subframe set, determining that the physical downlink channel is specific to the first time slot of the current subframe when performing resource mapping
- the starting symbol position starts to map, and maps to all resources except the resource corresponding to the calling reference signal, including:
- the start symbol position starts mapping, and is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS.
- the mapping is started from a specific starting symbol position in the first slot of the current subframe, and is mapped to all resources except the resource corresponding to the calling reference signal, and specifically includes:
- the start symbol position starts mapping, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the subframe set includes only the multicast/multicast single frequency network MBSFN subframe, determining that the physical downlink channel performs specific resource mapping from a specific one of the first time slots of the current subframe.
- the start symbol position starts to map, and maps to all resources except the resource corresponding to the call reference signal, including:
- the start symbol position starts mapping and is mapped to all resources except the resources corresponding to the dedicated demodulation reference signal DMRS.
- the method further includes:
- the method when receiving the physical downlink channel according to the resource mapping manner, the method specifically includes:
- the information on the resource that is not mapped or set to 0 or covered by other signals is discarded when the physical downlink channel performs resource mapping, and is set to 0 or a specific value at the time of reception.
- the determination is set to 0 or a specific value.
- the information on the resource location does not participate in the merger;
- a sender device including:
- a determining module configured to determine a subframe set for repeatedly transmitting a physical downlink channel
- a resource mapping module configured to: when performing resource mapping on the physical downlink channel in each subframe in the determined subframe set, start mapping from a specific start symbol position in a first slot of the current subframe , mapped to all resources except the resources corresponding to the call reference signal;
- a sending module configured to send the physical downlink channel according to the resource mapping manner.
- the specific start symbol position is pre-configured by the high layer signaling; or the specific start symbol position is obtained according to the DCI area size of the downlink control information, where the DCI area size indicates CFI according to the control format. acquired.
- the resource mapping module is specifically configured to:
- the subframe group When the subframe set includes a plurality of subframe groups, processed in units of the subframe group, the subframe group is configured by a set number of subframes participating in multi-subframe channel estimation, and the subframe group includes The multicast/multicast single-frequency network MBSFN subframe and the non-MBSFN subframe are determined according to the first symbol number occupied by the DCI region of the downlink control information of the MBSFN subframe and the second symbol number occupied by the DCI region of the non-MBSFN subframe.
- the downlink control information of the MBSFN subframe is occupied by the DCI region. Determining, by the first symbol number and the second number of symbols occupied by the DCI area of the non-MBSFN subframe, determining a third symbol number occupied by the DCI area of each subframe in the subframe set, and determining the number according to the third symbol number a specific start symbol position of each subframe in the subframe set; when performing resource mapping on the physical downlink channel, starting from the third symbol number in the first slot of the current subframe The symbol position begins to map.
- the resource mapping module is specifically configured to:
- the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the resource mapping module is specifically configured to:
- the physical downlink is When the channel performs resource mapping, the information on the first A symbols of the physical downlink channel bearer mapped to the start symbol position determined according to the third symbol number in the first slot of the current subframe is discarded. Not mapped or set to 0 or covered by the DCI transmitted on the A symbols, the A number of symbols being the difference between the actual number of symbols of the DCI area of the current subframe and the third number of symbols; or
- the physical downlink is When the channel performs resource mapping, starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and repeatedly mapping part of information in the information carried by the physical downlink channel
- the B symbols are the third symbol number and the current subframe, to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe The difference in the actual number of symbols in the DCI area.
- the resource mapping module is specifically configured to:
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to a DMRS corresponding to the dedicated demodulation reference signal Resources on all resources except;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- performing resource mapping on the physical downlink channel in each subframe in the subframe set Mapping from a specific start symbol position in the first slot of the current subframe to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource.
- the sending module is specifically configured to:
- a subframe group consisting of a set number of subframes participating in the multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the MBSFN subframe and the non-MBSFN subframe of the subframe group are transmitted in the same transmission manner, where the transmission mode includes at least a demodulation reference signal, a transmission port and a port number, and a precoding manner. Any one or combination;
- the MBSFN subframe and the non-MBSFN subframe are included in the subframe set, the MBSFN subframe and the non-MBSFN subframe in the subframe set are transmitted in the same transmission manner, where
- the transmission mode includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding method.
- the sending module is specifically configured to:
- the transmission is performed using a preset transmission method.
- the sending module is specifically configured to:
- the transmission is performed by using the transmission mode corresponding to the subframe set or the MBSFN subframe in the subframe group.
- the resource mapping module is specifically configured to:
- mapping starts from a starting symbol position determined according to a DCI region size of a downlink control information of a non-MBSFN subframe in a first slot of a current subframe, and mapping To all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the start symbol position determined according to the DCI region size determined by the downlink control information of the non-MBSFN subframe in the slot starts mapping, and is mapped to a resource other than the common reference signal CRS or the resource corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS. All resources.
- the resource mapping module is specifically configured to:
- each of the subframe groups In the subframe when the resource mapping is performed on the physical downlink channel, the mapping starts from the starting symbol position determined according to the DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, and is mapped to Dedicated demodulation reference signal DMRS corresponding to all resources except resources;
- the subframe set includes only the multicast/multicast single frequency network MBSFN subframe
- when performing resource mapping on the physical downlink channel in each subframe in the subframe set, from the current The start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the subframe starts to be mapped, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS.
- the resource mapping module is further configured to:
- mapping a physical downlink channel bearer to a non-zero power NZP when performing resource mapping on the physical downlink channel in a subframe in which the channel state information reference signal CSI-RS resource is configured in the subframe set The information on the CSI-RS resource is not mapped or set to 0 or is covered by the CSI-RS transmitted on the resource, and the information mapped on the physical downlink channel bearer mapped to the zero-power ZP CSI-RS resource is not mapped. Or set to 0.
- the fourth aspect provides a receiving end device, including:
- a first determining module configured to determine a subframe set for repeatedly transmitting a physical downlink channel
- a second determining module configured to determine, in each subframe in the determined subframe set, a specific start symbol position in a first time slot of the current subframe when the physical downlink channel performs resource mapping Start mapping, mapping to all resources except the resources corresponding to the calling reference signal;
- a receiving module configured to receive the physical downlink channel according to the resource mapping manner.
- the specific start symbol position is pre-configured by the high layer signaling; or the specific start symbol position is obtained according to the DCI area size of the downlink control information, where the DCI area size indicates CFI according to the control format. acquired.
- the second determining module is specifically configured to:
- the subframe group is composed of a set number of subframes participating in multi-subframe channel estimation, and the subframe group is When the multicast/multicast single-frequency network MBSFN subframe and the non-MBSFN subframe are included, the first symbol number occupied by the DCI region of the downlink control information of the MBSFN subframe and the second symbol number occupied by the DCI region of the non-MBSFN subframe, Determining a third symbol number occupied by a DCI region of each subframe in the subframe group, determining a specific start symbol position of each subframe in the subframe group according to the third symbol number; determining the When performing physical resource mapping, the physical downlink channel starts to map from the start symbol position determined according to the third symbol number in the first time slot of the current subframe;
- the downlink control information of the MBSFN subframe is occupied by the DCI region. Determining, by the first symbol number and the second number of symbols occupied by the DCI area of the non-MBSFN subframe, determining a third symbol number occupied by the DCI area of each subframe in the subframe set, and determining the number according to the third symbol number a specific start symbol position of each subframe in the subframe set; determining that the physical downlink channel is determined from the third symbol number in the first slot of the current subframe when performing resource mapping The starting symbol position begins to map.
- the second determining module is specifically configured to:
- the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the second determining module is specifically configured to:
- the third symbol number is the minimum value of the first symbol number and the second symbol number, determining the physical downlink in a subframe in which the actual symbol number of the DCI region is greater than the third symbol number
- the channel is performing resource mapping, it will be The information on the first A symbols of the physical downlink channel bearer mapped to the start symbol position determined according to the third symbol number in the first slot of the current subframe is not mapped or set to 0 or And transmitting, by the DCI, the number of A symbols is the difference between the actual number of symbols of the DCI area of the current subframe and the number of the third symbols; or
- the channel starts to map from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and determines that the physical downlink channel performs the resource mapping.
- the partial information in the information carried by the physical downlink channel is repeatedly mapped to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe, the B symbols The number is the difference between the third symbol number and the actual number of symbols of the DCI region of the current subframe.
- the second determining module is specifically configured to:
- the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe, in the subframe In each subframe in the group, determining that the physical downlink channel is mapped from a specific start symbol position in a first slot of a current subframe when performing resource mapping, and mapping to a dedicated demodulation reference signal DMRS All resources except the corresponding resources; and,
- the information of the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0 when the resource mapping is performed. Or covered by a CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, determining, in each subframe in the subframe set, that the physical downlink channel is performing resources Mapping, starting from a specific start symbol position in the first slot of the current subframe, and mapping to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- Determining, in the non-MBSFN subframe in the subframe set, the information of the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0 when the resource mapping is performed. Or covered by a CRS transmitted on the resource.
- the receiving module is specifically configured to:
- a subframe group consisting of a set number of subframes participating in the multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the MBSFN subframe and the non-MBSFN subframe of the subframe group are received by using the same transmission mode, where the transmission mode includes at least a demodulation reference signal, a transmission port and a port number, and a precoding manner. Any one or combination;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the same is adopted for the MBSFN subframe and the non-MBSFN subframe in the subframe set.
- the transmission mode is received, wherein the transmission mode includes at least a demodulation reference signal, a transmission port and a port number, and a precoding method. Any one or combination of them.
- the receiving module is specifically configured to:
- the receiving module is specifically configured to:
- Receiving is performed by using the transmission mode corresponding to the subframe set or the MBSFN subframe in the subframe group.
- the second determining module is specifically configured to:
- the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes only the non-multicast/multicast single frequency network MBSFN subframe
- the subframe group Determining, in each subframe, that the physical downlink channel starts mapping when starting resource mapping, starting from a start symbol position determined according to a DCI region size of a downlink control information of a non-MBSFN subframe in a first slot of the current subframe. Mapping to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the non-multicast/multicast single-frequency network MBSFN subframe when the non-multicast/multicast single-frequency network MBSFN subframe is included in the subframe set, determining, in each subframe in the subframe set, that the physical downlink channel is performing resource mapping, Mapping from the start symbol position determined according to the downlink control information DCI region size of the non-MBSFN subframe in the first slot of the current subframe, mapping to the common reference signal CRS or the common reference signal CRS and dedicated demodulation
- the reference signal DMRS corresponds to all resources except resources.
- the second determining module is specifically configured to:
- each of the subframe groups In the subframe, determining that the physical downlink channel is mapped from the start symbol position determined according to the DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, when performing resource mapping, All resources except the resources corresponding to the dedicated demodulation reference signal DMRS;
- the subframe set includes only the multicast/multicast single frequency network MBSFN subframe
- determining that the physical downlink channel is performing resource mapping The start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the current subframe starts to be mapped, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS.
- the second determining module is further configured to:
- a channel state information reference signal CSI-RS resource Determining, in a subframe in the set of subframes, a channel state information reference signal CSI-RS resource, mapping, by the physical downlink channel, the physical downlink channel bearer to a non-zero power NZP when performing resource mapping
- the information on the CSI-RS resource is not mapped or set to 0 or is covered by the CSI-RS transmitted on the resource, and the information mapped on the physical downlink channel bearer mapped to the zero-power ZP CSI-RS resource is not mapped. Or set to 0.
- the receiving module is specifically configured to:
- the physical downlink channel When receiving the physical downlink channel according to the resource mapping manner, the physical downlink channel discards information on a resource that is not mapped or set to 0 or covered by other signals when performing resource mapping, and is set to 0 when receiving. Or a specific value.
- the receiving module is further configured to:
- the downlink data when the downlink data is repeatedly transmitted, determining a subframe set for repeatedly transmitting the physical downlink channel, and performing resource mapping on the physical channel in each subframe in the subframe set,
- the specific start symbol position in the first time slot of the current subframe starts to be mapped, and is mapped to all resources except the resource corresponding to the call reference signal, and the physical downlink channel is sent according to the resource mapping manner, thereby ensuring data.
- the number of available REs when transmitting resource mapping in different subframes is the same, so that data can be merged between subframes when multiple subframes are repeatedly transmitted.
- FIG. 1 is a schematic flowchart of a method for transmitting downlink data repeatedly by a transmitting end according to an embodiment of the present invention
- FIG. 2 is a schematic flowchart of a method for a downlink end data to be repeatedly transmitted by a receiving end according to an embodiment of the present invention
- FIG. 3 is a schematic diagram of RE occupancy in a non-MBSFN subframe without a CSI-RS according to an embodiment of the present invention
- FIG. 4 is a schematic diagram of RE occupancy in a non-MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- FIG. 5 is a schematic diagram of RE occupancy in an MBSFN subframe without a CSI-RS according to an embodiment of the present invention
- FIG. 6 is a schematic diagram of RE occupancy in an MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- FIG. 7 is a schematic diagram of PDSCH resource allocation according to an embodiment of the present invention.
- FIG. 8 is a schematic diagram of a data RE case 1 in a non-MBSFN subframe without a CSI-RS according to an embodiment of the present invention.
- FIG. 9 is a schematic diagram of a data RE case 1 in an MBSFN subframe without a CSI-RS according to an embodiment of the present invention.
- FIG. 10 is a schematic diagram of a data RE situation 2 in a non-MBSFN subframe without a CSI-RS according to an embodiment of the present invention
- FIG. 11 is a schematic diagram of a data RE situation 1 in a non-MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- FIG. 12 is a schematic diagram of a data RE situation 1 in an MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- FIG. 13 is a schematic diagram of a data RE situation 2 in an MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- FIG. 14 is a schematic diagram of a data RE situation 2 in a non-MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- 15 is a schematic diagram of a data RE situation 3 in a non-MBSFN subframe in which a CSI-RS exists in an embodiment of the present invention
- 16 is a schematic structural diagram of a device at a transmitting end according to an embodiment of the present invention.
- FIG. 17 is a schematic structural diagram of another device at a transmitting end according to an embodiment of the present invention.
- FIG. 18 is a schematic structural diagram of a receiving end device according to an embodiment of the present invention.
- FIG. 19 is a schematic structural diagram of another receiving end device according to an embodiment of the present invention.
- the detailed method for the downlink data to be repeatedly transmitted by the transmitting end is as follows:
- Step 101 Determine a subframe set for repeatedly transmitting a physical downlink channel.
- Step 102 In each subframe in the determined subframe set, when performing resource mapping on the physical downlink channel, mapping from a specific starting symbol position in a first slot of the current subframe, mapping to In addition to demodulating all resources except the resources corresponding to the reference signal.
- the resource that is, the resource mapping manner determined in the foregoing manner, determines the resources that can be used to transmit the physical downlink channel in the subframe, and obtains the number of encoded bits of the physical downlink channel according to the determined number of resources and the modulation mode, and the physical downlink channel is obtained.
- the carried transport block performs channel coding and rate matching according to the above-mentioned encoded number of bits, and then performs modulation and other corresponding processing (such as scrambling, precoding, etc.) on the encoded bit sequence, and obtains the complex symbol sequence according to the foregoing resource mapping manner. , mapped to the corresponding resource in the sub-frame.
- the mapping starts from a specific start symbol position in the first slot of the current subframe, so that when the resource mapping is performed on the physical downlink channel, only the demodulation reference signal and the control region are reserved.
- the resource that is, the reserved resource is not used for data transmission of the physical downlink channel, and other resources assume data transmission available for the physical downlink channel.
- the manner in which the specific starting symbol position is determined includes, but is not limited to, the following manners:
- the specific starting symbol position is pre-configured by high layer signaling
- the specific start symbol position is obtained according to a Downlink Control Information (DCI) area size, and the DCI area size is obtained according to a Control Format Indication (CFI).
- DCI Downlink Control Information
- CFI Control Format Indication
- the size of the DCI area is the size of the control area; in the MBSFN subframe, the size of the control area This is the size of the non-MBSFN area.
- resource mapping is performed using the starting symbol position configured by the high layer signaling, and the MBSFN subframe and the non-MBSFN sub- The frames all use the starting symbol position of the higher layer signaling configuration.
- the network side needs to consider the control region requirements of the MBSFN subframe and the non-MBSFN subframe, and performs unified configuration.
- the MBSFN subframe requires two symbol control region sizes, and the non-MBSFN subframe. A size of 3 symbol control regions is required.
- the high layer signaling should notify the UE to start transmitting data information from the 4th symbol, if the MBSFN subframe is taken.
- the mapping starts from a specific start symbol position in the first slot of the current subframe, and is mapped to all resources except the resource corresponding to the call reference signal, that is, only the demodulation is reserved.
- the reference signal and the resource corresponding to the control area are used, and the reserved resource is not used for data transmission of the physical downlink channel, and other resources are assumed to be used for data transmission of the physical downlink channel, including but not limited to the following Implementation:
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- determining the subframe group according to the first symbol number occupied by the downlink control information DCI region of the MBSFN subframe and the second symbol number occupied by the DCI region of the non-MBSFN subframe The third symbol number occupied by the DCI area of each subframe, determining a specific start symbol position of each subframe in the subframe group according to the third symbol number; when performing resource mapping on the physical downlink channel And mapping starts from a starting symbol position determined according to the third number of symbols in the first slot of the current subframe.
- the processing mode b directly processes the subframe set, that is, when the subframe set includes an MBSFN subframe and a non-MBSFN subframe, the first symbol number occupied by the DCI region according to the downlink control information of the MBSFN subframe And determining, by the number of second symbols occupied by the DCI area of the non-MBSFN subframe, determining a third symbol number occupied by the DCI area of each subframe in the subframe set, and determining, according to the third symbol number, the subframe set a specific start symbol position of each subframe; when performing resource mapping on the physical downlink channel, starting from a start symbol position determined according to the third symbol number in the first slot of the current subframe .
- the first symbol number is the number of control region symbols of the MBSFN subframe configured by the system (that is, the non-MBSFN region size), and the second symbol number is the system configuration.
- the number of control region symbols of the non-MBSFN subframe, the third symbol number being the minimum or maximum of the first symbol number and the second symbol number.
- the third symbol number is the minimum value of the first symbol number and the second symbol number
- the physical downlink is performed.
- the channel performs resource mapping
- the data information corresponding to the RE position of the A symbol in the control region is punctured, that is, when channel coding and rate matching are performed on the TB carried by the physical downlink channel, it is assumed that the third symbol number is corresponding.
- the size of the control area is used to determine the number of REs available for the data, thereby calculating the target bit value of the rate matching.
- the available RE number is calculated according to the uniform control area size, thereby The same rate matching target bit value is obtained, and when the resource mapping is actually performed, for the subframe in which the number of symbols of the actual control region is greater than the number of symbols of the third symbol, the data after the rate matching is assumed to correspond to the third symbol number.
- the size of the control area is used for resource mapping, the actual data information is mapped to the A symbols in the control area, but this A character In the above, there is a DCI transmission.
- the data on the A symbols needs to be punctured; specifically, in the subframe where the actual symbol number of the DCI region is greater than the third symbol number,
- mapping the physical downlink channel bearer to the first A symbols starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe The information discarding is not mapped or set to 0 or covered by the DCI transmitted on the A symbols. This is because the A symbols are originally resource locations for transmitting DCI, and are used in order not to affect the original DCI transmission.
- the DCI information transmitted on the A symbols overwrites the data information mapped on the A symbols, that is, the puncturing of the data information on the A symbols, and the number of A symbols is the DCI area of the current subframe. The difference between the actual number of symbols and the third number of symbols.
- the physical downlink is performed.
- resource mapping is started from the symbol of the current subframe numbered #P, and further, the partial result in the rate matching result is repeatedly mapped to the symbol numbered #P-1 in the subframe.
- the third symbol number corresponds to Controlling the size of the area to determine the number of REs available for the data, thereby calculating the target bit value of the rate matching, even if the actual control area size of the different subframes is different, the number of available REs is calculated according to the size of the unified control area, thereby obtaining The target bit value of the same rate matching, and when the resource mapping is actually performed, the subframe number of the actual control area is smaller than the number of symbols of the third symbol, from the first The position corresponding to the number of symbols starts to map.
- the B symbols are not used for data transmission, and the B symbols do not belong to the actual control area of the subframe.
- the rate can be matched.
- the partial data in the subsequent data is repeatedly mapped on the B symbols to obtain a diversity gain; specifically, the physical downlink channel is performed in a subframe in which the actual symbol number of the DCI region is smaller than the third symbol number.
- the B symbols are the third symbol number and the current subframe DCI The difference between the actual number of symbols in the area.
- the demodulation reference signal is a dedicated demodulation reference signal (DMRS), that is, only the control region and each antenna where the DMRS is transmitted are reserved.
- DMRS dedicated demodulation reference signal
- the RE resource corresponding to the port the other resources can be assumed to be used for the physical downlink channel for data transmission, that is, when the resource mapping of the physical downlink channel is performed, the specific start symbol from the first time slot of the current subframe
- the location starts mapping and maps to all resources except the resources corresponding to the DMRS.
- non-MBSFN subframe in a subframe group consisting of a set number of subframes participating in the multi-subframe channel estimation in the subframe set, or a non-MBSFN subframe in the subframe set carrying the physical downlink channel
- the transport block performs channel coding and rate matching, it is assumed that there is no CRS RE, and when the physical downlink channel is resource mapped in the subframe, the data information mapped on the CRS RE is punctured, that is, carried on the physical downlink channel.
- the TB When the TB performs channel coding and rate matching, it is assumed that only the control area and the resources corresponding to the DMRS are reserved to determine the number of REs available for the data, that is, all the resources except the control area and the DMRS resources can be used for the physical downlink channel transmission.
- the number of available REs of the physical downlink channel transmission thereby calculating the target bit value of the rate matching, even if there is no CRS outside the control region in the MBSFN subframe, and there is CRS outside the control region in the non-MBSFN subframe, but assuming non-MBSFN
- the CRS resource in the non-MBSFN subframe is also calculated in the available RE number of the physical downlink channel transmission, so that the MBSFN subframe and the non-MB
- the SFN subframes have the same rate-matched target bit value, and when the resource mapping is actually performed, the CRS transmission exists in some resources of the data transmission in the non-MBSFN subframe.
- the CRS needs to be corresponding.
- the mapped data on the RE is punctured. Specifically, there are two ways to deal with it:
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- each subframe in the subframe group when resource mapping is performed on the physical downlink channel, from the current subframe
- the specific start symbol position in one slot starts to be mapped, and is mapped to all resources except the resources corresponding to the DMRS, and the current subframe may be an MBSFN subframe or a non-MBSFN subframe; and, in the subframe In the non-MBSFN subframe in the group, when performing resource mapping on the physical downlink channel, it is assumed that there is no CRS resource, and mapping is started from a specific start symbol position in the first slot of the current subframe, and mapped to All the resources except the resources corresponding to the DMRS, and the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0 or covered by the CRS transmitted on the resource, which is Because the resource was originally CRS transmission resource, in order not to affect the transmission
- the processing mode b directly processes the subframe set, that is, when the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, in the subframe set In each sub-frame, to the physics
- mapping starts from a specific start symbol position in the first slot of the current subframe, and maps to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the non-MBSFN subframe in the subframe set when performing resource mapping on the physical downlink channel, it is assumed that there is no CRS resource, and mapping starts from a specific start symbol position in the first slot of the current subframe.
- mapping to all resources except the resources corresponding to the DMRS, and discarding the information on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0 or by the CRS transmitted on the resource Coverage, because the resource is originally a resource for transmitting CRS.
- the CRS overwritten by the resource is overwritten with the data information mapped on the resource, that is, the resource location is implemented. Punching of data information.
- each of the subframe group or the subframe set The number of symbols in the control region of the subframe is the number of control region symbols configured in the non-MBSFN subframe, that is, the control region configured to reserve the non-MBSFN subframe when channel coding and rate matching are performed on the transport block carried by the physical downlink channel.
- the number of symbols in the control region of the subframe is the number of control region symbols configured in the non-MBSFN subframe, that is, the control region configured to reserve the non-MBSFN subframe when channel coding and rate matching are performed on the transport block carried by the physical downlink channel.
- the demodulation reference signal in each subframe is a CRS, or if the physical downlink channel uses a DMRS-based transmission scheme, the demodulation reference signal in each subframe includes both a CRS and a DMRS, that is, a physical downlink channel bearer.
- the transport block needs to reserve the RE corresponding to each antenna port where the CRS is located for channel coding and rate matching. If there is DMRS (such as using transmission mode 9 and transmission mode 10), the transmission of the physical downlink channel bearer When the block performs channel coding and rate matching, it is also necessary to reserve the RE corresponding to each antenna port where the DMRS is located.
- the CRS transmission exists in each subframe, and the size of the control region is the size of the control region configured by the non-MBSFN subframe. Therefore, the transmission obtained according to the resource mapping manner assumed above is used.
- the number of available REs of the physical downlink channel is the same in each sub-frame.
- the CRS resource is reserved for the resource mapping, and the size of the reserved control area is the actual control area size of the sub-frame.
- the data carried by the downlink channel is punctured.
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- subframe groups that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- the downlink control information DCI region size determined start symbol position start mapping is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS.
- the processing mode b directly processes the subframe set, that is, when the non-MBSFN subframe is included in the subframe set, when performing resource mapping on the physical downlink channel, in the subframe set In each subframe, when performing resource mapping on the physical downlink channel, downlink from the non-MBSFN subframe in the first slot of the current subframe
- the start information symbol of the control information DCI region size determination starts mapping, and is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS.
- each subframe in the subframe set or the subframe group The number of symbols in the control region is the number of control region symbols configured in the MBSFN subframe, that is, the RE corresponding to the control region configured in the MBSFN subframe is required to perform channel coding and rate matching on the transport block carried by the physical downlink channel.
- the demodulation reference signal in each subframe is a DMRS, that is, the channel coding and rate matching of the transport block carried by the physical downlink channel needs to reserve the RE corresponding to each antenna port where the DMRS is located.
- the control region size is the size of the control region configured in the MBSFN subframe, and both are demodulated based on the DMRS, therefore, according to the above assumption
- the number of available REs of the physical downlink channel obtained by the resource mapping method is the same in each subframe. Due to the resource mapping, the DMRS resources are reserved by itself, and the reserved control area size is the actual control of the subframe. The area size, so there is no need to punct the data carried by the physical downlink channel.
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- subframe groups that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- the processing mode b directly processes the subframe set, that is, when only the multicast/multicast single frequency network MBSFN subframe is included in the subframe set, in each subframe in the subframe set. And performing resource mapping on the physical downlink channel, starting from a start symbol position determined according to a DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, and mapping to a dedicated demodulation
- the reference signal DMRS corresponds to all resources except resources.
- first to fourth embodiments may be used in combination, and for example, the first and second embodiments may be used at the same time.
- the transport block carried by the physical channel is carried in the subframe in which the CSI-RS resource is configured.
- channel coding and rate matching it is assumed that there is no CSI-RS resource unit RE, and when resource mapping is performed on the physical channel in the subframe, data information corresponding to the CSI-RS RE position is punctured; that is, physical
- channel coding and rate matching are performed on the TB carried by the downlink channel, it is assumed that only the control area and the resources corresponding to the demodulation reference signal (one or more of CRS and DMRS) are reserved for resource mapping to determine the number of REs available for data, that is, All other resources except the control region and the resources of the demodulation reference signal can be used for the physical downlink channel transmission, that is, the resources of the CSI-RS are also calculated under the physics.
- the available RE number of the physical downlink channel transmission is obtained, thereby calculating the target bit value of the rate matching, so that the subframe including the CSI-RS and the subframe not including the CSI-RS are obtained.
- the target bit value of the same rate is matched, and when the resource mapping is actually performed, CSI-RS transmission exists on some resources of the data transmission in the subframe including the CSI-RS, in order to avoid the influence on the CSI-RS, it is required
- the data mapped on the RE corresponding to the CSI-RS is punctured; specifically, in the subframe configured with the CSI-RS resource, the CSI-RS resource includes a ZP CSI-RS resource and/or an NZP CSI-RS resource.
- mapping is started from a specific start symbol position in the first slot of the current subframe, and mapped to the corresponding reference signal in addition to the call reference signal. All the resources except the resources, and the information mapped on the physical downlink channel bearer mapped to the NZP CSI-RS resource is not mapped or set to 0 or covered by the CSI-RS transmitted on the resource, that is, the resource Originally for transmission CSI-RS In order to not affect the original CSI-RS transmission, the CSI-RS information transmitted on the resource is overwritten with the data information mapped on the resource, that is, the data information on the resource mapping location is punched.
- the information on the physical downlink channel bearer mapped to the ZP CSI-RS resource is not mapped or set to 0, that is, the resource is originally a vacant resource that the current UE does not send any information, and is reserved for other UEs.
- the CSI-RS is sent on the resource to avoid mutual interference between the UEs.
- the information on the location is discarded or not set to 0, that is, the resource mapping is implemented. Punch of data information on the location.
- Step 103 Send the physical downlink channel according to the resource mapping manner.
- the same transmission scheme is used for transmission in the MBSFN subframe and the non-MBSFN subframe, for example, based on the same reference signal for demodulation, such as demodulation based on DMRS, the transmission port and the port number are the same, and the same pre-preparation is used.
- the coding mode is as follows: single-port transmission on the same antenna port, or transmission diversity transmission using the same C antenna ports, or random beamforming using the same C antenna ports (Random Beam Forming, RBF) transmission, or spatial multiplexing transmission using the same port and number of ports (layers).
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- the MBSFN subframe and the non-MBSFN subframe are included, the MBSFN subframe and the non-MBSFN subframe that belong to the same subframe group are transmitted in the same transmission manner, where the transmission mode includes at least Decompose any one or combination of reference signal, transmission port and port number, and precoding method.
- Embodiment 2 directly processing the subframe set, that is, when the subframe set includes an MBSFN subframe and a non-MBSFN subframe, for the MBSFN subframe in the subframe set, and the The non-MBSFN subframes are transmitted in the same transmission manner, and the transmission manner includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding manner.
- the manner of determining the transmission mode of the MBSFN subframe and the non-MBSFN subframe includes, but is not limited to, the following two types:
- the transmission is performed by using the transmission mode corresponding to the subframe set or the specific subframe in the subframe group.
- the transmission is performed by using the transmission mode corresponding to the subframe set or the first subframe of the subframe group;
- the transmission is performed according to the transmission mode 9, the DCI format 1A, and the transmission mode scheduled in the non-MBSFN subframe, that is, based on the CRS, if the number of antenna ports of the PBCH is 1, the single antenna port is used for transmission, otherwise the transmission is used.
- Diversity transmission if the number of antenna ports of the PBCH is 1, the single antenna port is used for transmission, otherwise the transmission is used.
- the transmission mode 9 is scheduled to be used, and the scheduling signaling uses the DCI format 1A, and the subframe is an MBSFN subframe, then all the children in the subframe set.
- the transmission is performed according to the transmission mode 9, the DCI format 1A, and the transmission mode scheduled in the MBSFN subframe, that is, based on the DMRS, and the antenna port 7 is transmitted using the single antenna port.
- the transmission mode 9 is scheduled to be used, and the scheduling signaling uses the DCI format 2C, and all the subframes in the subframe set are in accordance with the transmission mode 9,
- the number of antenna ports notified in the DCI format 2C scheduling signaling is transmitted, that is, based on the DMRS, a maximum of 8 layers of spatial multiplexing transmission is performed on some or all of the antenna ports 7 to 14.
- the transmission is performed by using the transmission mode corresponding to the MBSFN subframe in the subframe set or the subframe group.
- DMRS-based single antenna port 7 or 8 transmission or, based on DMRS, a maximum of 8 layers of spatial multiplexing transmission is performed on some or all of antenna ports 7-14.
- the transmission is performed by using a preset transmission mode.
- the preset transmission mode is: using DMRS-based single antenna port 7 or 8 transmission, preferably, using DCI format 1A to schedule one transmission block transmission; or, using DMRS-based D antenna port random beam assignment Modewise transmission, preferably, one transmission block transmission is scheduled using DCI format 1A; or, according to the number of DMRS antenna ports indicated by the scheduling signaling, a maximum of 8 layers of space is performed in some or all of the antenna ports 7-14 Multiplex transmission, preferably, 1 or 2 transport block transmissions are scheduled using DCI format 2C/2D.
- the detailed method for the downlink data transmission by the receiving end is as follows:
- Step 201 Determine a subframe set for repeatedly transmitting a physical downlink channel.
- Step 202 Determine, in each subframe in the determined subframe set, that the physical downlink channel starts mapping from a specific start symbol position in a first slot of the current subframe when performing resource mapping, and mapping Go to all resources except the one corresponding to the resource that calls the reference signal.
- the corresponding resource that is, the resource mapping manner according to the above assumption, determines resources that can be used to transmit the physical downlink channel in the subframe, acquires data information at the resource locations, performs demodulation and corresponding processing (such as descrambling and de-preprocessing) Encoding, etc., and obtaining the number of encoded bits of the physical downlink channel according to the determined number of resources and the modulation mode, and performing transmission rate matching and channel decoding on the transport block carried by the physical downlink channel according to the number of encoded bits.
- Transport block determines resources that can be used to transmit the physical downlink channel in the subframe, acquires data information at the resource locations, performs demodulation and corresponding processing (such as descrambling and de-preprocessing) Encoding, etc.
- the specific start symbol position is pre-configured by high layer signaling; or the specific start symbol position is obtained according to a DCI area size, which is obtained according to CFI.
- a DCI area size which is obtained according to CFI.
- the physical downlink channel when determining the physical downlink channel, starts to map from a specific start symbol position in the first time slot of the current subframe, that is, only the demodulation reference signal and the control are reserved.
- the resources corresponding to the area, the reserved resources are not used for data transmission of the physical downlink channel, and other resources are assumed to be used for data transmission of the physical downlink channel, including but not limited to the following different implementation manners according to specific circumstances:
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- determining that the physical downlink channel is used for resource mapping according to the first symbol number occupied by the DCI region of the downlink control information of the MBSFN subframe and the DCI region of the non-MBSFN subframe.
- a second symbol number determining a third symbol number occupied by a DCI region of each subframe in the subframe group, and determining, according to the third symbol number, a specific start symbol of each subframe in the subframe group Positioning: determining that the physical downlink channel starts mapping when starting resource mapping, starting from a starting symbol position determined according to the third symbol number in a first slot of a current subframe.
- the processing mode b directly processes the subframe set, that is, when the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, determining that the physical downlink channel is performing resource mapping Determining, according to the first symbol number occupied by the downlink control information DCI region of the MBSFN subframe and the second symbol number occupied by the DCI region of the non-MBSFN subframe, determining the DCI region occupied by each subframe in the subframe set a three-symbol number, determining a specific start symbol position of each subframe in the subframe set according to the third symbol number; determining that the physical downlink channel is from the first one of the current subframe when performing resource mapping The mapping of the starting symbol positions determined according to the third number of symbols in the slot begins.
- the first symbol number is the number of control region symbols of the MBSFN subframe configured by the system (that is, the non-MBSFN region size), and the second symbol number is a non-MBSFN sub-system configured by the system.
- the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the third symbol number is the minimum value of the first symbol number and the second symbol number, determining that the actual symbol number of the control region is greater than the third symbol number, determining that the physical downlink is
- the channel performs resource mapping the data information corresponding to the RE positions of the A symbols in the control region is punctured, that is, the physical downlink channel is determined.
- the number of REs available for the data is determined according to the size of the control region corresponding to the third symbol number, data is received on the available REs, and the target bit value of the rate matching is calculated, even if The actual control area size of different subframes is different, but the available RE number is calculated according to the unified control area size, so that the same rate matching target bit value is obtained, and when the actual resource mapping is performed, the actual control area is If the number of symbols is greater than the number of symbols of the third symbol, the data of the rate matching is assumed to be mapped according to the size of the control region corresponding to the third symbol number, and the actual data information is mapped to the A symbols in the control region.
- DCI transmission there is DCI transmission on the A symbols.
- the data on the A symbols needs to be punctured; specifically, the actual number of symbols in the DCI region is larger than the third symbol. Determining, in the subframe of the number, mapping the physical downlink channel bearer to the physical downlink channel when performing resource mapping The information on the first A symbols starting from the start symbol position determined according to the third symbol number in the first slot of the previous subframe is not mapped or set to 0 or transmitted on the A symbols.
- DCI coverage that is, the A symbols are originally resource locations for transmitting DCI.
- the DCI information transmitted on the A symbols overwrites the data information mapped on the A symbols, that is, The data information on the A symbols is punctured, and the number of A symbols is the difference between the actual number of symbols in the DCI region of the current subframe and the third symbol number.
- the third symbol number is the maximum value of the first symbol number and the second symbol number, determining that the actual symbol number of the control region is smaller than the third symbol number, determining that the physical downlink is
- resource mapping is started from the symbol of the current subframe numbered #P, and further, the partial result in the rate matching result is determined to be repeatedly mapped to the symbol numbered #P-1 in the subframe.
- P the third symbol number, that is, when channel coding and rate matching are performed on the TB carried by the physical downlink channel, it is assumed that the symbol number corresponds to the third symbol number.
- Control area size to determine the number of REs available for data, receive data on these available REs, and calculate the target bit value for rate matching, even if the actual control area size of different subframes is different, but according to the unified control area
- the size is used to calculate the available RE number, so that the same rate matching target bit value is obtained, and when the resource mapping is actually performed, the number of symbols for the actual control region is smaller than The subframe of the third symbol and the number of symbols starts to map from the position corresponding to the third symbol number, and actually, the B symbols are vacated for data transmission, and the B symbols do not belong to the actual subframe.
- part of the data in the rate matched data may be repeatedly mapped on the B symbols to obtain a diversity gain; specifically, the actual number of symbols in the DCI area is smaller than the third symbol. Determining, in the subframe of the number, the mapping of the starting symbol position determined according to the third symbol number in the first time slot of the current subframe when the resource mapping is performed, and determining the The physical downlink channel repeatedly maps part of the information carried by the physical downlink channel to the front of the start symbol position determined according to the third symbol number in the first slot of the current subframe when resource mapping is performed. On the B symbols, the B symbols are the difference between the third symbol number and the actual symbol number of the DCI region of the current subframe.
- the demodulation reference signal is determined to be a DMRS, that is, it is determined that the transmitting end reserves only the control region and the DMRS when the resource is mapped.
- the RE resource corresponding to each antenna port where the transmission is located other resources may be assumed to be used for data transmission on the physical downlink channel, that is, when the resource mapping of the physical downlink channel is determined, the first one from the current subframe is determined.
- the specific start symbol position in the time slot starts to be mapped, and is mapped to all resources except the resources corresponding to the DMRS; it is determined that the transmitting end does not exist when performing channel coding and rate matching on the transport block carried by the physical downlink channel.
- CRS RE and determining that the transmitting end performs resource mapping on the physical channel in the subframe, and puncturing the data information corresponding to the location of the CRS RE, that is, determining that the transmitting end performs channel coding on the TB carried by the physical downlink channel.
- the rate it is assumed that only the control area and the resources corresponding to the DMRS are reserved to determine the number of REs available for the data, that is, all the resources except the control area and the DMRS resources.
- Both can be used for the physical downlink channel transmission, obtain the available RE number of the physical downlink channel transmission, receive data on the available REs, and calculate the target bit value of the rate matching, even if there is no control area outside the MBSFN subframe.
- the CRS is also present in the CRS, but not in the control region of the MBSFN subframe. However, it is assumed that there is no CRS in the non-MBSFN subframe, that is, the CRS resource in the non-MBSFN subframe is also calculated in the available RE number of the physical downlink channel transmission.
- the MBSFN subframe and the non-MBSFN subframe get the same rate matching target bit value, and when the resource mapping is actually performed, the CRS transmission exists on some resources of the data transmission in the non-MBSFN subframe, in order to avoid the CRS.
- the impact of the data on the RE corresponding to the CRS needs to be punctured.
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- determining, in each subframe in the subframe group, the specific time in the first slot of the current subframe when performing resource mapping on the physical downlink channel The start symbol position starts to be mapped, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS, and the current subframe may be an MBSFN subframe or a non-MBSFN subframe;
- the processing mode b directly processes the subframe set, that is, when the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, in the subframe set In each subframe, determining that the physical downlink channel is mapped from a specific start symbol position in a first slot of a current subframe when performing resource mapping, and mapping to a resource corresponding to the dedicated demodulation reference signal DMRS All resources except; and,
- a physical downlink channel when performing resource mapping There is no CRS resource, it is determined that the mapping starts from a specific start symbol position in the first slot of the current subframe, is mapped to all resources except the resources corresponding to the DMRS, and it is determined that the physical downlink channel is in progress.
- the information mapped on the physical downlink channel bearer mapped to the CRS resource is not mapped or set to 0 or covered by the CRS transmitted on the resource.
- each of the subframe group or the subframe set The number of symbols of the control region in the subframe is the number of control region symbols configured by the non-MBSFN subframe, that is, the transmitter determines that the non-MBSFN subframe is reserved when channel coding and rate matching are performed on the transport block carried by the physical downlink channel.
- the RE corresponding to the configured control area.
- the demodulation reference signal in each subframe is a CRS, or if the physical downlink channel uses a DMRS-based transmission scheme, the demodulation reference signal in each subframe includes both the CRS and the DMRS, that is, the transmitting end is determined to be in the pair.
- the transport block carried by the physical downlink channel performs channel coding and rate matching
- the RE corresponding to each antenna port where the CRS is located is reserved; if there is DMRS (for example, using transmission mode 9 and transmission mode 10), the transmission is determined.
- the terminal also reserves the RE corresponding to each antenna port where the DMRS is located when performing channel coding and rate matching on the transport block carried by the physical channel.
- the CRS transmission exists in each subframe, and the size of the control region is the size of the control region configured by the non-MBSFN subframe. Therefore, the transmission obtained according to the resource mapping manner assumed above is used.
- the number of available REs of the physical downlink channel is the same in each sub-frame.
- the CRS resource is reserved for the resource mapping, and the size of the reserved control area is the actual control area size of the sub-frame.
- the data carried by the downlink channel is punctured.
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- the processing mode b directly processes the subframe set, that is, when the subframe set includes only the non-multicast/multicast single frequency network MBSFN subframe, each subframe in the subframe set Determining, when performing resource mapping, the physical downlink channel starts to map from a starting symbol position determined according to a DCI region size of a downlink control information of a non-MBSFN subframe in a first slot of a current subframe, and maps to The common reference signal CRS or all resources except the resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS.
- the number of symbols in the control region is the number of control region symbols configured in the MBSFN subframe, that is, the sender is determined to be in the physical downlink channel.
- the bearer transport block performs channel coding and rate matching, the RE corresponding to the control region configured by the MBSFN subframe is reserved.
- the demodulation reference signal in each subframe is a DMRS, that is, it is determined that the transmitting end reserves the DMRS at each antenna port where the transmission is located when performing channel coding and rate matching on the transport block carried by the physical downlink channel.
- Corresponding RE corresponding RE.
- the control region size is the size of the control region configured in the MBSFN subframe, and both are demodulated based on the DMRS, therefore, according to the above assumption
- the number of available REs of the physical downlink channel obtained by the resource mapping method is the same in each subframe. Due to the resource mapping, the DMRS resources are reserved by itself, and the reserved control area size is the actual control of the subframe. The area size, so there is no need to punct the data carried by the physical downlink channel.
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- subframe groups that is, a subframe group composed of a set number of subframes participating in the multi-subframe channel estimation in the subframe set.
- the subframe set is directly processed, that is, when only the MBSFN subframe is included in the subframe set, in each subframe in the subframe set, determining that the physical downlink channel is in
- mapping is started from the start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the current subframe, and mapped to a resource corresponding to the dedicated demodulation reference signal DMRS. All resources outside.
- first to fourth embodiments may be used in combination, and for example, the first and second embodiments may be used at the same time.
- the transmitting end carries the physical channel.
- the transport block performs channel coding and rate matching, it is assumed that there is no CSI-RS resource unit RE, and when resource mapping is performed on the physical channel in the subframe, data information corresponding to the CSI-RS RE position is punctured; That is, when determining that the transmitting end performs channel coding and rate matching on the TB carried by the physical downlink channel, it is assumed that only the control area and the resources corresponding to the demodulation reference signal (one or more of CRS and DMRS) are reserved for determining data in the resource mapping.
- the demodulation reference signal one or more of CRS and DMRS
- the available RE number that is, all the resources except the control region and the resource for the demodulation reference signal
- can be used for the physical downlink channel transmission that is, the CSI-RS resource is also calculated within the available RE number of the physical downlink channel transmission.
- the number of available REs transmitted by the physical downlink channel, receiving data on the available REs, and calculating a target bit value of the rate matching, so that the child including the CSI-RS The frame and the subframe that does not include the CSI-RS obtain the same rate matching target bit value, and when the resource mapping is actually performed, the CSI-RS transmission exists on some resources of the data transmission in the subframe including the CSI-RS.
- the data mapped on the RE corresponding to the CSI-RS needs to be punctured; specifically: it is configured In the subframe of the channel state information reference signal CSI-RS resource, the CSI-RS includes the NZP CSI-RS and/or the ZP CSI-RS, and determines that the transmitting end performs channel coding and rate matching on the transport block carried by the physical downlink channel.
- the data information corresponding to the CSI-RS RE location is punctured, specifically: determining the physical downlink When the resource mapping is performed, the channel is determined to be unmapped or set to 0 by the physical downlink channel bearer mapped to the NZP CSI-RS resource when the resource mapping is performed, or is transmitted on the resource.
- the CSI-RS coverage does not map or set the information on the physical downlink channel bearer mapped to the ZP CSI-RS resource.
- Step 203 Receive the physical downlink channel according to the resource mapping manner.
- the subframe set is divided into a plurality of subframe groups, and is processed in units of subframe groups, that is, when the subframe set participates in a set number of subframes of the multi-subframe channel estimation.
- the MBSFN subframe and the non-MBSFN subframe are included in the frame group, the MBSFN subframe and the non-MBSFN subframe that belong to the same subframe group are received in the same transmission manner, where the transmission manner is adopted. It includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding method.
- the subframe set is directly processed, that is, when the subframe set includes an MBSFN subframe and a non-MBSFN subframe, and the MBSFN subframe in the subframe set is The non-MBSFN subframe is received by using the same transmission mode, where the transmission mode includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding manner.
- the receiving is performed by using the transmission mode corresponding to the specific subframe in the subframe set or the subframe group; or receiving by using a preset transmission manner.
- Manner 1 receiving, by using the transmission mode corresponding to the subframe set or the first subframe in the subframe group;
- Manner 2 receiving, by using the transmission mode corresponding to the MBSFN subframe in the subframe set or the subframe group.
- the physical downlink channel when receiving the physical downlink channel according to the resource mapping manner, discards information on a resource that is not mapped or set to 0 or covered by other signals when performing resource mapping.
- a resource that is set to 0 or a specific value at the time of reception, that is, 0 or a specific value is a punctured resource. This is because these values are discarded when the sender maps, or are set to 0, or other signals are sent by themselves at these locations, such as CRS, control information, CSI-RS, etc., so the information obtained at these locations It is not the data information.
- the data information at the location needs to be set to 0 or a specific value, and is reserved for the place at the corresponding position of the received sequence.
- the punctured resource location when merging the received information in each of the subframe groups consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set, determining that the punctured resource location exists
- the data information does not participate in the merging, that is, the information at the resource location determined to be set to 0 or a specific value does not participate in the merging; or, when the information received in each subframe in the subframe set is merged, the presence is determined
- the data information on the punctured resource location does not participate in the merging, that is, the information on the resource location determined to be set to 0 or a specific value does not participate in the merging.
- PRBs physical resource blocks
- Frequency Division Duplex FDD
- resources of consecutive 100 subframes starting from radio frame #M slot #0 ie, subframe #0
- Method 1 Processing in units of sub-frame groups
- the first group of subframes is the subframe #0 to the subframe #3 in the radio frame #M, and includes both the MBSFN subframe and the non-MBSFN subframe, and there is no CSI-RS, so there is no need to consider the CSI-RS resource assumption problem. However, it is necessary to consider the difference between the MBSFN subframe and the non-MBSFN subframe.
- the subframe #0 is a non-MBSFN subframe, and the RE occupancy is as shown in FIG. 3, and the subframes #1 to 3 are MBSFN subframes, and the RE occupancy is as shown in FIG. 5, and specifically the following two implementation manners :
- the control area size of each subframe in the group of subframes is the maximum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 3; then
- subframe #0 when channel coding and rate matching are performed on the TB carried in the PDSCH, it is assumed that there is no CRS RE, and only resource reservation is performed on the control region of the DMRS and the three symbols, that is, the TB channel coding and rate matching are calculated.
- the number of REs corresponding to the target number of bits corresponds, it is assumed that all REs except the control region of the DMRS and the three OFDM symbols (including the CRS RE in the data region) can be used for data transmission, as shown in FIG.
- the mapping is performed on the corresponding RE for transmission, the RE corresponding to the control region of the DMRS and the 3 OFDM symbols is vacated.
- the data is in the RE in order not to affect the CRS transmission.
- the location is not mapped, ie In this data transmission it is discarded RE position (i.e., puncturing of the data information, the same), as shown in FIG.
- subframes #1 to 3 when channel coding and rate matching are performed on the TBs carried in the PDSCH, resource reservation is performed only on the control regions of the DMRS and the three symbols (there is no CRS in itself, and it is not necessary to assume that there is no CRS). That is, when calculating the number of REs corresponding to the number of target bits after TB channel coding and rate matching, it is assumed that all REs except the control areas of DMRS and 3 OFDM symbols can be used for data transmission, as shown in FIG.
- the modulation mode assumeded to be QPSK
- the data mapping does not need to be punctured, but in order to match the size of the control area in the non-MBSFN subframe #0, it is necessary to vacate one.
- MBSFN subframes The OFDM symbols outside the system area are not subjected to data mapping (that is, assuming that the control region occupies 3 OFDM symbols), and the DMRS RE needs to be vacated, so the actual RE in one PRB when the data resource is mapped is the same as the channel coding in FIG. And the data matching the corresponding data RE; in addition, in order to further utilize the vacated OFDM symbol, the coded sequence obtained by the above processing or part of the modulation symbol may be repeatedly mapped to the vacated OFDM symbol for transmission, Get the diversity gain.
- subframes #1 to 3 data is received from the fourth OFDM symbol, that is, it is assumed that there is no data transmission in the first three symbols; Q modulations received in each of the four subframes
- the symbol performs sub-frame merging, for example, the data of four sub-frames is added and divided by 4, wherein the modulation symbol corresponding to the CRS RE in the sub-frame #0 does not participate in the merging, that is, at the position, Only the data in the subframes #1, 2, and 3 are merged, that is, the data in the three subframes is added and divided by 3; and the combined data is further processed (such as channel compensation, demodulation, and solution rate).
- the transmitting end if the transmitting end repeatedly maps a part of the coded sequence or the modulation symbol to the vacated OFDM symbol, that is, the third OFDM symbol, the transmission is performed.
- the receiving end in the subframes #1 to 3, before performing the inter-subframe combining, it is also required to receive data on the third OFDM symbol, and merge the repeated corresponding information in the subframe to obtain Q modulation symbols.
- the control area size of each subframe in a group of subframes is the minimum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 2.
- subframe #0 when performing channel coding and rate matching on the TB carried in the PDSCH, it is assumed that there is no CRS RE, and only resource reservation is performed on the control region of the DMRS and the two symbols, that is, the TB channel coding and rate matching are calculated.
- all REs except the control region of the DMRS and the 2 OFDM symbols are included (including the CRS RE in the data region and the last OFDM symbol in the subframe control region (ie, The third OFDM symbol in the subframe, the same RE) can be used for data transmission.
- the situation in a PRB is obtained.
- the RE corresponding to the CRS due to this There is a CRS transmission.
- the data is not mapped at the RE location, that is, the data information corresponding to the transmission at the RE location is discarded (ie, punctured), and the control information is present for the last OFDM symbol in the control region.
- Transmission in order not to affect the control information transmission, the data is not mapped at the RE location, that is, the data information corresponding to the transmission at this RE location is discarded, as shown in FIG.
- subframes #1 to 3 when performing channel coding and rate matching on the TB carried in the PDSCH, resource reservation is performed only on the control region of the DMRS and the two symbols (there is no CRS in itself, and it is not necessary to assume that there is no CRS). That is, when calculating the number of REs corresponding to the number of target bits after TB channel coding and rate matching, it is assumed that all REs except the control regions of DMRS and 2 OFDM symbols can be used for data transmission, because the control region in the MBSFN subframe The size itself is 2 symbols and the data area itself does not have CRS. Therefore, the data RE corresponding to the channel coding and rate matching is as shown by the blank position RE in FIG.
- RE, data mapping does not need to be punctured, only need to vacate the DMRS and the RE corresponding to the two control region OFDM symbols, so the actual RE at the time of data resource mapping is the same as the blank location RE in FIG.
- the data symbol can be assumed to be 0 or a predetermined value, that is, the location does not actually have data transmission, but the data information needs to occupy a place, thereby obtaining Q received modulation symbols to ensure data modulation symbols in each subframe.
- the number and the number of bits after encoding are identical; in subframes #1 to 3, data is received in the data area as normal; the Q modulation symbols received in each of the 4 subframes are sub-framed Inter-merging, for example, adding data of four subframes and dividing by 4, wherein the modulation symbols corresponding to the REs in the CRS of the subframe #0 and the last symbol of the control region do not participate in the merging, that is, at the position, only the merging
- the data in the subframes #1, 2, and 3, that is, the data in the three subframes is added and divided by 3; and the merged data is subjected to subsequent processing.
- the second group of subframes is subframe #4 to subframe #7 in the radio frame #M, and only includes the non-MBSFN subframe, and the CSI-RS exists in the subframe #4, so there is no need to consider the MBSFN subframe and the non-MBSFN.
- the difference between the subframes, the CRS exists in each subframe, and the size of the control region is 3 symbols, that is, the CRS and the control region are unified in each subframe in the subframe, and no assumption is needed, but the CSI-RS needs to be considered.
- the resource assumption problem wherein the RE occupancy of the subframe #4 is as shown in FIG. 4, and the RE occupancy of the subframes #5 to 7 is as shown in FIG. 3.
- subframe #4 when channel coding and rate matching are performed on the TB carried in the PDSCH, it is assumed that there is no CSI-RS RE, and resource reservation is performed only for the control regions of the CRS, the DMRS, and the three OFDM symbols, that is, the calculation is performed on the TB.
- channel coding and number of REs corresponding to the number of target bits after rate matching it is assumed that all REs (including CSI-RS RE in the data area) except the control areas of CRS, DMRS and 3 OFDM symbols can be used for data transmission. As shown in FIG.
- *2 1248, channel coding and rate matching are performed on the TB, and a K-bit encoded sequence is obtained.
- the CRS, the DMRS, and the RE corresponding to the three symbol control areas are vacated. Since the CSI-RS transmission exists, the data is not mapped at the CSI-RS RE position in order not to affect the CSI-RS transmission. That is, corresponding to the transmission in the CSI-RS RE position Data information is discarded (i.e. punctured), as shown in FIG.
- Q modulation symbols are mapped to the REs in the data transmission area for transmission according to a predetermined manner, since the data in the subframes #5 to 7 is used for channel coding and rate matching, other signal resources are not occupied, and data mapping is not required.
- the RE corresponding to the control region of the CRS, the DMRS, and the three symbols can be vacated in a conventional manner. Therefore, the actual RE in one PRB at the time of data resource mapping is the same as the blank RE position in FIG.
- the target bit number K and the modulation symbol number Q of the TB channel coding and rate matching are determined in the same manner as the transmitting end; when receiving the data, in the subframe #4, the data symbols extracted on the RE corresponding to the CSI-RS can be assumed If it is 0 or a predetermined value, it is considered that there is actually no data transmission at the location, but it needs to occupy a bit in the data information, thereby obtaining Q received modulation symbols to ensure the number of data modulation symbols and the coded bits in each subframe.
- the numbers are consistent; in subframes #5-7, the reception may be performed in a conventional manner; the Q modulation symbols received in each of the 4 subframes are merged between subframes, for example, four subframes.
- the data is added and divided by 4, wherein the modulation symbols corresponding to the CSI-RS RE in the subframe #4 do not participate in the combining, that is, in the CSI-RS RE position, only the data in the subframes #5, 6, and 7 are merged. That is, the location is added to the data in the three subframes and then divided by 3; the merged data is further processed.
- the third group of subframes is subframes #8, 9 in the radio frame #M and subframes #0, 1 in the radio frame #M+1, and includes both non-MBSFN subframes and MBSFN subframes, and subframe #9
- There is a CSI-RS in the middle so the difference between the MBSFN subframe and the non-MBSFN subframe and the CSI-RS resource hypothesis need to be considered;
- the subframe #8 and the subframe #1 are MBSFN subframes, and the RE occupancy situation is as shown in FIG.
- the subframe #9 is an MBSFN subframe and includes a CSI-RS, and its RE occupancy is as shown in FIG. 6, and subframe #0 is a non-MBSFN subframe, and its RE occupancy is as shown in FIG. 3.
- the control area size of each subframe in the group of subframes is the maximum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 3.
- the processing manner is the same as the subframe #0 in the first group of subframes in the first implementation manner in the first embodiment, and is not described here; in the radio frame # In the subframe #1 in the M neutron frame #8 and the radio frame #M+1, the processing manner is the same as the subframes #1 to 3 in the first group of subframes when the first implementation in the first implementation is used. I won't go into details here.
- subframe #9 in the radio frame #M when performing channel coding and rate matching on the TB carried in the PDSCH, it is assumed that there is no CSI-RS RE, and only the DMRS and the control region of the three symbols are reserved for resources. That is, when calculating the number of REs corresponding to the number of target bits after TB channel coding and rate matching, it is assumed that all REs (including CSI-RS REs in the data area) other than the control regions of the DMRS and the three OFDM symbols can be used.
- the DMRS RE When the mode is mapped to the corresponding RE for transmission, the DMRS RE is vacated, and in order to match the size of the control region in the non-MBSFN subframe #0, it is necessary to vacate the OFDM symbol outside the control region configured by one MBSFN subframe.
- Data mapping (ie hypothesis control)
- the system area occupies 3 OFDM symbols.
- For CSI-RS RE since there is CSI-RS transmission in itself, in order not to affect CSI-RS transmission, data is not mapped at the CSI-RS RE position, that is, correspondingly transmitted in the CSI-RS RE position.
- the data information is discarded (ie, punctured), as shown in FIG. 12; in addition, in order to further utilize the vacated OFDM symbol, part of the code sequence or modulation symbol obtained according to the above processing may be repeatedly mapped to the space.
- the transmission is performed on the OFDM symbol to further obtain the diversity gain.
- the processing of the subframe #0 in the radio frame #M+1 is the same as that in the first implementation.
- the subframe #0 in the first group of subframes; the processing on the subframe #1 in the radio frame #M and the subframe #1 in the radio frame #M+1 are the same as in the first implementation.
- the subframes #1 to 3 in the first group of subframes; for the subframe #9 in the radio frame #M, the data symbols extracted on the RE corresponding to the CSI-RS may be assumed to be 0 or A predetermined value, that is, the data transmission is considered to be absent in the location, but the data information needs to be occupied, thereby obtaining Q received modulation symbols to ensure that the number of data modulation symbols and the number of encoded bits in each subframe are consistent.
- the Q modulation symbols received in each of the 4 subframes are merged between the subframes, for example, the data of the four subframes is added and divided by 4, wherein, for the subframe #0
- the modulation symbol corresponding to the CRS RE does not participate in the merging, that is, the corresponding position of the CRS RE, only the framing subframes #8, 9,
- the data in 1 that is, the CRS RE corresponding position is added to the data in the 3 subframes and divided by 3
- the modulation symbols corresponding to the CSI-RS RE in the subframe #9 do not participate in the combination, that is, the CSI-RS RE corresponds to Positionally, only the data in the subframes #8, 0, and 1 is merged, that is, the corresponding position of the CSI-RS RE is the sum of the data in the three subframes and then divided by 3; and the merged data is further processed;
- subframes #8, 9, and 1 if the transmitting end repeatedly maps a part of the coded sequence or the
- the control area size of each subframe in a group of subframes is the minimum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 2.
- the processing manner is the same as the subframe #0 in the first group of subframes when the second implementation manner in the first implementation is used, and is not described again; in the radio frame #M In the subframe #1 in the neutron frame #8 and the radio frame #M+1: the processing manner is the same as the subframes #1 to 3 in the first group of subframes when the second implementation manner in the first implementation is used, no longer Narration.
- subframe #9 in the radio frame #M when performing channel coding and rate matching on the TB carried in the PDSCH, it is assumed that there is no CSI-RS RE, and only the DMRS and the control region of the two symbols are reserved for resources. That is, when calculating the number of REs corresponding to the number of target bits after TB channel coding and rate matching, it is assumed that all REs (including CSI-RS REs in the data area) other than the control regions of the DMRS and the two OFDM symbols can be used.
- the mode is mapped to the corresponding RE for transmission, the DMRS and the RE corresponding to the two symbol control areas are vacated.
- the data is in the CSI-RS.
- the RS RE position is not mapped, that is, the corresponding CSI-RS RE data transmission positions are discarded (i.e. punctured), as shown in Fig.
- the processing of the subframe #0 in the radio frame #M+1 is the same as that in the first implementation.
- the subframe #0 in the first group of subframes; the processing on the subframe #1 in the radio frame #M and the subframe #1 in the radio frame #M+1 are the same as the second in the first implementation.
- the subframes #1 to 3 in the first group of subframes; for the subframe #9 in the radio frame #M, the data symbols extracted on the RE corresponding to the CSI-RS may be assumed to be 0 or a predetermined Value, that is, the location does not actually have data transmission, but needs to occupy a bit in the data information, thereby obtaining Q received modulation symbols, so as to ensure that the number of data modulation symbols and the number of encoded bits in each subframe are consistent; Then, the Q modulation symbols received in each of the 4 subframes are merged between the subframes, for example, the data of the four subframes is added and divided by 4, wherein, for the subframe #0, the CRS RE The corresponding modulation symbol does not participate in the combination, that is, the position corresponding to the CRS RE, and only the subframes #8, 9, 1 are merged.
- the data that is, the corresponding position of the CRS RE is added to the data in 3 subframes and then divided by 3, and the modulation symbol corresponding to the CSI-RS RE in the subframe #9 does not participate in the combination, that is, the CSI-RS RE position
- the data in the subframes #8, 0, and 1, that is, the CSI-RS RE position is added to the data in the three subframes, and then divided by 3; the merged data is further processed.
- the fourth group of subframes is the subframes #2 to 5 in the radio frame #M+1, and includes the non-MBSFN subframe and the MBSFN subframe, and the CSI-RS exists in the subframe #4, so the MBSFN subframe and the MBSFN subframe need to be considered.
- the RE occupancy situation is shown in FIG. 4, and subframe #5 is a non-MBSFN subframe, and its RE occupancy is as shown in FIG. 3.
- the control area size of each subframe in the group of subframes is the maximum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 3.
- the processing manner is the same as the subframes #1 to 3 in the first group of subframes when the first implementation in the first implementation is used, and details are not described herein again.
- the data is not mapped at the RE location That is, the data information corresponding to the transmission at the RE location is discarded (ie, punctured), and for the RE corresponding to the CSI-RS, since the CSI-RS transmission exists by itself, in order not to affect the CSI-RS transmission, the data is not performed at the RE location.
- the mapping that is, the data information corresponding to the transmission at this RE location is discarded (ie, punctured), as shown in FIG.
- the processing manner is the same as the subframe #0 in the first group of subframes when the first implementation in the first implementation is used, and details are not described herein.
- the target bit number K and the modulation symbol number Q of the TB channel coding and rate matching are determined in the same manner as the transmitting end, and when the data is received, the processing of the subframes #2 and 3 in the radio frame #M+1 is the same as the first implementation.
- the subframes #1 to 3 in the first group of subframes; the processing on the subframe #5 in the radio frame #M+1 is the same as the first group in the first implementation manner in the first embodiment.
- the Q modulation symbols received in each of the subframes are merged between the subframes, for example, the data of the four subframes is added and divided by 4, wherein the modulation symbols corresponding to the CRS REs in the subframes #4, 5 , does not participate in the merging, that is, in the CRS RE position, only the data in the subframes #2, 3 is merged, that is, the CRS RE position is added in the data of 2 subframes and then divided by 2, for the subframe #4
- the control area size of each subframe in a group of subframes is the minimum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 2.
- the processing manners are the same as the subframes #1 to 3 in the first group of subframes when the second implementation manner in the first implementation is used, and details are not described herein again.
- subframe #4 in radio frame #M+1 when performing channel coding and rate matching on the TB carried in the PDSCH, assuming no CRS RE and no CSI-RS RE, only the control region of the DMRS and the 2 OFDM symbols Perform resource reservation, that is, calculate the number of REs corresponding to the TB channel coding and the number of target bits after rate matching, and assume all REs except the control region of DMRS and 2 OFDM symbols, including CRS and CSI in the data region.
- the data is not mapped at the RE position, that is, corresponding to the last OFDM in the control region.
- the data information transmitted by the RE corresponding to the symbol is discarded (ie, punctured) as shown in FIG.
- the processing manner is the same as the subframe #0 in the first group of subframes when the second implementation in the first implementation is used, and details are not described herein again.
- the processing of the subframes #2 and 3 in the radio frame #M+1 is the same as the first implementation.
- the subframes #1 to 3 in the first group of subframes; the processing on the subframe #5 in the radio frame #M+1 is the same as the processing in the second implementation manner in the first implementation.
- Subframe #0 in the subframe; for subframe #4 in the radio frame #M+1, the data symbols extracted on the RE corresponding to the CRS, the CSI-RS, and the last OFDM symbol of the control region may be assumed to be 0 or A predetermined value, that is, the data transmission is considered to be absent in the location, but the data information needs to be occupied, thereby obtaining Q received modulation symbols to ensure that the number of data modulation symbols and the number of encoded bits in each subframe are consistent.
- the Q modulation symbols received in each of the 4 subframes are merged between the subframes, for example, the data of the four subframes is added and divided by 4, wherein, for subframe #4, 5 in the CRS and the modulation symbol corresponding to the RE of the last OFDM symbol in the control region, not participating Merging, that is, the CRS of the subframes #4, 5 and the RE position of the last OFDM symbol of the control region, only the data in the subframes #2, 3 are merged, that is, the position is added after the data in the two subframes is added.
- Method 2 Process the entire subframe set as a unit
- the set of 100 subframes includes both the MBSFN subframe and the non-MBSFN subframe, the following two implementation manners are specifically implemented:
- the first implementation is a first implementation:
- the control area size of each subframe in the group of subframes is the maximum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 3.
- subframes #0, 5, 6, and 7 in one radio frame in this embodiment the specific processing manner is the same as in the first method. Subframe #0 in an implementation manner will not be described again.
- Subframe #4 in the line frame the specific processing method is the same as the subframe #4 in the 4th group subframe when the first implementation is used in the first method (ie, the subframe #4 in the radio frame #M+1) ,No longer.
- the specific processing manner is the same as the first method in the first method.
- Subframes #1 to 3 in the implementation mode are not described again;
- the specific processing manner is the same as the subframe in the first implementation manner in the first method. #9, no longer repeat.
- the data extracted at the CSI-RS position in the MBSFN subframe and the non-MBSFN subframe including the CSI-RS is set to 0 or a predetermined value, that is, the location does not actually have data transmission, but the data information needs to occupy a place.
- the Q modulation symbols received in each subframe in the group are inter-subframe combined (for example, the data of four subframes is added and divided by 4), wherein the CRS RE is corresponding to the non-MBSFN subframe.
- the modulation symbol does not participate in the merging, that is, the CRS RE position, only the corresponding data in the remaining subframes is merged, that is, the location is the average value of the data of the corresponding position in the remaining subframes, for the MBSFN subframe and the non-MBSFN sub- In the frame
- the modulation symbol corresponding to the CSI-RS RE does not participate in the merging, that is, in the CSI-RS RE position, only the corresponding data in the remaining subframes is merged, that is, the CSI-RS RE position is the data of the corresponding position in the remaining subframes.
- the average value is further processed after the merged data; in particular, when the transmitting end is in the MBSFN subframe, the partial information in the result of the coding and rate matching is repeatedly mapped to the spare one OFDM symbol, that is, the third On the OFDM symbol, before the inter-subframe combining, it is also necessary to combine the data of the repeated portions in the subframes repeatedly mapped to the spare one OFDM symbol.
- the second implementation is a first implementation.
- the control area size of each subframe in a group of subframes is the minimum value of the number of symbols of the MBSFN subframe and the non-MBSFN subframe control region, that is, this embodiment.
- Medium is 2.
- subframe #0, 5, 6, and 7 in one radio frame in this embodiment the specific processing manner is the same as in the first method. Subframe #0 in the two implementation modes is not described again;
- subframe #4 in one radio frame in this embodiment the specific processing manner is the same as the second implementation manner in the first method.
- Subgroup of 4 sub-frames Frame #4 ie, subframe #4 in radio frame #M+1, will not be described again;
- subframes #1, 2, 3, and 8 in one radio frame in this embodiment the specific processing manner is the same as the second method in the first method. Subframes #1 to 3 in the implementation mode are not described again;
- the specific processing manner is the same as the subframe when the second implementation manner is used in the method 1. #9, no longer repeat.
- the data is set to 0 or a predetermined value, and the data extracted at the CSI-RS position in the MBSFN subframe and the non-MBSFN subframe including the CSI-RS is set to 0 or a predetermined value, that is, the data transmission is not actually existed at the location.
- the data information needs to occupy a bit, so that Q received modulation symbols are obtained, so as to ensure that the number of data modulation symbols and the number of encoded bits in each subframe are consistent, and the MBSFN subframes that do not include the CSI-RS are followed.
- the data is received in a conventional manner; then, the Q modulation symbols received in each subframe in the group are sub-frame-combined (for example, four sub-frames are added and divided by 4) in groups of 4 subframes.
- the CRS RE and the modulation symbol corresponding to the last symbol of the control region do not participate in the combining, that is, in the CRS RE position, only the corresponding data in the remaining subframes is merged (ie, the CRS RE bit Set the corresponding average value of the data of the corresponding position in the remaining subframes, and do not participate in the combination of the modulation symbols corresponding to the CSI-RS REs in the MBSFN subframe and the non-MBSFN subframe, that is, the CSI-RS RE position And merging only the corresponding data in the remaining sub-frames (that is, the CSI-RS RE position corresponding to the average of the data of the corresponding positions in the remaining sub-frames); and then performing the subsequent processing on the merged data.
- the corresponding CRS RE number is followed. Change, for example, if the number of CSR ports is 1, the CRS RE only corresponds to the RE corresponding to port 0 in the figure. If the number of CRS ports is 2, the CRS RE only corresponds to the RE corresponding to ports 0 and 1 in the figure; further, According to the actual number of DMRS ports, the corresponding DMRS RE number changes accordingly.
- the RE corresponding to the DMRS ports 9 and 10 needs to be added in the figure, that is, the DMRS port 7/ in the figure. 8 REs corresponding to the RE; if the number of DMRS ports is 4 to 8, the RE resource location is the same as the port 7 to 10; further, the size of the control region may be 0 to 4 symbols; the method can support the subframe group
- the number of subframes included is a multi-subframe channel estimate of any value and data combining of any number of subframes.
- all subframes are based on DMRS demodulation.
- CRS demodulation may be agreed upon.
- there is no DMRS RE that is, the DMRS RE shown in the corresponding figure is actually an RE that can be used for data, and the DMRS RE needs to be calculated when performing channel coding and rate matching on the TB, and when the resource is mapped, Map data on the DMRS RE.
- the embodiment of the present invention further provides a transmitting end device.
- the sending end device refer to the description of the downlink data repeated transmission performed by the transmitting end in the foregoing embodiment, and the repeated description is not repeated.
- the device mainly includes:
- a determining module 1601 configured to determine a subframe set for repeatedly transmitting a physical downlink channel
- the resource mapping module 1602 is configured to: when performing resource mapping on the physical downlink channel in each subframe in the determined subframe set, start from a specific start symbol position in a first slot of the current subframe. Mapping, mapping to all resources except the resources corresponding to the calling reference signal;
- the sending module 1603 is configured to send the physical downlink channel according to the resource mapping manner.
- the specific start symbol position is pre-configured by high layer signaling; or the specific start symbol position is obtained according to a DCI area size, which is obtained according to CFI.
- the resource mapping module 1602 starts mapping from a specific start symbol position in the first slot of the current subframe, and maps to all resources except the resource corresponding to the call reference signal, that is, only The reference signal for demodulation and the resource corresponding to the control area are reserved, and the reserved resource is not used for data transmission of the physical downlink channel, and includes, but is not limited to, the following different implementation manners according to specific conditions:
- the resource mapping module is specifically configured to: when a subframe group consisting of a set number of subframes participating in multi-subframe channel estimation in the subframe set, includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN Determining, in the subframe, the subframe number of the set number of subframes according to the first symbol number occupied by the downlink control information DCI region of the MBSFN subframe and the second symbol number occupied by the DCI region of the non-MBSFN subframe And determining, by the third symbol number, a specific starting symbol position of each subframe in the subframe group consisting of the set number of subframes; When the physical downlink channel performs resource mapping, starting mapping from the start symbol position determined according to the third symbol number in the first slot of the current subframe;
- the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe
- the first symbol number occupied by the DCI region and the non-MBSFN subframe according to the downlink control information of the MBSFN subframe.
- a second symbol number occupied by the DCI region determining a third symbol number occupied by a DCI region of each subframe in the subframe set, and determining, according to the third symbol number, a specificity of each subframe in the subframe group Start symbol position; when performing resource mapping on the physical downlink channel, starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe.
- the resource mapping module is specifically configured to:
- the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the resource mapping module is specifically configured to:
- the physical downlink is When the channel performs resource mapping, the object is The information on the first A symbols of the downlink channel bearer mapped to the start symbol position determined according to the third symbol number in the first slot of the current subframe is not mapped or set to 0 or The DCI transmitted on the A symbols is overwritten, and the number of A symbols is the difference between the actual number of symbols of the DCI region of the current subframe and the third symbol number; or
- the physical downlink is When the channel performs resource mapping, starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and repeatedly mapping part of information in the information carried by the physical downlink channel
- the B symbols are the third symbol number and the current subframe, to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe The difference in the actual number of symbols in the DCI area.
- the resource mapping module is specifically configured to:
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to a DMRS corresponding to the dedicated demodulation reference signal Resources on all resources except;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- performing resource mapping on the physical downlink channel in each subframe in the subframe set Mapping from a specific start symbol position in the first slot of the current subframe to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource.
- the resource mapping module is specifically configured to:
- mapping starts from a starting symbol position determined according to a DCI region size of a downlink control information of a non-MBSFN subframe in a first slot of a current subframe, and mapping To all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the start symbol position determined according to the DCI region size determined by the downlink control information of the non-MBSFN subframe in the slot starts mapping, and is mapped to a resource other than the common reference signal CRS or the resource corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS. All resources.
- the resource mapping module is specifically configured to:
- each of the subframe groups In the subframe when the resource mapping is performed on the physical downlink channel, the mapping starts from the starting symbol position determined according to the DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, and is mapped to Dedicated demodulation reference signal DMRS corresponding to all resources except resources;
- the subframe set includes only the multicast/multicast single frequency network MBSFN subframe
- when performing resource mapping on the physical downlink channel in each subframe in the subframe set, from the current The start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the subframe starts to be mapped, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS.
- the resource mapping module is further configured to:
- mapping a physical downlink channel bearer to a non-zero power NZP when performing resource mapping on the physical downlink channel in a subframe in which the channel state information reference signal CSI-RS resource is configured in the subframe set The information on the CSI-RS resource is not mapped or set to 0 or is covered by the CSI-RS transmitted on the resource, and the information mapped on the physical downlink channel bearer mapped to the zero-power ZP CSI-RS resource is not mapped. Or set to 0.
- the sending module is specifically configured to: when the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set, includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN In the case of a subframe, the MBSFN subframe and the non-MBSFN subframe that belong to the same subframe group are transmitted in the same transmission manner, where the transmission mode includes at least a demodulation reference signal and a transmission port. And any one or combination of the number of ports and the precoding method;
- the MBSFN subframe and the non-MBSFN subframe are included in the subframe set, the MBSFN subframe and the non-MBSFN subframe in the subframe set are transmitted in the same transmission manner, where
- the transmission mode includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding method.
- the sending module is specifically configured to:
- the transmission is performed by using the transmission mode corresponding to the subframe set or the specific subframe in the subframe group; or, the transmission is performed by using a preset transmission manner.
- the sending module is specifically configured to:
- the embodiment of the present invention further provides a transmitting end device.
- the device mainly includes a processor 1701, a memory 1702, and a transceiver 1703.
- the memory 1702 stores a preset program
- the processor 1701 reads a program preset in the memory 1702, and executes according to the program. The following process:
- mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to the calling All resources except the resources corresponding to the reference signal;
- the physical downlink channel is transmitted by the transceiver 1703 according to the resource mapping manner.
- the specific start symbol position is pre-configured by high layer signaling; or the specific start symbol position is obtained according to a DCI area size, which is obtained according to CFI.
- the processor 1701 starts mapping from a specific start symbol position in the first slot of the current subframe, and maps to all resources except the resource corresponding to the call reference signal, that is, only The demodulation reference signal and the resource corresponding to the control area are reserved, and the reserved resource is not used for data transmission of the physical downlink channel, and includes, but is not limited to, the following different implementation manners according to specific conditions:
- the processor 1701 when the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe, according to the MBSFN
- the third symbol number occupied by the area determining, according to the third number of symbols, a specific start symbol position of each subframe in the subframe group consisting of the set number of subframes; performing resources on the physical downlink channel Mapping, starting from a starting symbol position determined according to the third number of symbols in a first slot of a current subframe;
- the processor 1701 when the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe are included in the subframe set, the first symbol number occupied by the DCI region according to the downlink control information of the MBSFN subframe, and the non-MBSFN Determining, by the number of second symbols occupied by the DCI area of the subframe, determining a third symbol number occupied by the DCI area of each subframe in the subframe set, and determining each sub-subset in the subframe set according to the third symbol number a specific start symbol position of the frame; when resource mapping is performed on the physical downlink channel, starting from a start symbol position determined according to the third symbol number in the first slot of the current subframe.
- the processor 1701 determines that the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the processor 1701 if the third symbol number is the minimum value of the first symbol number and the second symbol number, in a subframe in which the actual symbol number of the DCI region is greater than the third symbol number, And performing resource mapping on the physical downlink channel, mapping the physical downlink channel bearer to the first A starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe
- the information on the symbol is not mapped or set to 0 or covered by the DCI transmitted on the A symbols, and the number of A symbols is the difference between the actual number of symbols of the DCI area of the current subframe and the third number of symbols. ;or,
- the physical downlink is When the channel performs resource mapping, starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and repeatedly mapping part of information in the information carried by the physical downlink channel
- the B symbols are the third symbol number and the current subframe, to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe The difference in the actual number of symbols in the DCI area.
- the processor 1701 when the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe, In each subframe in the subframe group, when performing resource mapping on the physical downlink channel, mapping starts from a specific start symbol position in the first slot of the current subframe, and mapping to a dedicated demodulation reference All resources except the resources corresponding to the signal DMRS;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- performing resource mapping on the physical downlink channel in each subframe in the subframe set Mapping from a specific start symbol position in the first slot of the current subframe to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the information mapped on the physical downlink channel bearer mapped to the common reference signal CRS resource is not mapped or set to 0. Or covered by a CRS transmitted on the resource.
- the processor 1701 when the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes only the non-multicast/multicast single frequency network MBSFN subframe, in the subframe In each subframe in the group, when performing resource mapping on the physical downlink channel, downlink control according to the non-MBSFN subframe in the first slot of the current subframe
- the start information symbol position of the information DCI region size determination starts mapping, and is mapped to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the start symbol position determined according to the DCI region size determined by the downlink control information of the non-MBSFN subframe in the slot starts mapping, and is mapped to a resource other than the common reference signal CRS or the resource corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS. All resources.
- the processor 1701 when the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes only the multicast/multicast single frequency network MBSFN subframe, in the subframe group In each of the subframes, when performing resource mapping on the physical downlink channel, starting from the start symbol position determined according to the DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, Mapping to all resources except the resources corresponding to the dedicated demodulation reference signal DMRS;
- the subframe set includes only the multicast/multicast single frequency network MBSFN subframe
- when performing resource mapping on the physical downlink channel in each subframe in the subframe set, from the current The start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the subframe starts to be mapped, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS.
- the processor 1701 is further configured to:
- mapping a physical downlink channel bearer to a non-zero power NZP when performing resource mapping on the physical downlink channel in a subframe in which the channel state information reference signal CSI-RS resource is configured in the subframe set The information on the CSI-RS resource is not mapped or set to 0 or is covered by the CSI-RS transmitted on the resource, and the information mapped on the physical downlink channel bearer mapped to the zero-power ZP CSI-RS resource is not mapped. Or set to 0.
- the processor 1701 is specifically configured to: when a subframe group consisting of a set number of subframes participating in the multi-subframe channel estimation in the subframe set, includes a multicast/multicast single frequency network MBSFN subframe and a non-frame group In the MBSFN subframe, the MBSFN subframe and the non-MBSFN subframe indicating that the same subframe group are transmitted by the same transmission mode, wherein the transmission mode includes at least a demodulation reference. Any one or combination of signals, transmission ports and ports, and precoding methods;
- the MBSFN subframe and the non-MBSFN subframe indication transceiver in the subframe set are transmitted by using the same transmission manner.
- the transmission mode includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding method.
- the processor 1701 instructs the transceiver 1703 to transmit by using the transmission mode corresponding to the subframe set or the specific subframe in the subframe group; or transmitting by using a preset transmission manner.
- the processor 1701 instructs the transceiver 1703 to transmit by using the transmission mode corresponding to the subframe set or the first subframe in the subframe group; or adopting the subframe set or the subframe.
- the transmission mode corresponding to the MBSFN subframe in the group is transmitted.
- the embodiment of the present invention further provides a receiving end device.
- the receiving end device refer to the description of the repeated data transmission of the receiving end in the foregoing embodiment, and the repeated description is not repeated.
- the receiving device mainly includes:
- a first determining module 1801, configured to determine a subframe set that repeatedly transmits a physical downlink channel
- the second determining module 1802 is configured to determine, in each subframe in the determined subframe set, a specific start symbol in a first time slot of the current subframe when the physical downlink channel performs resource mapping.
- the location starts mapping, and maps to all resources except the resources corresponding to the calling reference signal;
- the receiving module 1803 is configured to receive the physical downlink channel according to the resource mapping manner.
- the specific start symbol position is pre-configured by the high layer signaling; or the specific start symbol position is obtained according to the DCI area size of the downlink control information, where the DCI area size indicates CFI according to the control format. acquired.
- the second determining module determines that the physical downlink channel starts to map from a specific start symbol position in the first slot of the current subframe when performing resource mapping, that is, only demodulation is reserved.
- the reference signal and the resource corresponding to the control area, the reserved resource is not used for data transmission of the physical downlink channel, and includes, but is not limited to, the following different implementation manners according to specific conditions:
- the second determining module is specifically configured to:
- a subframe group consisting of a set number of subframes participating in the multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, according to the MBSFN subframe
- the first symbol number occupied by the downlink control information DCI region and the second symbol number occupied by the DCI region of the non-MBSFN subframe determining the DCI region occupied by each subframe in the subframe group consisting of the set number of subframes a third symbol number, determining, according to the third number of symbols, a specific start symbol position of each subframe in the subframe group consisting of the set number of subframes; determining that the physical downlink channel is performing resource mapping And starting to map from a starting symbol position determined according to the third symbol number in a first time slot of the current subframe;
- the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe
- the first symbol number occupied by the DCI region and the non-MBSFN subframe according to the downlink control information of the MBSFN subframe.
- a second symbol number occupied by the DCI region determining a third symbol number occupied by a DCI region of each subframe in the subframe set, and determining, according to the third symbol number, a specificity of each subframe in the subframe group a starting symbol position; determining that the physical downlink channel starts mapping when starting resource mapping, starting from a starting symbol position determined according to the third symbol number in a first time slot of a current subframe.
- the second determining module is specifically configured to: determine that the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the second determining module is specifically configured to:
- the third symbol number is the minimum value of the first symbol number and the second symbol number, determining the physical downlink in a subframe in which the actual symbol number of the DCI region is greater than the third symbol number And performing mapping on the physical downlink channel to the information on the first A symbols starting from the start symbol position determined according to the third symbol number in the first slot of the current subframe when performing resource mapping Discarding unmapped or set to 0 or covered by DCI transmitted on the A symbols, the A number of symbols being the difference between the actual number of symbols of the DCI area of the current subframe and the third number of symbols; or
- the channel starts to map from the start symbol position determined according to the third symbol number in the first slot of the current subframe, and determines that the physical downlink channel performs the resource mapping.
- the partial information in the information carried by the physical downlink channel is repeatedly mapped to the preceding B symbols according to the start symbol position determined according to the third symbol number in the first time slot of the current subframe, the B symbols The number is the difference between the third symbol number and the actual number of symbols of the DCI region of the current subframe.
- the second determining module is specifically configured to:
- the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe, in the subframe In each subframe in the group, determining that the physical downlink channel is mapped from a specific start symbol position in a first slot of a current subframe when performing resource mapping, and mapping to a dedicated demodulation reference signal DMRS All resources except the corresponding resources; and,
- the information discard on the CRS resource is not mapped or set to 0 or covered by the CRS transmitted on the resource;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe, determining, in each subframe in the subframe set, that the physical downlink channel is performing resources Mapping, starting from a specific start symbol position in the first slot of the current subframe, and mapping to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the information on the drop is not mapped or set to 0 or overwritten by the CRS transmitted on the resource.
- the second determining module is specifically configured to:
- the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes only the non-multicast/multicast single frequency network MBSFN subframe
- the subframe group Determining, in each subframe, that the physical downlink channel starts mapping when starting resource mapping, starting from a start symbol position determined according to a DCI region size of a downlink control information of a non-MBSFN subframe in a first slot of the current subframe. Mapping to all resources except the common reference signal CRS or resources corresponding to the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the non-multicast/multicast single-frequency network MBSFN subframe when the non-multicast/multicast single-frequency network MBSFN subframe is included in the subframe set, determining, in each subframe in the subframe set, that the physical downlink channel is performing resource mapping, Mapping from the start symbol position determined according to the downlink control information DCI region size of the non-MBSFN subframe in the first slot of the current subframe, mapping to the common reference signal CRS or the common reference signal CRS and dedicated demodulation
- the reference signal DMRS corresponds to all resources except resources.
- the second determining module is specifically configured to:
- each of the subframe groups In the subframe, determining that the physical downlink channel is mapped from the start symbol position determined according to the DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, when performing resource mapping, All resources except the resources corresponding to the dedicated demodulation reference signal DMRS;
- the subframe set includes only the multicast/multicast single frequency network MBSFN subframe
- determining that the physical downlink channel is performing resource mapping The start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the current subframe starts to be mapped, and is mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS.
- the second determining module is further configured to: determine, in a subframe in which the channel state information reference signal CSI-RS resource is configured in the subframe set, When the physical downlink channel performs resource mapping, it is determined that the physical downlink channel is not mapped or set to 0 on the information of the physical downlink channel bearer mapped to the non-zero power NZP CSI-RS resource when resource mapping is performed. Or the information mapped on the physical downlink channel bearer mapped to the zero-power ZP CSI-RS resource is not mapped or set to 0 by CSI-RS coverage transmitted on the resource.
- the receiving module is specifically configured to:
- a subframe group consisting of a set number of subframes participating in the multi-subframe channel estimation in the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the MBSFN subframe and the non-MBSFN subframe of the subframe group are received by using the same transmission mode, where the transmission mode includes at least a demodulation reference signal, a transmission port and a port number, and a precoding manner. Any one or combination;
- the subframe set includes a multicast/multicast single frequency network MBSFN subframe and a non-MBSFN subframe
- the receiving module is specifically configured to: use the transmission mode corresponding to the specific subframe in the subframe set or the subframe group to receive; or use a preset transmission manner to perform reception.
- the receiving module is specifically configured to: receive, by using, the transmission mode corresponding to the first subframe in the subframe set or the subframe group; or
- Receiving is performed by using the transmission mode corresponding to the subframe set or the MBSFN subframe in the subframe group.
- the receiving module is specifically configured to: when receiving the physical downlink channel according to the resource mapping manner, discard the physical downlink channel from being unmapped or set to 0 or covered by other signals when performing resource mapping.
- the information on the resource is set to 0 or a specific value upon reception.
- the receiving module is further configured to: when merging the received information in each of the subframe groups consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set, Determining that information on a resource location set to 0 or a specific value does not participate in merging; or, when merging information received in each subframe in the subframe set, determining a resource set to 0 or a specific value The information on the location does not participate in the merger.
- the embodiment of the present invention further provides a receiving end device.
- the receiving end device mainly includes a processor 1901, a memory 1902, and a transceiver 1903.
- the memory stores a preset program
- the processor reads a preset program in the memory, and executes the following according to the program. process:
- the specific start symbol position is pre-configured by the high layer signaling; or the specific start symbol position is obtained according to the DCI area size of the downlink control information, where the DCI area size indicates CFI according to the control format. acquired.
- the processor determines that the physical downlink channel starts to map from a specific start symbol position in the first slot of the current subframe when performing resource mapping, that is, only the demodulation reference signal is reserved.
- the resources corresponding to the control area are not used for data transmission of the physical downlink channel, and include, but are not limited to, the following different implementation manners according to specific conditions:
- the first symbol number occupied by the DCI region and the second symbol number occupied by the DCI region of the non-MBSFN subframe according to the downlink control information of the MBSFN subframe, Determining a third symbol number occupied by a DCI region of each subframe in the subframe group consisting of the set number of subframes, and determining, according to the third symbol number, a subframe group consisting of the set number of subframes a specific start symbol position of each subframe in the medium; determining a start symbol position determined according to the third symbol number in the first slot of the current subframe when the physical downlink channel performs resource mapping Start mapping;
- the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe
- the first symbol number occupied by the DCI region and the non-MBSFN subframe according to the downlink control information of the MBSFN subframe.
- a second symbol number occupied by the DCI region determining a third symbol number occupied by a DCI region of each subframe in the subframe set, and determining, according to the third symbol number, a specificity of each subframe in the subframe group a starting symbol position; determining that the physical downlink channel starts mapping when starting resource mapping, starting from a starting symbol position determined according to the third symbol number in a first time slot of a current subframe.
- the processor determines that the third symbol number is a minimum value or a maximum value of the first symbol number and the second symbol number.
- the processor is in a subframe in which the actual symbol number of the DCI region is greater than the third symbol number, Determining, when the resource mapping is performed on the physical downlink channel, mapping the physical downlink channel bearer to a pre-A of the start symbol position determined according to the third symbol number in the first slot of the current subframe.
- the information on the symbols is not mapped or set to 0 or covered by the DCI transmitted on the A symbols, the number of A symbols being the actual number of symbols of the DCI area of the current subframe and the number of the third symbols Poor; or,
- the processor determines that the actual symbol number of the DCI region is smaller than the third symbol number subframe.
- the physical downlink channel performs resource mapping, starting from the start symbol position determined according to the third symbol number in the first time slot of the current subframe, and determining that the physical downlink channel is performing resource mapping
- the partial information in the information carried by the physical downlink channel is repeatedly mapped to the front B symbols of the start symbol position determined according to the third symbol number in the first slot of the current subframe, the B The number of symbols is the difference between the third symbol number and the actual number of symbols of the DCI region of the current subframe.
- the processor is In each subframe in the subframe group, determining that the physical downlink channel is mapped from a specific start symbol position in a first slot of a current subframe when performing resource mapping, and mapping to a dedicated demodulation reference All resources except the resources corresponding to the signal DMRS;
- the processor determines, in each subframe in the subframe set, that the physical downlink channel is in When performing resource mapping, mapping is started from a specific start symbol position in the first slot of the current subframe, and mapped to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS;
- the information on the drop is not mapped or set to 0 or overwritten by the CRS transmitted on the resource.
- the processor is in the subframe group Determining, in each of the subframes, that the physical downlink channel starts the resource mapping, starting from a starting symbol position determined according to a DCI region size of the downlink control information of the non-MBSFN subframe in the first slot of the current subframe. Mapping, mapping to all resources except the common reference signal CRS or resources other than the common reference signal CRS and the dedicated demodulation reference signal DMRS;
- the processor determines, in each subframe in the subframe set, that the physical downlink channel is performing resource mapping. And mapping from the start symbol position determined according to the downlink control information DCI region size of the non-MBSFN subframe in the first slot of the current subframe, mapping to the common reference signal CRS or in addition to the common reference signal CRS and dedicated All resources except the resources corresponding to the reference signal DMRS are demodulated.
- the processor is in the subframe group Determining, in the case of performing resource mapping, that the physical downlink channel starts mapping from a start symbol position determined according to a DCI region size of the downlink control information of the MBSFN subframe in the first slot of the current subframe, Mapping to all resources except the resources corresponding to the dedicated demodulation reference signal DMRS;
- the processor determines, in each subframe in the subframe set, when the physical downlink channel performs resource mapping. Mapping from the start symbol position determined according to the downlink control information DCI region size of the MBSFN subframe in the first slot of the current subframe, and mapping to all resources except the resource corresponding to the dedicated demodulation reference signal DMRS on.
- the processor determines, in the subframe in which the channel state information reference signal CSI-RS resource is configured in the subframe set, that the physical downlink channel is performing resources. Mapping, determining that the physical downlink channel maps the physical downlink channel bearer to a non-zero power NZP when performing resource mapping The information on the CSI-RS resource is not mapped or set to 0 or is covered by the CSI-RS transmitted on the resource, and the information mapped on the physical downlink channel bearer mapped to the zero-power ZP CSI-RS resource is not mapped. Or set to 0.
- the subframe group consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe
- the processor when the subframe set includes the multicast/multicast single frequency network MBSFN subframe and the non-MBSFN subframe, indicating, by the transceiver, the MBSFN subframe and the non in the subframe set.
- the MBSFN subframe is received by using the same transmission mode, where the transmission mode includes at least one or a combination of a demodulation reference signal, a transmission port and a port number, and a precoding manner.
- the processor instructs the transceiver to receive by using the transmission mode corresponding to the subframe set or the specific subframe in the subframe group; or receiving by using a preset transmission manner.
- the processor instructs the transceiver to receive by using the transmission mode corresponding to the subframe set or the first subframe in the subframe group; or
- Receiving is performed by using the transmission mode corresponding to the subframe set or the MBSFN subframe in the subframe group.
- the processor instructs the transceiver to discard the unmapped or set to 0 or the resources covered by other signals when performing resource mapping when receiving the physical downlink channel according to the resource mapping manner.
- Information set to 0 or a specific value on reception.
- the processor instructs the transceiver to merge the received information in each of the subframe groups consisting of the set number of subframes participating in the multi-subframe channel estimation in the subframe set, determining that the device is set The information at the resource location that is 0 or a specific value does not participate in the merging; or, when the information received in each of the subframe sets is combined, it is determined that the resource location is set to 0 or a specific value Information does not participate in the merger.
- embodiments of the present invention can be provided as a method, system, or computer program product. Accordingly, the present invention may take the form of an entirely hardware embodiment, an entirely software embodiment, or a combination of software and hardware. Moreover, the invention can take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) including computer usable program code.
- computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
- the computer program instructions can also be stored in a computer readable memory that can direct a computer or other programmable data processing device to operate in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture comprising the instruction device.
- the apparatus implements the functions specified in one or more blocks of a flow or a flow and/or block diagram of the flowchart.
- These computer program instructions can also be loaded onto a computer or other programmable data processing device such that a series of operational steps are performed on a computer or other programmable device to produce computer-implemented processing for execution on a computer or other programmable device.
- the instructions provide steps for implementing the functions specified in one or more of the flow or in a block or blocks of a flow diagram.
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Abstract
Description
Claims (52)
- 一种下行数据重复传输方法,其特征在于,包括:确定重复传输物理下行信道的子帧集合;在确定的子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上;按照所述资源映射方式发送所述物理下行信道。
- 如权利要求1所述的方法,其特征在于,所述特定的起始符号位置由高层信令预先配置;或者,所述特定的起始符号位置为根据下行控制信息DCI区域大小得到的,所述DCI区域大小为根据控制格式指示CFI获得的。
- 如权利要求1所述的方法,其特征在于,当所述子帧集合包括多个子帧组,以所述子帧组为单位处理,所述子帧组由参与多子帧信道估计的设定数目的子帧组成,且所述子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,具体包括:根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧组中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧组中的每个子帧的特定的起始符号位置;对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射;或者,以所述子帧集合为单位处理,当所述子帧集合中包括多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,具体包括:根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧集合中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧集合中的每个子帧的特定的起始符号位置;对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射。
- 如权利要求3所述的方法,其特征在于,确定所述第三符号数为所述第一符号数和所述第二符号数中的最小值或最大值。
- 如权利要求4所述的方法,其特征在于,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射,包括:若所述第三符号数为所述第一符号数和所述第二符号数中的最小值,在DCI区域的实 际符号数大于所述第三符号数的子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始的前A个符号上的信息丢弃不映射或者置为0或者由在该A个符号上传输的DCI覆盖,所述A个符号数为当前子帧的DCI区域的实际符号数与所述第三符号数的差;或者,若所述第三符号数为所述第一符号数和所述第二符号数中的最大值,在DCI区域的实际符号数小于所述第三符号数的子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射,并将所述物理下行信道承载的信息中的部分信息重复映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置的前面的B个符号上,所述B个符号数为所述第三符号数与当前子帧的DCI区域的实际符号数的差。
- 如权利要求1所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧组中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧组中的非MBSFN子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖;或者,当所述子帧集合中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧集合中的非MBSFN子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖。
- 如权利要求1所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,所述方法还包括:对于属于同一个所述子帧组的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行传输,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合;或者,当所述子帧集合中包括MBSFN子帧和非MBSFN子帧时,所述方法还包括;对于所述子帧集合中的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行传输,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合。
- 如权利要求7所述的方法,其特征在于,采用相同的传输方式进行传输,包括:采用所述子帧集合或所述子帧组中的特定子帧所对应的传输方式进行传输;或者,采用预设的传输方式进行传输。
- 如权利要求8所述的方法,其特征在于,采用所述子帧集合或所述子帧组中的特定子帧所对应的传输方式进行传输,包括:采用所述子帧集合或所述子帧组中的第一个子帧所对应的传输方式进行传输;或者,采用所述子帧集合或所述子帧组中的MBSFN子帧所对应的传输方式进行传输。
- 如权利要求1所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含非多播/组播单频网络MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧组中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括非MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求1所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含多播/组播单频网络MBSFN子帧时,对所述物理 下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧组中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括多播/组播单频网络MBSFN子帧时,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求1~11任一所述的方法,其特征在于,在所述子帧集合中的被配置了信道状态信息参考信号CSI-RS资源的子帧中,对所述物理下行信道进行资源映射时,还包括:将所述物理下行信道承载的映射到非零功率NZP CSI-RS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CSI-RS覆盖,将所述物理下行信道承载的映射到零功率ZP CSI-RS资源上的信息丢弃不映射或置为0。
- 一种下行数据重复传输方法,其特征在于,包括:确定重复传输物理下行信道的子帧集合;在确定的子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上;按照所述资源映射方式接收所述物理下行信道。
- 如权利要求13所述的方法,其特征在于,所述特定的起始符号位置由高层信令预先配置;或者,所述特定的起始符号位置为根据下行控制信息DCI区域大小得到的,所述DCI区域大小为根据控制格式指示CFI获得的。
- 如权利要求13所述的方法,其特征在于,当所述子帧集合包括多个子帧组,以所述子帧组为单位处理,所述子帧组由参与多子帧信道估计的设定数目的子帧组成,且所述子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,具体包括:根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧组中的每个子帧的DCI区域占用的第三符号数, 根据所述第三符号数确定所述子帧组中的每个子帧的特定的起始符号位置;确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射;或者,以所述子帧集合为单位处理,当所述子帧集合中包括多播/组播单频网络MBSFN子帧和非MBSFN子帧时,确定物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,具体包括:根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧集合中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧集合中的每个子帧的特定的起始符号位置;确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射。
- 如权利要求15所述的方法,其特征在于,确定所述第三符号数为所述第一符号数和所述第二符号数中的最小值或最大值。
- 如权利要求16所述的方法,其特征在于,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射,包括:若所述第三符号数为所述第一符号数和所述第二符号数中的最小值,在DCI区域的实际符号数大于所述第三符号数的子帧中,确定所述物理下行信道在进行资源映射时,将所述物理下行信道承载的映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始的前A个符号上的信息丢弃不映射或者置为0或者由在该A个符号上传输的DCI覆盖,所述A个符号数为当前子帧的DCI区域的实际符号数与所述第三符号数的差;或者,若所述第三符号数为所述第一符号数和所述第二符号数中的最大值,在DCI区域的实际符号数小于所述第三符号数的子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射,并确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的信息中的部分信息重复映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置的前面的B个符号上,所述B个符号数为所述第三符号数与当前子帧的DCI区域的实际符号数的差。
- 如权利要求13所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧组中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧组中的非MBSFN子帧中,确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖;或者,当所述子帧集合中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧集合中的非MBSFN子帧中,确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖。
- 如权利要求13所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,所述方法还包括:对于属于同一个所述子帧组的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行接收,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合;或者,当所述子帧集合中包括多播/组播单频网络MBSFN子帧和非MBSFN子帧时,所述方法还包括;对于所述子帧集合中的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行接收,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合。
- 如权利要求19所述的方法,其特征在于,采用相同的传输方式进行接收,包括:采用所述子帧集合或所述子帧组中的特定子帧所对应的传输方式进行接收;或者,采用预设的传输方式进行接收。
- 如权利要求20所述的方法,其特征在于,采用所述子帧集合或所述子帧组中的特定子帧所对应的传输方式进行接收,包括:采用所述子帧集合或所述子帧组中的第一个子帧所对应的传输方式进行接收;或者,采用所述子帧集合或所述子帧组中的MBSFN子帧所对应的传输方式进行接收。
- 如权利要求13所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含非多播/组播单频网络MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧组中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括非多播/组播单频网络MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求13所述的方法,其特征在于,当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含多播/组播单频网络MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧组中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括多播/组播单频网络MBSFN子帧时,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上,具体包括:在所述子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求13~23任一所述的方法,其特征在于,在所述子帧集合中的被配置了信道状态信息参考信号CSI-RS资源的子帧中,还包括:确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的映射到非零功 率NZP CSI-RS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CSI-RS覆盖,将所述物理下行信道承载的映射到零功率ZP CSI-RS资源上的信息丢弃不映射或置为0。
- 如权利要求13~24任一所述的方法,其特征在于,在按照所述资源映射方式接收所述物理下行信道时,具体包括:将所述物理下行信道在进行资源映射时丢弃不映射或者置为0或者由其他信号覆盖的资源上的信息,在接收时置为0或者特定值。
- 如权利要求25所述的方法,其特征在于,对所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中的每个子帧中接收到的信息进行合并时,确定被置为0或者特定值的资源位置上的信息不参与合并;或者,对所述子帧集合中的每个子帧中接收到的信息进行合并时,确定被置为0或者特定值的资源位置上的信息不参与合并。
- 一种发送端设备,其特征在于,包括:确定模块,用于确定重复传输物理下行信道的子帧集合;资源映射模块,用于在确定的子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上;发送模块,用于按照所述资源映射方式发送所述物理下行信道。
- 如权利要求27所述的设备,其特征在于,所述特定的起始符号位置由高层信令预先配置;或者,所述特定的起始符号位置为根据下行控制信息DCI区域大小得到的,所述DCI区域大小为根据控制格式指示CFI获得的。
- 如权利要求27所述的设备,其特征在于,所述资源映射模块具体用于:当所述子帧集合包括多个子帧组,以所述子帧组为单位处理,所述子帧组由参与多子帧信道估计的设定数目的子帧,且所述子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧组中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧组中的每个子帧的特定的起始符号位置;对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射;或者,以所述子帧集合为单位处理,当所述子帧集合中包括多播/组播单频网络MBSFN子帧和非MBSFN子帧时,根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧集合中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧集合中的每个子帧的特定 的起始符号位置;对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射。
- 如权利要求29所述的设备,其特征在于,所述资源映射模块具体用于:确定所述第三符号数为所述第一符号数和所述第二符号数中的最小值或最大值。
- 如权利要求30所述的设备,其特征在于,所述资源映射模块具体用于:若所述第三符号数为所述第一符号数和所述第二符号数中的最小值,在DCI区域的实际符号数大于所述第三符号数的子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始的前A个符号上的信息丢弃不映射或者置为0或者由在该A个符号上传输的DCI覆盖,所述A个符号数为当前子帧的DCI区域的实际符号数与所述第三符号数的差;或者,若所述第三符号数为所述第一符号数和所述第二符号数中的最大值,在DCI区域的实际符号数小于所述第三符号数的子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射,并将所述物理下行信道承载的信息中的部分信息重复映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置的前面的B个符号上,所述B个符号数为所述第三符号数与当前子帧的DCI区域的实际符号数的差。
- 如权利要求27所述的设备,其特征在于,所述资源映射模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,在所述子帧组中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧组中的非MBSFN子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖;或者,当所述子帧集合中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,在所述子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧集合中的非MBSFN子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖。
- 如权利要求27所述的设备,其特征在于,所述发送模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对于属于同一个所述子帧组的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行传输,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合;或者,当所述子帧集合中包括MBSFN子帧和非MBSFN子帧时,对于所述子帧集合中的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行传输,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合。
- 如权利要求33所述的设备,其特征在于,所述发送模块具体用于:采用所述子帧集合或所述子帧组中的特定子帧所对应的传输方式进行传输;或者,采用预设的传输方式进行传输。
- 如权利要求34所述的设备,其特征在于,所述发送模块具体用于:采用所述子帧集合或所述子帧组中的第一个子帧所对应的传输方式进行传输;或者,采用所述子帧集合或所述子帧组中的MBSFN子帧所对应的传输方式进行传输。
- 如权利要求27所述的设备,其特征在于,所述资源映射模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含非多播/组播单频网络MBSFN子帧时,在所述子帧组中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括非MBSFN子帧时,在所述子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求27所述的设备,其特征在于,所述资源映射模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含多播/组播单频网络MBSFN子帧时,在所述子帧组中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括多播/组播单频网络MBSFN子帧时,在所述子帧集合中的每个子帧中,对所述物理下行信道进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求27~37任一所述的设备,其特征在于,所述资源映射模块还用于:在所述子帧集合中的被配置了信道状态信息参考信号CSI-RS资源的子帧中,对所述物理下行信道进行资源映射时,将所述物理下行信道承载的映射到非零功率NZP CSI-RS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CSI-RS覆盖,将所述物理下行信道承载的映射到零功率ZP CSI-RS资源上的信息丢弃不映射或置为0。
- 一种接收端设备,其特征在于,包括:第一确定模块,用于确定重复传输物理下行信道的子帧集合;第二确定模块,用于在确定的子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了解调用参考信号对应的资源之外的所有资源上;接收模块,用于按照所述资源映射方式接收所述物理下行信道。
- 如权利要求39所述的设备,其特征在于,所述特定的起始符号位置由高层信令预先配置;或者,所述特定的起始符号位置为根据下行控制信息DCI区域大小得到的,所述DCI区域大小为根据控制格式指示CFI获得的。
- 如权利要求39所述的设备,其特征在于,所述第二确定模块具体用于:当所述子帧集合包括多个子帧组,以所述子帧组为单位处理,所述子帧组由参与多子帧信道估计的设定数目的子帧组成,且所述子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧组中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧组中的每个子帧的特定的起始符号位置;确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射;或者,以所述子帧集合为单位处理,当所述子帧集合中包括多播/组播单频网络MBSFN子帧和非MBSFN子帧时,根据MBSFN子帧的下行控制信息DCI区域占用的第一符号数以及非MBSFN子帧的DCI区域占用的第二符号数,确定所述子帧集合中的每个子帧的DCI区域占用的第三符号数,根据所述第三符号数确定所述子帧集合中的每个子帧的特定的起始符号位置;确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射。
- 如权利要求41所述的设备,其特征在于,所述第二确定模块具体用于:确定所述第三符号数为所述第一符号数和所述第二符号数中的最小值或最大值。
- 如权利要求42所述的设备,其特征在于,所述第二确定模块具体用于:若所述第三符号数为所述第一符号数和所述第二符号数中的最小值,在DCI区域的实际符号数大于所述第三符号数的子帧中,确定所述物理下行信道在进行资源映射时,将所述物理下行信道承载的映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始的前A个符号上的信息丢弃不映射或者置为0或者由在该A个符号上传输的DCI覆盖,所述A个符号数为当前子帧的DCI区域的实际符号数与所述第三符号数的差;或者,若所述第三符号数为所述第一符号数和所述第二符号数中的最大值,在DCI区域的实际符号数小于所述第三符号数的子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置开始映射,并确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的信息中的部分信息重复映射到当前子帧的第一个时隙中的根据所述第三符号数确定的起始符号位置的前面的B个符号上,所述B个符号数为所述第三符号数与当前子帧的DCI区域的实际符号数的差。
- 如权利要求39所述的设备,其特征在于,所述第二确定模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,在所述子帧组中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧组中的非MBSFN子帧中,确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖;或者,当所述子帧集合中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,在所述子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的特定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;且,在所述子帧集合中的非MBSFN子帧中,确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的映射到公共参考信号CRS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CRS覆盖。
- 如权利要求39所述的设备,其特征在于,所述接收模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中包含多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对于属于同一个所述子帧组的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行接收,其中,所述传输方式 至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合;或者,当所述子帧集合中包括多播/组播单频网络MBSFN子帧和非MBSFN子帧时,对于所述子帧集合中的所述MBSFN子帧和所述非MBSFN子帧采用相同的传输方式进行接收,其中,所述传输方式至少包括解调用参考信号、传输端口和端口数以及预编码方式中的任意一种或组合。
- 如权利要求45所述的设备,其特征在于,所述接收模块具体用于:采用所述子帧集合或所述子帧组中的特定子帧所对应的传输方式进行接收;或者,采用预设的传输方式进行接收。
- 如权利要求46所述的设备,其特征在于,所述接收模块具体用于:采用所述子帧集合或所述子帧组中的第一个子帧所对应的传输方式进行接收;或者,采用所述子帧集合或所述子帧组中的MBSFN子帧所对应的传输方式进行接收。
- 如权利要求39所述的设备,其特征在于,所述第二确定模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含非多播/组播单频网络MBSFN子帧时,在所述子帧组中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括非多播/组播单频网络MBSFN子帧时,在所述子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据非MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了公共参考信号CRS或者除了公共参考信号CRS和专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求39所述的设备,其特征在于,所述第二确定模块具体用于:当所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中仅包含多播/组播单频网络MBSFN子帧时,在所述子帧组中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到除了专用解调参考信号DMRS对应的资源之外的所有资源上;或者,当所述子帧集合中仅包括多播/组播单频网络MBSFN子帧时,在所述子帧集合中的每个子帧中,确定所述物理下行信道在进行资源映射时,从当前子帧的第一个时隙中的根据MBSFN子帧的下行控制信息DCI区域大小确定的起始符号位置开始映射,映射到 除了专用解调参考信号DMRS对应的资源之外的所有资源上。
- 如权利要求39~49任一所述的设备,其特征在于,所述第二确定模块还用于:在所述子帧集合中的被配置了信道状态信息参考信号CSI-RS资源的子帧中,确定所述物理下行信道在进行资源映射时将所述物理下行信道承载的映射到非零功率NZPCSI-RS资源上的信息丢弃不映射或者置为0或者由在该资源上传输的CSI-RS覆盖,将所述物理下行信道承载的映射到零功率ZP CSI-RS资源上的信息丢弃不映射或置为0。
- 如权利要求39~50任一所述的设备,其特征在于,所述接收模块具体用于:在按照所述资源映射方式接收所述物理下行信道时,将所述物理下行信道在进行资源映射时丢弃不映射或者置为0或者由其他信号覆盖的资源上的信息,在接收时置为0或者特定值。
- 如权利要求51所述的设备,其特征在于,所述接收模块还用于:对所述子帧集合中参与多子帧信道估计的设定数目的子帧组成的子帧组中的每个子帧中接收到的信息进行合并时,确定被置为0或者特定值的资源位置上的信息不参与合并;或者,对所述子帧集合中的每个子帧中接收到的信息进行合并时,确定被置为0或者特定值的资源位置上的信息不参与合并。
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| KR20180004404A (ko) | 2018-01-11 |
| CN106209330A (zh) | 2016-12-07 |
| US20180131430A1 (en) | 2018-05-10 |
| US10382113B2 (en) | 2019-08-13 |
| JP6883566B2 (ja) | 2021-06-09 |
| EP3297201A4 (en) | 2018-05-09 |
| CN106209330B (zh) | 2019-06-28 |
| KR102100786B1 (ko) | 2020-04-14 |
| EP3297201B1 (en) | 2024-12-25 |
| EP3297201A1 (en) | 2018-03-21 |
| JP2018516029A (ja) | 2018-06-14 |
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