WO2014117521A1 - 调整网络配置的方法及装置 - Google Patents
调整网络配置的方法及装置 Download PDFInfo
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- WO2014117521A1 WO2014117521A1 PCT/CN2013/083361 CN2013083361W WO2014117521A1 WO 2014117521 A1 WO2014117521 A1 WO 2014117521A1 CN 2013083361 W CN2013083361 W CN 2013083361W WO 2014117521 A1 WO2014117521 A1 WO 2014117521A1
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- Prior art keywords
- service mode
- information
- network device
- power
- mapping relationship
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/16—Central resource management; Negotiation of resources or communication parameters, e.g. negotiating bandwidth or QoS [Quality of Service]
- H04W28/18—Negotiating wireless communication parameters
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W8/00—Network data management
- H04W8/22—Processing or transfer of terminal data, e.g. status or physical capabilities
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- the present invention relates to the field of wireless communication technologies, and in particular, to a method and apparatus for adjusting a network configuration. Background technique
- terminal devices such as smart phones and tablet computers for wireless networks have developed rapidly, and hardware performance has become increasingly powerful and functions have become more and more abundant.
- the UE can change the configuration of the UE to implement non-continuous monitoring of the channel by the UE, so as to reduce the UE when there is no service.
- Energy consumption for example: In LTE (Long Term Evolution), the RRC (Radio Resource Control) of the UE includes two states: RRC-IDLE and RRC-CONNECTED.
- RRC-IDLE In the RRC-IDLE state, a DRX (Discontinuous Reception) can be configured on the UE side to implement the discontinuous listening of the paging channel.
- the UE can continuously monitor the PDCCH through the DRX.
- Downlink Control Channel physical downlink control channel
- the UE may request the eNodeB (evolved NodeB, evolved base station or Node B) to modify its own configuration parameters about the interception, for example: modify the DRX configuration, release the RRC connection, stop the CQI (Channel Quality indicator, channel quality indicator) Reports and modifies the time interval for UE measurement reporting.
- the eNodeB instructs the UE to enter a corresponding power saving state. Therefore, the UE is entered into the power-saving monitoring state by modifying the configuration on the UE side.
- the energy consumption when the UE monitors the channel is saved by adjusting the configuration on the UE side.
- the energy consumption is large.
- the energy-saving scheme of the UE when the service or the service is performed is lacking, so that the energy-saving effect is not high, for example: the existing energy-saving is applied on the market.
- the standby time of technology smartphones is still very short. As a result, the UE has a shorter running time and a lower user experience. Summary of the invention
- the embodiment of the present invention provides a method and an apparatus for adjusting a network configuration, which can adjust the configuration of the network side according to the specific operation of the UE, so as to reduce the energy consumption of the UE when the UE has a service or a service, thereby increasing the UE. Run time to improve the user experience.
- an embodiment of the present invention provides a method for adjusting a network configuration, including: receiving, by a network device, demand information sent by a terminal device UE, where the demand information includes the UE a power saving request information or a maximum transmit power of the UE; the network device searches for a mapping relationship between the service mode information and the demand information, and determines at least one service mode of the network device according to the mapping relationship; Transmitting, by the network device, service mode information of the service mode of the network device to the UE, so that the UE determines selection information according to the received service mode information, where the service mode information is used to indicate Describe the service mode of the network device;
- the power saving request information includes power information of the UE, and the network device searches for the demand information and a service mode letter
- the mapping relationship between the information includes:
- the requirement information includes a maximum transmit power of the UE, and the network device searches for a mapping relationship between the demand information and service mode information.
- Determining, according to the mapping relationship, the at least one service mode of the network device includes: determining, according to a mapping relationship corresponding to the value interval, the service mode of at least one of the network devices.
- the configuring, by the service mode determined by the selecting information, the configuration of the network device includes:
- the network device turns on a corresponding number of antennas according to the number of antennas, and receives data sent by the UE through the opened antenna.
- Further determining the number of antennas specified by the service mode includes:
- an embodiment of the present invention provides a method for adjusting a network configuration, including: a terminal device UE transmitting demand information to a network device, where the demand information includes power saving request information of the UE or maximum transmission of the UE Power, so that the network device searches for a mapping relationship between the demand information and a service mode, and determines a service mode of the at least one network device according to the mapping relationship;
- the terminal device determines, according to the service mode information, selection information, where the selection information corresponds to one service mode in the service mode information;
- the terminal device modifies the configuration of the terminal device according to the service mode determined by the selection information, and sends the selection information to the network device, so that the network device modifies the configuration according to the selection information.
- the power saving request information includes power information of the UE
- the network device determines the mapping relationship between the power information and the service mode, and acquires the service mode according to the mapping relationship corresponding to the power information.
- Modifying the configuration of the terminal device by the service mode corresponding to the information includes:
- an embodiment of the present invention provides a network device for adjusting a network configuration, including: a first receiving module, configured to receive information sent by a terminal device UE, where the information includes demand information and selection information, where the requirement The information includes power saving request information of the UE or a maximum transmit power of the UE;
- An analysis module configured to search a mapping relationship between the service mode and the requirement information, and determine at least one service mode of the network device according to the mapping relationship;
- a first sending module configured to send the determined service mode information of the service mode of the network device to the UE, so that the UE determines, according to the received service mode information, the selection information, the service mode information, Instructing the service mode of the network device;
- a first configuration modification module configured to obtain the selection information sent by the UE, and modify a configuration of the network device according to the service mode determined by the selection information, where the selection information corresponds to the service mode information A service model.
- the power saving request information includes power information of the UE
- the analyzing module includes:
- a power analysis unit configured to obtain a mapping relationship between the power information and service mode information
- a service mode acquiring unit configured to determine, according to the mapping relationship corresponding to the power quantity information, at least one service mode of the network device.
- the requirement information includes a maximum transmit power of the UE
- the analyzing module includes:
- a power analysis unit configured to determine a value interval in which the maximum transmit power of the UE is located, where the value interval corresponds to at least one mapping relationship
- a service mode acquiring unit configured to determine, according to the mapping relationship corresponding to the value interval, the service mode of at least one type of the network device.
- the first configuration modification module includes:
- An antenna quantity analyzing unit configured to obtain the selection information sent by the UE, and determine, according to the service mode corresponding to the selection information, an antenna number specified by the service mode; Describe the number of antennas, turn on a corresponding number of antennas to modify the antenna enabling configuration of the network device, and receive data sent by the UE through the turned-on antenna.
- the antenna quantity analyzing unit is further configured to detect whether a currently required transmit power of the UE is greater than the maximum transmit power
- the antenna activation unit is further configured to: if the currently required transmit power of the UE is greater than the maximum transmit power, increase a preset number of antennas, and add the sum of the number of antennas after the preset number is The number of antennas specified by the service mode.
- an embodiment of the present invention provides a terminal device for adjusting a network configuration, including: a second sending module, configured to send demand information to a network device, where the demand information includes a power saving request information or a location of the UE Describe the maximum transmit power of the UE, so as to obtain the correspondence between the network device and the service mode;
- a second receiving module configured to receive service mode information sent by the network device, where the service The mode information is obtained by the network device according to the mapping relationship, where the service mode information is used to indicate a service mode;
- a selection module configured to determine, according to the service mode information, selection information, where the selection information corresponds to one of the service mode information
- a second configuration modification module configured to modify a configuration of the terminal device according to the service mode determined by the selection information, and send the selection information to the network device, so that the network device is modified according to the selection information Configuration.
- the sending, by the second sending module, the power saving request information includes power information of the UE, where the power information corresponds to at least one service mode
- the mapping relationship between the network device determines the mapping relationship between the power information and the service mode, and obtains a service mode according to the mapping relationship corresponding to the power information.
- the second configuration modification module includes:
- a power analysis unit configured to determine a transmit power corresponding to the service mode determined by the selection information, so that the second sending module sends data to the network device according to the transmit power corresponding to the service mode.
- the method and device for adjusting the network configuration provided by the embodiment of the present invention are capable of receiving demand information such as power saving request information of the UE or maximum transmit power of the UE, and selecting a corresponding service mode according to the demand information, and then selecting according to the selected service mode.
- the service mode modifies the configuration of the network device.
- the present invention can adjust the configuration of the network side according to the specific operation of the UE, so as to reduce the energy consumption of the UE when the UE has services or services, thereby increasing the running time of the UE and improving the user body. Test. DRAWINGS
- Figure la is a flowchart of a method for adjusting a network configuration according to an embodiment of the present invention
- Figure lb is a schematic diagram of a specific example of a method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 2a is a flowchart of another method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 2b is a flowchart of another embodiment of a method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 2 is a schematic diagram of another specific example of a method for adjusting a network configuration according to an embodiment of the present disclosure
- 2c is a flowchart of another specific implementation procedure of another method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 2 is a flowchart of still another specific implementation step of another method for adjusting a network configuration according to an embodiment of the present disclosure
- FIG. 2 is a flowchart of still another method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 3 is a flowchart of still another method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 4a is a flowchart of still another method for adjusting a network configuration according to an embodiment of the present invention
- FIG. 4b is a flowchart of still another method for adjusting a network configuration according to an embodiment of the present invention.
- FIG. 5 is a schematic structural diagram of a network device according to an embodiment of the present invention.
- FIG. 5b is a schematic structural diagram of a part of a network device according to an embodiment of the present invention.
- FIG. 5c is a schematic structural diagram of another part of a network device according to an embodiment of the present invention.
- FIG. 5 is a schematic structural diagram of still another detail of a network device according to an embodiment of the present invention.
- FIG. 6 is a schematic structural diagram of a terminal device according to an embodiment of the present invention.
- FIG. 7 is a schematic diagram of a system according to an embodiment of the present invention.
- FIG. 8 is a schematic structural diagram of still another terminal device according to an embodiment of the present invention.
- FIG. 9 is a schematic structural diagram of still another network device according to an embodiment of the present invention.
- a method for adjusting a network configuration is provided, as shown in FIG.
- the network device receives demand information sent by the terminal device UE, where the demand information includes The power saving request information of the UE or the maximum transmitting power of the UE.
- the network device may receive the demand information sent by the UE.
- the network device may be a device that has a data interaction function with the UE through the wireless network, such as a base station or a server.
- the requirement information may include, but is not limited to, a power saving request information of the UE or a maximum transmit power of the UE. It should be noted that the requirement information sent by the UE may be information input by the UE through the input device, for example, the user may input a value to the smart phone through the touch screen, and the smart phone may use the value input by the user as the maximum transmit power. Send to the base station.
- the demand information may include power saving request information, which may be power saving request information, such as bit information, signaling, etc., which are well known to those skilled in the art, for triggering network device execution 102-104. information.
- the network device searches for a mapping relationship between the service mode information and the requirement information, and determines at least one service mode of the network device according to the mapping relationship.
- the mapping relationship is a correspondence between the demand information and the service mode.
- the network device may analyze the requirement information sent by the UE, and obtain a mapping relationship corresponding to the requirement information.
- the requirement information received by the base station includes the maximum transmit power of the UE.
- the base station can determine the value interval in which the maximum transmit power is located.
- the value interval may be a continuous interval value in the pre-existing base station, and each value interval may correspond to at least one service mode, based on the maximum transmit power.
- the correspondence between the determined numerical interval and the service mode is the correspondence between the demand information and the service mode. For example, if the maximum transmit power is 6, the value range in which the maximum transmit power is located is (5, 10), and the mapping relationship corresponding to the demand information is 2, 3.
- the service mode information is obtained according to the mapping relationship.
- the network device sends the determined service mode information of the service mode of the network device to the UE, so that the UE determines, according to the received service mode information, selection information, the service mode information is used for Indicates a service mode of the network device.
- the UE acquires the selection information according to the service mode information, and the service mode information is used to indicate at least one service mode.
- the maximum transmit power is 6, the maximum transmit power is in the range of (5, 10), and the mapping information corresponding to the demand information is 2, 3.
- the network device can be based on the mapping relationship 2, 3 Determining the service mode 2, the service mode 3, and transmitting information for indicating the service mode 2 and the service mode 3, such as: name information, etc., as service mode information to the UE.
- the service mode information sent by the base station to the UE may further include fee information, for example: as shown in Table 1, Table 1
- the service mode 2 fee is 0. 20 yuan per hour
- the service mode 3 fee is 0. 30 yuan per hour.
- the fee information may be in a one-to-one correspondence with the service mode, and the base station may add the fee information into the service mode information and send the information to the UE.
- the network device receives the selection information sent by the UE, and the service mode determined according to the selection information is used to modify a configuration of the network device, where the selection information corresponds to one of the service mode information. Service mode.
- the selection information corresponds to one service mode in the service mode information.
- a service mode that can be corresponding to the information is selected, and the network device can determine the service mode selected by the UE according to the selection information, and modify the configuration of the network device by using a well-known implementation manner that is known to those skilled in the art. Enable the network device to support the service mode corresponding to the selection information.
- the base station After receiving the selection information sent by the UE, the base station determines, according to the selection information, that the service mode selected by the UE is the service mode 2. And the configuration information corresponding to the service mode 2 is preset in the base station, and the configuration information may be information well known to those skilled in the art for indicating the number of antennas in the base station, for example: configuration information representation The number of antennas in the base station is 3. After the UE selects the service mode 2, the base station determines, according to the selection information sent by the UE, that the number of antennas that the base station needs to enable in the service mode 2 is three, the base station can open the antenna. The number of antennas when data interaction with the UE is set to 3, thereby modifying the configuration of the base station.
- the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device can modify the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE. The lower the required transmit power of the UE, the lower the energy consumption required for the UE to perform data interaction in the service, thereby increasing the running time of the UE and improving the user experience.
- the configuration of the network device is modified to increase the number of antennas enabled by the network device, and the network device performs beamforming processing on the data received by the multiple antennas to ensure the quality of the data transmitted by the UE.
- the UE can maintain a lower transmit power and save energy consumption of the UE.
- the requirement information includes: a power saving request information of the UE or a maximum transmit power of the UE.
- the mapping relationship is a correspondence between the demand information and the service mode.
- the specific solution of 201-202 may include: 2021a, determining a mapping relationship corresponding to the power quantity information.
- the power information corresponds to at least one mapping relationship.
- the power information may be the remaining power of the UE, for example:
- the remaining power is 80%.
- the network device can determine the service mode 1 according to the mapping relationship 1.
- the remaining power is 60%.
- the network device can determine the service mode 2, 3 according to the mapping relationship 2, 3; the remaining power is 40%.
- the network device can determine the service mode 4, 5, 6 according to the mapping relationship 4, 5, 6.
- the specific solutions of 201-202 may include:
- the power information may be a target power value, and the target power value of the UE is smaller than the remaining power of the current UE.
- the target power value may be input by the user through the input device, and then sent by the UE to the network device; the target power value may also be automatically obtained by the UE through existing technical means. For example: If the remaining power of the current smartphone is 800mA, the user can input 500mA as the target power value, so that in the process of reducing the power of the smartphone from 800mA to 500mA, the network device and the smartphone can be reduced by executing 2022b-2023b. The energy consumption of smartphones.
- the network device can determine a value interval in which the difference between the target power value and the remaining power of the current UE is based on consecutive interval values in the pre-existing network device.
- the current power of the smartphone is 800mA
- the target battery value is 500mA
- the difference is 300mA.
- the service mode x, the configuration information X corresponding to the service mode X prestored in the base station, and the configuration information X may be information indicating that the number of antennas in the base station is increased, for example,
- the base station originally activates two antennas, and the configuration information X indicates that the number of activated antennas in the base station increases by three, then the base station selects the service mode X after the smart phone selects
- the selection information sent by the smart phone determines that in the service mode X, the base station needs to start five antennas in the data interaction process with the smart phone, and performs data received by the multiple antennas through common beamforming and other technical means. deal with.
- the network device can also support the relationship between the number of UEs and the collaboration distance through the commonly used multi-point joint receiving CoMP technology, for example: on the service with the smart phone.
- the base station originally activated two antennas, and the configuration information X indicates that the number of activated antennas in the base station is increased by 3.
- the base station determines according to the selection information sent by the smart phone.
- service mode X in with smartphone
- the base station needs to start 5 antennas.
- the base station can use the CoMP technology to enable the antenna of the neighboring base station to receive the data transmitted by the terminal device, and then receive the multi-antenna through common techniques such as beamforming.
- the data is processed.
- the base station when the UE's transmit power is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of the data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device changes the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE. The lower the required transmit power of the UE, the lower the energy consumption required for the UE to perform data interaction in the service, thereby increasing the running time of the UE and improving the user experience.
- 202 may include:
- the maximum transmit power of the UE received by the network device may be, as is well known to the skilled person, the upper limit of the power of the UE when transmitting radio waves, for example: the maximum transmit power is 1 millimeter. Watts, the power of the smartphone when transmitting radio waves during operation does not exceed 1 mW.
- the current smart phone is at the edge of the cell.
- the required transmit power is 2mW, corresponding to the transmit power of the smart phone 2mW
- the base station needs to enable three antennas.
- the service mode y can be obtained, and the configuration information y corresponding to the service mode y prestored in the base station, the configuration information y can be used for the table.
- the information indicating the number of antennas in the base station is increased.
- the base station originally activates three antennas, and the configuration information y indicates that the number of activated antennas in the base station increases by three, and the base station selects the service mode y after the smart phone selects According to the selection information sent by the smart phone, it is determined that in the service mode y, the base station needs to start 6 antennas during data interaction with the smart phone, and receives the multi-antenna through common beamforming and other technical means. The data is processed.
- the base station when the UE's transmit power is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of the data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device changes the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE. The lower the required transmit power of the UE, the lower the energy consumption required for the UE to perform data interaction in the service, thereby increasing the running time of the UE and improving the user experience.
- the service mode information is used to indicate at least one service mode.
- the method may further include: 204b, detecting whether the currently required transmit power of the UE is greater than the maximum transmit power.
- the network device can obtain the required transmit power of the UE on the current channel by using the technical means commonly used in the current communication protocol, and detect whether the required transmit power of the UE on the current channel is greater than that sent by the UE, as the demand information.
- Maximum transmit power In practical applications, in order to ensure the communication quality, the protocol often specifies the transmission power required by the UE to transmit data through the channel in different cells. The farther away from the base station, the greater the required transmission power.
- the UE's transmit power is controlled by the base station by signaling to the UE.
- the UE sends the maximum transmit power to the network device as the requirement information, so that when the network device performs data interaction with the UE, the actual transmit power of the UE does not exceed the maximum transmit as the demand information. power.
- the currently required transmit power of the UE is greater than the maximum transmit power, and since the transmit power of the UE in actual operation does not exceed the maximum transmit power, the network device needs to increase a preset number of antennas to satisfy the UE.
- Communication quality for example: The UE currently requires a transmit power of 2 mW, and the maximum transmit power is lmW.
- the base station needs to increase the number of antennas when communicating with the UE from the original 2 to 5 to meet the actual situation of the UE. Communication quality in the case where the transmission power does not exceed lmW.
- the number of antennas remains unchanged.
- the base station After receiving the selection information sent by the UE, the base station determines, according to the selection information, that the service mode selected by the UE is the service mode 1. And, the configuration information corresponding to the service mode 1 is preset in the base station, and the configuration information may be information well known to those skilled in the art for indicating the number of antennas in the base station. If the configuration information indicates that the number of antennas in the base station is 5, the base station is at the UE.
- the base station After the service mode 1 is selected, according to the selection information sent by the UE, it is determined that the number of antennas that the base station needs to enable in the service mode 1 is 5, and the number of antennas that are opened when the base station performs data interaction with the UE is 2, Then, the base station can turn on 2 antennas again, thereby modifying the configuration of the base station.
- an embodiment of the present invention provides another method for adjusting a network configuration, which is implemented in a user terminal or a terminal device, as shown in FIG. 3a, and includes:
- the terminal device UE sends the requirement information to the network device, where the requirement information includes the power saving request information of the UE or the maximum transmit power of the UE, so that the network device searches for the demand information and the service mode. Mapping relationship and determining a service mode of the at least one network device according to the mapping relationship.
- the requirement information that the UE sends to the network device includes, but is not limited to, the power saving request information of the UE or the maximum transmit power of the UE. Therefore, the network device obtains a mapping relationship corresponding to the demand information, and the mapping relationship is a correspondence between the demand information and the service mode.
- the UE may be a smart phone, a computer, or the like that has a wireless network access function and can perform data interaction with the network device.
- the terminal device UE receives the service mode information that is sent by the network device, where the service mode information is obtained by the network device according to the mapping relationship, and the service mode information is used to indicate the service of the network device. mode.
- the service mode information received by the UE is obtained by the network device according to the mapping relationship, and the service mode information is used to indicate at least one service mode.
- the terminal device determines, according to the service mode information, selection information, where the selection information corresponds to one service mode in the service mode information.
- the specific implementation manner of the UE acquiring the selection information according to the service mode information may be There are various types, for example: As shown in FIG. 3b, the smartphone can display the service mode indicated by the service mode information and the fee information corresponding to the service mode on the touch screen of the mobile phone. And a plurality of information controls can be displayed on the touch screen for receiving the trigger of the user input. When one of the information controls is triggered, the user selects a service mode corresponding to the information control, and the smart phone can be selected according to the user.
- the service mode generates the selection information, and adds a character string for identifying the service mode selected by the user in the selection information, so that after the network device receives the selection information sent by the UE, the configuration of the network device is modified according to the service mode selected by the user. .
- the terminal device modifies the configuration of the terminal device according to the service mode determined by the selection information, and sends the selection information to the network device, so that the network device modifies the configuration according to the selection information.
- the current power of the smartphone is 800mA
- the target battery value is 500mA
- the difference is 300mA.
- the service mode corresponding to the selected information is the service mode x
- the transmit power corresponding to the service mode X prestored in the smart phone for example: in the data interaction process of the smart phone for the service, the original based transmit power is 2 mW.
- the smart phone determines, according to the selection information, that in the service mode X, the smart phone based transmission power is lmW, then the maximum transmission power of the data exchange in the service mode X smart phone does not exceed lmW.
- the base station when the UE's transmit power is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of the data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device changes the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE.
- the method shown in FIG. 4a may also be included:
- the requirement information includes: a power saving request information of the UE or a maximum transmit power of the UE, so that the network device obtains a mapping relationship corresponding to the demand information, where the mapping relationship is a correspondence between the demand information and the service mode.
- the power saving request information includes the power information of the UE, and the power information corresponds to at least one mapping relationship, so that the network device determines the mapping relationship corresponding to the power information, and obtains the service mode according to the mapping relationship corresponding to the power information.
- the service mode information is obtained by the network device according to the mapping relationship, and the service mode information is used to represent the at least one service mode.
- the selection information corresponds to one service mode in the service mode information.
- 404 may include:
- the UE may pre-store the transmission power specified by each service mode, as shown in Table 2;
- the UE may obtain the transmit power of the service mode corresponding to the selection information, and use the acquired transmit power as the upper limit of the power of the UE to transmit the radio wave, so that the transmit power of the UE during operation does not exceed the acquired transmit power, for example:
- the information is corresponding to the service mode 2, and the transmit power obtained by the smart phone is 1. OOmW, and the transmit power of the smart phone during operation is not more than 1. OOmWo or as shown in FIG. 4b, including:
- the base station when the UE's transmit power is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of the data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device changes the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE. The lower the required transmit power of the UE, the lower the energy consumption required for the UE to perform data interaction in the service, thereby increasing the running time of the UE and improving the user experience.
- the network device 5a includes:
- the first receiving module 51 is configured to receive information sent by the terminal device UE, where the information includes a requirement. Information and selection information, wherein the demand information includes power saving request information of the UE or a maximum transmission power of the UE.
- the first receiving module 51 is further configured to receive the selection information sent by the UE.
- the analyzing module 52 is configured to search for a mapping relationship between the service mode and the requirement information, and determine at least one service mode of the network device according to the mapping relationship.
- the analyzing module 52 includes:
- the power information of the UE includes a target power value of the UE.
- the power analysis unit 521 is configured to determine a mapping relationship corresponding to the power quantity information.
- the service mode obtaining unit 522 is configured to determine, according to the mapping relationship corresponding to the power quantity information, at least one service mode of the network device.
- the analysis module 52 includes:
- the power analysis unit 524 is configured to determine a value interval in which the maximum transmit power of the UE is located, where the value interval corresponds to at least one mapping relationship.
- the service mode obtaining unit may be further configured to determine, according to the mapping relationship corresponding to the value interval, the service mode of the at least one network device.
- the first sending module 54 is configured to send the determined service mode information of the service mode of the network device to the UE, so that the UE determines the selection information according to the received service mode information, where the service mode is The information is used to indicate a service mode of the network device.
- the first configuration modification module 55 is configured to obtain the selection information sent by the UE, and modify a configuration of the network device according to the service mode determined by the selection information, where the selection information corresponds to the service mode information. a service model.
- the first receiving module 51 is further configured to receive the selection information sent by the UE, such that The first configuration modification module 55 obtains the selection information sent by the UE. In practice, it can also be obtained directly.
- the first configuration modification module 55 includes:
- the antenna number analyzing unit 551 is configured to obtain the selection information sent by the UE, and determine the number of antennas specified by the service mode according to a service mode corresponding to the selection information.
- the antenna starting unit 552 is configured to enable a corresponding number of antennas according to the number of the antennas, and receive data sent by the UE by using the opened antenna.
- the antenna quantity analyzing unit 551 is further configured to detect whether a current transmit power required by the UE is greater than the maximum transmit power
- the antenna starting unit 552 is further configured to: if the currently required transmit power of the UE is greater than the maximum transmit power, increase a preset number of antennas, and add the total number of antennas after the preset number The number of antennas specified as the service mode.
- the base station when the UE's transmit power is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of the data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device changes the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE. The lower the required transmit power of the UE, the lower the energy consumption required for the UE to perform data interaction in the service, thereby increasing the running time of the UE and improving the user experience.
- the terminal device 60 includes:
- the second sending module 61 is configured to send the requirement information to the network device.
- the requirement information includes: a power saving request information of the UE or a maximum transmit power of the UE, so that the network device obtains a mapping relationship corresponding to the demand information, where the mapping relationship is a correspondence between the demand information and the service mode.
- the power saving request information includes the power information of the UE, and the power information corresponds to at least one mapping relationship, so that the network device determines the mapping relationship corresponding to the power information, and according to the power The mapping relationship corresponding to the information acquires the service mode.
- the second receiving module 62 is configured to receive service mode information sent by the network device.
- the service mode information is obtained by the network device according to the mapping relationship, and the service mode information is used to represent the at least one service mode.
- the selecting module 63 is configured to obtain the selection information according to the service mode information.
- the selection information corresponds to one service mode in the service mode information.
- the second configuration modification module 64 is configured to modify a configuration of the terminal device according to the service mode corresponding to the selection information, and send the selection information to the network device. Therefore, the network device modifies the configuration on the network side according to the service mode corresponding to the selection information.
- the second configuration modification module 64 includes:
- the power analysis unit 641 is configured to determine a transmit power corresponding to the service mode corresponding to the selection information.
- the terminal device is configured to send data to the network device based on a transmit power corresponding to the service mode, or send data to the network device based on a maximum transmit power of the UE.
- the base station when the transmission power of the UE is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the base station is enabled when receiving data. The more antennas, the lower the required transmit power of the UE. Therefore, in this embodiment, the network device increases the configured number of antennas by modifying the configuration, thereby reducing the required transmit power of the UE.
- a system for adjusting a network configuration is provided, as shown in FIG. 7, including a network device 71 and a terminal device 72.
- the terminal device 72 sends the demand information to the network device 71, where the demand information includes: the power saving request information of the terminal device 72 or the maximum transmit power of the terminal device 72, so that the network device 71 acquires the demand A mapping relationship corresponding to the information, where the mapping relationship is a correspondence between the demand information and a service mode.
- the network device 71 receives the demand information sent by the terminal device 72.
- mapping relationship corresponding to the requirement information, where the mapping relationship is a correspondence between the requirement information and a service mode.
- the service mode information is obtained according to the mapping relationship, and the service mode information is sent to the terminal device 72.
- the terminal device 72 receives the service mode information sent by the network device 71, where the service mode information is obtained by the network device 71 according to the mapping relationship, and the service mode information is used to indicate at least one service mode.
- the network device 71 receives the selection information sent by the terminal device 72, and modifies the configuration of the network device 71 according to the service mode corresponding to the selection information, where the selection information corresponds to one service mode in the service mode information. .
- the base station when the UE's transmit power is low, the base station can receive data through multiple antennas, and perform beamforming and the like on the received data, thereby ensuring the quality of the data transmitted by the UE. That is, when the quality of data transmitted by the UE is relatively stable, the more antennas the base station enables when receiving data, the lower the required transmission power of the UE. Therefore, in this embodiment, the network device changes the configuration to increase the number of enabled antennas, thereby reducing the required transmit power of the UE. The lower the required transmit power of the UE, the lower the energy consumption required for the UE to perform data interaction in the service, thereby increasing the running time of the UE and improving the user experience.
- FIG. 8 shows an embodiment of a device in which device 80 includes a transmit circuit 802, a receive circuit 803, a processor 806, a memory 807, and an antenna 801.
- the processor 806 is used to control the device 80, which may also be referred to as a central processing unit CPU.
- Memory 807 can include read only memory and random access memory and provides instructions and data to processing unit 306.
- a portion of the memory 807 may also include non-volatile line random access memory (NVRAM).
- NVRAM non-volatile line random access memory
- a carrier accommodating the transmitting circuit 302 and the receiving circuit 803 may also be included to enable data transmission and reception by the device between the device 80 and the remote location.
- Transmitting circuit 802 and receiving circuit 803 can be coupled to an antenna 801.
- the various components of device 80 are coupled together by a bus system 8100, which in addition to the data bus includes a power bus, a control bus, and a status signal bus.
- bus system 8100 which in addition to the data bus includes a power bus, a control bus, and a status signal bus.
- various buses are labeled as bus system 8100 in the figure.
- the device 80 can be embedded or can be a wireless communication device such as a mobile phone.
- the embodiment of the present invention provides another embodiment of the terminal device, which can implement the method performed by the terminal device.
- the second sending module is implemented by the transmitting circuit 802 of the embodiment, or the second sending module is part of the transmitting circuit 802, and the second receiving module is implemented by the transmitting circuit 802 of the embodiment.
- the second receiving module is part of the transmitting circuit 802.
- the selection module and the second configuration modification module are on the processor 806, and the processor 806 is configured to implement determining the selection information according to the service mode information, where the selection information corresponds to one of the service mode information;
- the service mode determined by the selection information modifies the configuration of the terminal device, and sends the selection information to the network device, so that the network device modifies the configuration according to the selection information.
- Processor 806 may be an integrated circuit chip with signal processing capabilities. In the implementation process, each step of the above method may be completed by an integrated logic circuit of hardware in the processor 806 or an instruction in the form of hardware running software.
- the foregoing processor may be a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), an off-the-shelf programmable gate array (FPGA), or other programmable logic device. , discrete gates or transistor logic devices, discrete hardware components.
- the general purpose processor may be a microprocessor or the processor or any conventional processor, decoder or the like. Combined with the embodiment of the present invention
- the steps of the open method may be directly implemented by the hardware decoding processor, or by a combination of hardware and software modules in the decoding processor.
- the software modules can be located in a conventional storage medium such as random access memory, flash memory, read only memory, programmable read only memory or electrically erasable programmable memory, registers, and the like.
- the storage medium is located in the memory 807, and the processor reads the information in the memory 807 and combines the hardware to complete the steps of the above method.
- FIG. 9 shows an embodiment of a device.
- the device 90 includes a transmitting circuit 902, a receiving circuit 903, and a power controller. 904.
- Processor 906 is used to control device 90, which may also be referred to as a central processing unit CPU.
- Memory 907 can include read only memory and random access memory and provides instructions and data to processing unit 906.
- a portion of the memory 907 may also include non-volatile line random access memory (NVRAM).
- NVRAM non-volatile line random access memory
- a carrier housing the transmit circuitry 902 and the receive circuitry 903 may also be included to enable data transmission and reception by the device between the device 90 and the remote location.
- Transmitting circuit 902 and receiving circuit 903 can be coupled to antenna 901.
- the various components of device 90 are coupled together by a bus system 9100, which in addition to the data bus includes a power bus, a control bus, and a status signal bus.
- bus system 9100 which in addition to the data bus includes a power bus, a control bus, and a status signal bus.
- various buses are labeled as bus system 9100 in the figure.
- Device 90 may be another embodiment of a network device implemented in the present invention.
- a method of performing the above network device can be implemented.
- the first receiving module is located in the receiving circuit 903, and the receiving circuit 903 receives the information sent by the terminal device UE through the antenna 901, where the information includes the demand information and the selection information, and other information.
- the analysis unit and the first configuration modification module are located in the processor, or are part of functions in the processor 906.
- the processor 906 searches for a mapping relationship between the service mode and the requirement information, and determines at least one service mode of the network device according to the mapping relationship.
- the processor 906 can obtain the selection information sent by the UE, and modify the configuration of the network device according to the service mode determined by the selection information, and select one of the service mode information corresponding to the service mode information.
- the first sending module is located in the transmitting circuit 902, or is implemented by the transmitting circuit, and the transmitting circuit 902 sends the determined service mode information of the service mode of the network device to the UE through the antenna 901, so that the UE receives the
- the service mode information determines selection information, and the service mode information is used to indicate a service mode of the network device.
- a power controller 904 is further included, and the power controller implements the power analysis unit described above.
- the power controller 904 determines a numerical interval in which the maximum transmit power of the UE is located, and is under the control of the processor. Realize control of antenna power, turn it on and off.
- Processor 906 may be an integrated circuit chip with signal processing capabilities. In the implementation process, each step of the above method may be completed by an integrated logic circuit of hardware in the processor 906 or an instruction in the form of hardware running software.
- the foregoing processor may be a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), an off-the-shelf programmable gate array (FPGA), or other programmable logic device. , discrete gates or transistor logic devices, discrete hardware components.
- the general purpose processor may be a microprocessor or the processor or any conventional processor, decoder or the like.
- the steps of the method disclosed in the embodiment of the present invention may be directly implemented as a hardware decoding processor, or may be performed by a combination of hardware and software modules in the decoding processor.
- the software modules can be located in a conventional storage medium such as random access memory, flash memory, read only memory, programmable read only memory or electrically erasable programmable memory, registers, and the like.
- the storage medium is located in the memory 907, and the processor reads the memory
- the storage medium may be a magnetic disk, an optical disk, or a read-only storage memory.
- ROM Read-Only Memory
- RAM Random Access Memory
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Abstract
本发明提出一种调整网络配置的方法及装置,所述方法包括:网络设备接收终端设备(UE)发送的需求信息,所述需求信息包括所述UE的节电请求信息或UE的最大发射功率(101);所述网络设备查找服务模式信息与所述需求信息之间的映射关系,根据所述映射关系确定所述网络设备的至少一种服务模式(102);所述网络设备将确定的所述网络设备的服务模式信息发送至所述UE,以便于UE根据接收到的所述服务模式信息确定选择信息,所述服务模式信息用于指示所述网络设备的服务模式(103);所述网络设备接收所述UE发送的所述选择信息,并根据所述选择信息确定的服务模式以修改所述网络设备的配置,所述选择信息对应所述服务模式信息中的一种服务模式(104)。
Description
调整网络配置的方法及装置 本申请要求于 2013 年 1 月 31 日提交中国专利局、 申请号为 201310039018. 8、发明名称为 "调整网络配置的方法及装置" 的中国专利申 请的优先权, 其全部内容通过引用结合在本申请中。 技术领域
本发明涉及无线通讯技术领域, 尤其涉及一种调整网络配置的方法及装 置。 背景技术
随着无线通讯技术的高速发展, 诸如智能手机、 平板电脑等用于无线网 络的终端设备 UE发展迅速, 硬件性能日趋强大、 功能也越来越丰富。 而硬 件性能越强大、功能越丰富的 UE, 耗电量也越大, 因此能耗问题一直是限制 UE发展的瓶颈。
目前已经应用了许多节能技术以减少 UE在无业务时的能耗, 比如: 在无业务时,可以通过改变 UE的配置,来实现 UE对信道的非连续监听, 以减少 UE在无业务时的能耗, 例如: 在 LTE (Long Term Evolution, 长期 演进)中, UE的 RRC( Radio Resource Control ,无线资源控制)包括 RRC— IDLE 和 RRC— CONNECTED两种状态。在 RRC— IDLE状态下,可以在 UE侧配置一个 DRX (Discontinuous Reception, 非连续接收) 从而实现非连续地监听寻呼信 道;在 RRC— CONNECTED状态下, UE可以通过 DRX非连续地监听 PDCCH( Physical Downlink Control Channel , 物理下行控制信道), 从而减少监听时的能耗。
再比如: 当网络应用和服务结束时, UE可以向 eNodeB ( evolved NodeB, 演进的基站或节点 B)请求修改自己关于监听的的配置参数,例如:修改 DRX 配置、 释放 RRC连接、 停止 CQI (Channel Quality Indicator, 信道质量指 示) 上报、 修改 UE测量上报的时间间隔等。 eNodeB在接收到请求消息后, 指示 UE进入相应的省电状态。 从而通过修改 UE侧的配置使 UE进入省电监 听状态。
现有技术大都是在无业务或业务结束时, 通过调整 UE侧的配置节省 UE 监听信道时的能耗。 而 UE在有业务或业务进行时, 能耗很大, 但是现有技 术中缺乏 UE在有业务或业务进行时的节能方案, 以至于节能效果不高, 比 如: 目前市场上应用了现有节能技术的智能手机的待机时间依然很短。 从而 导致 UE的运行时间较短, 用户体验较低。 发明内容
本发明的实施例提供一种调整网络配置的方法及装置, 能够根据 UE的具 体运行情况, 调整网络侧的配置, 从而实现在 UE有业务或业务进行时降低 UE 的能耗, 从而增加 UE的运行时间, 提高用户体验。 本发明的实施例采用如下技术方案: 第一方面, 本发明的实施例提供一种调整网络配置的方法, 包括: 网络设备接收终端设备 UE发送的需求信息, 所述需求信息包括所述 UE的 节电请求信息或所述 UE的最大发射功率; 所述网络设备查找服务模式信息与所述需求信息之间的映射关系, 根 据所述映射关系确定所述网络设备的至少一种服务模式; 所述网络设备将确定的所述网络设备的服务模式的服务模式信息发送 至所述 UE, 以便于所述 UE根据接收到的所述服务模式信息确定选择信息, 所 述服务模式信息用于指示所述网络设备的服务模式;
所述网络设备接收所述 UE发送的所述选择信息, 并根据所述选择信息确 定的服务模式以修改所述网络设备的配置,所述选择信息对应所述服务模式 信息中的一种服务模式。 结合第一方面, 在第一方面的第一种可能的实现方式中, 所述节电请求 信息包括所述 UE的电量信息, 所述网络设备查找所述需求信息与服务模式信
息之间的映射关系包括:
所述网络设备确定所述电量信息与服务模式信息之间的映射关系; 则根据所述映射关系确定所述网络设备的至少一种服务模式包括: 所述 网络设备根据所述电量信息所对应的映射关系确定至少一种所述网络设备 的服务模式。
结合第一方面, 在第一方面的第二种可能的实现方式中, 所述需求信 息包括所述 UE的最大发射功率, 所述网络设备查找所述需求信息与服务模 式信息之间的映射关系包括:
所述网络设备确定所述 UE的最大发射功率所在的数值区间, 所述数值区 间对应至少一个映射关系;
则根据所述映射关系确定所述网络设备的至少一种服务模式包括: 根 据所述数值区间所对应的映射关系确定至少一种所述网络设备的所述服务 模式。
结合第一方面, 在第一方面的多种可能的实现方式中, 所述根据所述选 择信息确定的服务模式修改网络设备的配置包括:
所述网络设备根据所述选择信息所对应的所述服务模式, 确定所述服务 模式所指定的天线数量;
所述网络设备根据所述天线数量, 开启相应数量的天线, 并通过所开启 的天线接收所述 UE发送的数据。
进一歩所述确定所述服务模式所指定的天线数量包括:
检测所述 UE当前所需的发射功率是否大于所述最大发射功率; 若所述 UE当前所需的发射功率大于所述最大发射功率, 则增加预设数量
的天线, 并将增加了所述预设数量后的天线的数量总和作为所述服务模式所 指定的天线数量。
第二方面, 本发明的实施例提供一种调整网络配置的方法, 包括: 终端设备 UE向网络设备发送需求信息,所述需求信息包括所述 UE的节电 请求信息或所述 UE的最大发射功率, 以便于所述网络设备查找所述需求信息 与服务模式之间的映射关系并根据所述映射关系确定至少一种网络设备的 服务模式;
所述终端设备 UE接收所述网络设备发送的服务模式信息, 所述服务模式 信息是所述网络设备根据所述映射关系获取的, 所述服务模式信息用于指示 所述网络设备的服务模式;
终端设备 UE根据所述服务模式信息确定选择信息, 所述选择信息对应所 述服务模式信息中的一种服务模式;
终端设备 UE根据所述选择信息确定的服务模式修改所述终端设备的配 置, 并将所述选择信息发送至所述网络设备, 以便于所述网络设备根据所述 选择信息修改配置。
结合第二方面, 在第二方面的第一种可能的实现方式中, 所述节电请求 信息包括所述 UE的电量信息,
所述终端设备 UE向网络设备发送需求信息包括所述终端设备 UE向网络 设备发送所述 UE的电量信息, 所述电量信息对应至少一个与服务模式之间 的所述映射关系, 以便于所述网络设备确定所述电量信息与服务模式之间的 所述映射关系, 并根据所述电量信息所对应的映射关系获取所述服务模式。
结合第二方面, 在第二方面的第二种可能的实现方式中, 所述根据所述
选择信息所对应的服务模式修改终端设备的配置包括:
确定所述选择信息所对应的服务模式所对应的发射功率, 并基于所述服 务模式所对应的发射功率向所述网络设备发送数据;
或基于所述 UE的最大发射功率向所述网络设备发送数据。
第三方面, 本发明的实施例提供一种调整网络配置的网络设备, 包括: 第一接收模块, 用于接收终端设备 UE发送的信息, 所述信息包括需求信 息和选择信息,其中所述需求信息包括所述 UE的节电请求信息或所述 UE的最 大发射功率;
分析模块, 用于查找服务模式与所述需求信息之间的映射关系, 根据所 述映射关系确定所述网络设备的至少一种服务模式;
第一发送模块,用于将确定的所述网络设备的服务模式的服务模式信息 发送至所述 UE, 以便于所述 UE根据接收到的所述服务模式信息确定选择信息 所述服务模式信息用于指示所述网络设备的服务模式;
第一配置修改模块, 用于获得所述 UE发送的所述选择信息, 并根据所述 选择信息确定的服务模式以修改所述网络设备的配置, 所述选择信息对应所 述服务模式信息中的一种服务模式。
结合第三方面, 在第三方面的第一种可能的实现方式中, 所述节电请求 信息包括所述 UE的电量信息, 所述分析模块包括:
电量分析单元, 用于获得所述电量信息与服务模式信息之间的映射关 系;
服务模式获取单元, 用于根据所述电量信息所对应的映射关系确定所述 网络设备的至少一种服务模式。
结合第三方面, 在第三方面的第二种可能的实现方式中, 所述需求信息 包括所述 UE的最大发射功率,所述分析模块包括:
功率分析单元, 用于确定所述 UE的最大发射功率所在的数值区间, 所述 数值区间对应至少一个所述映射关系;
服务模式获取单元, 用于根据所述数值区间所对应的映射关系确定至 少一种所述网络设备的所述服务模式。
结合第三方面的第一种可能的实现方式,在第二种可能的实现方式中, 所述第一配置修改模块包括:
天线数量分析单元, 用于获得所述 UE发送的所述选择信息,根据所述选 择信息所对应的所述服务模式, 确定所述服务模式所指定的天线数量; 天线启动单元, 用于根据所述天线数量, 开启相应数量的天线以修改所 述网络设备的天线启用配置, 并通过所开启的天线接收所述 UE发送的数据。
进一歩的, 作为一种实现方式, 所述天线数量分析单元, 还用于检测所 述 UE当前所需的发射功率是否大于所述最大发射功率;
所述天线启动单元, 还用于若所述 UE当前所需的发射功率大于所述最大 发射功率, 则增加预设数量的天线, 并将增加了所述预设数量后的天线的数 量总和作为所述服务模式所指定的天线数量。
第四方面, 本发明的实施例提供一种调整网络配置的终端设备, 包括: 第二发送模块, 用于向网络设备发送需求信息, 所述需求信息包括所述 UE的节电请求信息或所述 UE的最大发射功率, 以便于所述网络设备获取与服 务模式之间的对应关系;
第二接收模块, 用于接收所述网络设备发送的服务模式信息, 所述服务
模式信息是所述网络设备根据所述映射关系获取的,所述服务模式信息用于 指示服务模式;
选择模块, 用于根据所述服务模式信息确定选择信息, 所述选择信息对 应所述服务模式信息中的一种服务模式;
第二配置修改模块, 用于根据所述选择信息确定的服务模式修改所述终 端设备的配置, 并将所述选择信息发送至所述网络设备, 以便于所述网络设 备根据所述选择信息修改配置。
结合第四方面, 在第四方面的第一种可能的实现方式中, 所述第二发送 模块发送所述节电请求信息包括所述 UE的电量信息,所述电量信息对应至少 一个与服务模式之间的所述映射关系, 以便于所述网络设备确定所述电量信 息所与服务模式之间的所述映射关系, 并根据所述电量信息所对应的所述映 射关系获取服务模式。
结合第四方面或第四方面的第一种可能的实现方式, 所述第二配置修 改模块包括:
功率分析单元,用于确定所述选择信息所确定的服务模式对应的发射功 率; 以便于所述第二发送模块根据所述服务模式所对应的发射功率向所述网 络设备发送数据。
本发明实施例提供的调整网络配置的方法及装置, 能够接收 UE发送的诸 如 UE的节电请求信息或 UE的最大发射功率等需求信息, 并根据需求信息选择 相应的服务模式, 再根据所选的服务模式修改网络设备的配置。 相对于现有 技术, 本发明能够根据 UE的具体运行情况, 调整网络侧的配置, 从而实现在 UE有业务或业务进行时降低 UE的能耗, 从而增加 UE的运行时间, 提高用户体
验。 附图说明
为了更清楚地说明本发明实施例中的技术方案, 下面将对实施例中所需 要使用的附图作简单地介绍, 显而易见地, 下面描述中的附图仅仅是本发明 的一些实施例, 对于本领域普通技术人员来讲, 在不付出创造性劳动的前提 下, 还可以根据这些附图获得其它的附图。
图 la为本发明实施例提供的一种调整网络配置的方法的流程图; 图 lb为本发明实施例提供的一种调整网络配置的方法的具体实例的示 意图;
图 2a为本发明实施例提供的另一种调整网络配置的方法的流程图; 图 2b为本发明实施例提供的另一种调整网络配置的方法的一种具体实 施歩骤的流程图;
图 2bl为本发明实施例提供的另一种调整网络配置的方法的具体实例的 示意图;
图 2c为本发明实施例提供的另一种调整网络配置的方法的另一种具体 实施歩骤的流程图;
图 2d为本发明实施例提供的另一种调整网络配置的方法的再一种具体 实施歩骤的流程图;
图 2e为本发明实施例提供的再一种调整网络配置的方法的流程图; 图 3a为本发明实施例提供的再一种调整网络配置的方法的流程图; 图 3b为本发明实施例提供的再一种调整网络配置的方法的具体实例的 示意图;
图 4a为本发明实施例提供的再一种调整网络配置的方法的流程图。 图 4b为本发明实施例提供的再一种调整网络配置的方法的流程图。 图 5a为本发明实施例提供的一种网络设备的结构示意图。
图 5b为本发明实施例提供的一种网络设备的一部分细节的结构示意图。 图 5c为本发明实施例提供的一种网络设备的另一部分细节的结构示意 图。
图 5d为本发明实施例提供的一种网络设备的再一部分细节的结构示意 图。
图 6为本发明实施例提供的一种终端设备的构示意图。
图 7为本发明实施例提供的一种系统的示意图。 图 8为本发明实施例提供的又一种终端设备的构示意图。
图 9为本发明实施例提供的又一种网络设备的结构示意图。
具体实施方式
下面将结合本发明实施例中的附图, 对本发明实施例中的技术方案进行 清楚、 完整地描述, 显然, 所描述的实施例仅仅是本发明一部分实施例, 而 不是全部的实施例。 基于本发明中的实施例, 本领域普通技术人员在没有做 出创造性劳动前提下所获得的所有其它实施例, 都属于本发明保护的范围。 为使本发明技术方案的优点更加清楚, 下面结合附图和实施例对本发明 作详细说明。
一方面, 在本发明的实施例中, 提供了一种调整网络配置的方法, 如图 la所示, 包括:
101, 网络设备接收终端设备 UE发送的需求信息, 所述需求信息包括所
述 UE的节电请求信息或所述 UE的最大发射功率。
在本实施例中, 网络设备可以接收 UE发送的需求信息, 在本实施例中网 络设备可以是基站、服务器等具备通过无线网络与 UE进行数据交互功能的设 备。
其中, 需求信息可以包括但不限于: UE的节电请求信息或 UE的最大发射 功率。 需要说明的是, UE发送的需求信息可以是 UE通过输入设备所接收的用 户输入的信息, 例如: 用户可以通过触摸屏向智能手机输入一个数值, 智能 手机则可以将用户输入的数值作为最大发射功率发送至基站。
进一歩的, 在本实施例中, 需求信息可以包括节电请求信息, 可以是节 电请求信息一种本领域技术人员所熟知的比特信息、信令等用于触发网络设 备执行 102-104的信息。
102,所述网络设备查找服务模式信息与所述需求信息之间的映射关系, 根据所述映射关系确定所述网络设备的至少一种服务模式。
其中, 映射关系为需求信息与服务模式之间的对应关系。
在本实施例中, 网络设备可以对 UE发送的需求信息进行分析, 并获取与 需求信息对应的映射关系, 例如: 基站所接收到的需求信息包括了 UE的最大 发射功率。 基站可以判断最大发射功率所在的数值区间, 如图 lb所示, 数值 区间可以是预存在基站中的一段连续的区间值, 并且每一个数值区间都可以 对应至少一个服务模式, 基于最大发射功率所确定的数值区间与服务模式之 间的对应关系即为需求信息与服务模式之间的对应关系。 比如: 最大发射功 率为 6, 则最大发射功率所在的数值区间为 (5, 10 ], 需求信息对应的映射 关系为 2、 3。 根据所述映射关系获取服务模式信息。
103, 所述网络设备将确定的所述网络设备的服务模式的服务模式信息 发送至所述 UE, 以便于所述 UE根据接收到的所述服务模式信息确定选择信息 所述服务模式信息用于指示所述网络设备的服务模式。
实施中 UE根据服务模式信息获取选择信息,服务模式信息用于表示至少 一种服务模式。
例如: 如图 lb所示, 最大发射功率为 6, 则最大发射功率所在的数值区 间为 (5, 10 ] , 需求信息对应的映射关系为 2、 3。 网路设备可以根据映射关 系 2、 3, 确定服务模式 2、 服务模式 3, 并将用于表示服务模式 2、 服务模式 3 的信息, 如: 名称信息等, 作为服务模式信息发送至 UE。
进一歩的,基站发送至 UE的服务模式信息中还可以包括费用信息,例如: 如表一所示, 表一
即服务模式 2的费用为每小时 0. 20元, 服务模式 3的费用为每小时 0. 30 元。 在本实施例中, 费用信息可以与服务模式呈一一对应关系, 基站可以将 费用信息添加进服务模式信息发送至 UE。
104, 所述网络设备接收所述 UE发送的所述选择信息, 并根据所述选择 信息确定的服务模式以修改所述网络设备的配置, 所述选择信息对应所述服 务模式信息中的一种服务模式。
其中, 选择信息对应服务模式信息中的一种服务模式。
在本实施例中, 选择信息中可以对应的一种服务模式, 网络设备可以根 据选择信息确定 UE所选择的服务模式, 通过本领域技术人员所述熟知的实施 方式,修改网络设备的配置,以使网络设备支持选择信息所对应的服务模式。 例如:
基站在接收到 UE发送的选择信息后, 根据选择信息确定了 UE所选择的服 务模式为服务模式 2。并且,在基站中预设了与服务模式 2相对应的配置信息, 该配置信息可以是一种本领域技术人员所述熟知的,用于表示基站中的天线 数量的信息, 例如: 配置信息表示基站中的天线数量为 3, 则基站在 UE选择 了服务模式 2后, 根据 UE发送的选择信息, 确定了在服务模式 2中, 基站所需 启用的天线数量为 3, 则基站可以通过开启天线, 将与 UE进行数据交互时的 天线数量设置成 3, 从而修改了基站的配置。
在 UE的发射功率较低时, 基站可以通过多天线接收数据, 并对所接收的 数据进行波束成形等处理, 从而保证 UE传输数据的质量。 即当 UE传输数据的 质量比较稳定时, 基站在接收数据时所启用的天线越多, UE的所需求的发射 功率越低。 因此, 在本实施例中, 网络设备可以通过修改配置, 以增加所启 用的天线数量, 从而降低 UE的所需求的发射功率。 UE的所需求的发射功率越 低, UE在业务中的进行数据交互所需的能耗也就越低, 从而增加 UE的运行时 间, 提高用户体验。 比如: 在 UE的发射功率较低时, 修改网络设备的配置以 增加网络设备所启用的天线数量, 网络设备通过对多天线接收到的数据进行 波束成形等处理, 保证 UE传输数据的质量, 从而能够使 UE维持较低的发射功 率, 节约了 UE的能耗。
进一歩可选的, 基于如图 la所示的种调整网络配置的方法, 网络设备还
可以包括如图 2a所示的方案:
201, 接收终端设备 UE发送的需求信息。
其中, 需求信息包括: UE的节电请求信息或 UE的最大发射功率。
202, 获取与所述需求信息对应的映射关系。
其中, 映射关系为需求信息与服务模式之间的对应关系。
可选的, 在本实施例中, 如图 2b所示, 201-202的具体方案可以包括: 2021a, 确定所述电量信息所对应的映射关系。
其中, 电量信息对应至少一个映射关系。
在本实施例中, 电量信息可以是 UE的剩余电量, 例如:
如图 2bl所示, 为剩余电量的对应关系, 以及剩余电量通过对应关系所 对应的服务模式, 其中:
剩余电量为 80%, 网路设备可以根据映射关系 1, 确定服务模式 1 ; 剩余 电量为 60%, 网路设备可以根据映射关系 2、 3, 确定服务模式 2、 3; 剩余电 量为 40%, 网路设备可以根据映射关系 4、 5、 6, 确定服务模式 4、 5、 6。
2022a, 根据所述电量信息所对应的映射关系获取服务模式。
并列可选的, 在本实施例中, 如图 2c所示, 201-202的具体方案可以包 括:
2021b, 获取目标电量值与所述 UE当前的剩余电量的差值。
其中, 电量信息可以是目标电量值, UE的目标电量值小于当前 UE的剩余 电量。
在本实施例中, 目标电量值可以由用户通过输入设备输入 UE, 再由 UE发 送至网络设备; 目标电量值也可以由 UE通过已有的技术手段自动分析获取。
例如: 当前智能手机的剩余电量为 800mA, 则用户可以输入 500mA作为目 标电量值, 以便于在智能手机的电量由 800mA降为 500mA的过程中, 网络设备 和智能手机可以通过执行 2022b-2023b, 降低智能手机的能耗。
2022b , 确定所述差值所在的数值区间, 所述数值区间对应至少一个映 射关系。
例如: 网络设备可以根据预存在网络设备中的连续的区间值, 确定目标 电量值与当前 UE的剩余电量的差值所在的数值区间。
2023b , 根据所述数值区间所对应的映射关系获取服务模式。
例如: 当前智能手机的剩余电量为 800mA, 而目标电量值为 500mA, 差值 为 300mA。 根据 300mA所在的数值区间的映射关系, 可以获取服务模式 x, 在 基站中预存的与服务模式 X相对应的配置信息 X, 配置信息 X可以是用于表示 增加基站中的天线数量的信息, 比如: 在与智能手机进行业务上的数据交互 过程中, 基站原来启动的天线为 2个, 配置信息 X表示基站中的启动的天线数 量增加 3, 则基站在智能手机选择了服务模式 X后, 根据智能手机发送的选择 信息, 确定了在服务模式 X中, 在与智能手机进行业务上的数据交互过程中 基站需要启动 5个天线, 并通过常用的波束成形等技术手段对多天线接收的 数据进行处理。
需要说明的是, 在本实施例中, 网络设备也可以通过常用的多点联合接 收 CoMP技术来增支撑 UE的数量与协作距离之间的关系加性能, 例如: 在与智 能手机进行业务上的数据交互过程中, 基站原来启动的天线为 2个, 配置信 息 X表示基站中的启动的天线数量增加 3, 则基站在智能手机选择了服务模式 X后, 根据智能手机发送的选择信息, 确定了在服务模式 X中, 在与智能手机
进行业务上的数据交互过程中基站需要启动 5个天线, 则基站可以通过 CoMP 技术, 开启相邻基站的天线来接收终端设备传输的数据, 再通过常用的波束 成形等技术手段对多天线接收的数据进行处理。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的 天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。 UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越 低, 从而增加 UE的运行时间, 提高用户体验。
进一歩可选的, 在本实施例中, 如图 2d所示, 202可以包括:
2021b , 确定所述 UE的最大发射功率所在的数值区间, 所述数值区间对 应至少一个映射关系。
需要说明的是,在本实施例中,网络设备所接收到的 UE的最大发射功率, 可以如技术人员所熟知的, 表示 UE在发射无线电波时的功率上限, 例如: 最 大发射功率为 1毫瓦, 则智能手机在运行过程中发射无线电波时的功率不超 过 1毫瓦。
2022b , 根据所述数值区间所对应的映射关系获取服务模式。
例如: 当前智能手机处在小区的边缘, 若要保证在业务中的数据传输的 质量, 所需的发射功率为 2mW, 对应智能手机 2mW的发射功率, 基站需要启用 的天线为 3个。 根据 2mW所在的数值区间的映射关系, 可以获取服务模式 y, 在基站中预存的与服务模式 y相对应的配置信息 y, 配置信息 y可以是用于表
示增加基站中的天线数量的信息, 比如: 这个例子中, 基站原来启动的天线 为 3个, 配置信息 y表示基站中的启动的天线数量增加 3, 则基站在智能手机 选择了服务模式 y后,根据智能手机发送的选择信息,确定了在服务模式 y中, 在与智能手机进行业务上的数据交互过程中基站需要启动 6个天线, 并通过 常用的波束成形等技术手段对多天线接收的数据进行处理。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的 天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。 UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越 低, 从而增加 UE的运行时间, 提高用户体验。
203, 根据所述映射关系获取服务模式信息, 并将所述服务模式信息发 送至所述 UE。 以便于 UE根据服务模式信息获取选择信息, 服务模式信息用于 表示至少一种服务模式。
204a, 根据所述选择信息所对应的服务模式, 确定所述服务模式所指定 的天线数量。
并列可选的, 如图 2e所示, 在网络设备执行了 203后, 还可以包括: 204b , 检测所述 UE当前所需的发射功率是否大于所述最大发射功率。 例如: 网络设备可以通过目前的通讯协议中常用的技术手段, 获取 UE在 当前信道上所需的发射功率, 并检测 UE在当前信道上所需的发射功率是否大 于 UE发送的, 作为需求信息的最大发射功率。
在实际应用中, 为了保证通信质量, 协议中往往规定了 UE在小区中的不 同上通过信道传输数据时所需的发射功率, 离基站越远, 所需的发射功率越 大。 如本领域技术人员所熟知的, UE在与基站进行通信时, UE的发射功率是 由基站通过向 UE发出的信令控制的。 在本实施例中, 为了降低能耗, UE向网 络设备发送了最大发射功率作为需求信息, 以使网络设备在与 UE进行数据交 互时, UE的实际的发射功率不超过作为需求信息的最大发射功率。
205b , 若所述 UE当前所需的发射功率大于所述最大发射功率, 则增加预 设数量的天线, 并将增加了所述预设数量后的天线的数量总和作为所述服务 模式所指定的天线数量。
在本实施例中, UE当前所需的发射功率大于最大发射功率, 又由于 UE在 实际运行中的发射功率不超过最大发射功率, 则网络设备需要增加预设数量 的天线来满足与 UE之间的通信质量, 例如: UE当前所需的发射功率为 2mW, 而最大发射功率为 lmW, 则基站需要将与 UE进行通信时的天线数量由原来的 2 个增加到 5个, 以满足 UE在实际发射功率不超过 lmW的情况下的通信质量。
其中, 若所述 UE当前所需的发射功率不大于所述最大发射功率, 则保持 天线数量不变。
206, 根据所述天线数量, 开启相应数量的天线, 并通过所开启的天线 接收所述 UE发送的数据。
例如: 基站在接收到 UE发送的选择信息后, 根据选择信息确定了 UE所选 择的服务模式为服务模式 1。 并且, 在基站中预设了与服务模式 1相对应的配 置信息, 该配置信息可以是一种本领域技术人员所述熟知的, 用于表示基站 中的天线数量的信息。 若配置信息表示基站中的天线数量为 5, 则基站在 UE
选择了服务模式 1后, 根据 UE发送的选择信息, 确定了在服务模式 1中, 基站 所需启用的天线数量为 5, 此时, 基站与 UE进行数据交互时所开启的天线数 量为 2, 则基站可以再开启 2个天线, 从而修改了基站的配置。
并列的, 在本发明的实施例提供了另一种调整网络配置的方法, 在用户 终端或者说终端设备实施,如图 3a所示, 包括:
301, 终端设备 UE向网络设备发送需求信息, 所述需求信息包括所述 UE 的节电请求信息或所述 UE的最大发射功率, 以便于所述网络设备查找所述需 求信息与服务模式之间的映射关系并根据所述映射关系确定至少一种网络 设备的服务模式。
其中, UE向网络设备发送的需求信息包括但不限于: UE的节电请求信息 或 UE的最大发射功率。 以便于网络设备获取与需求信息对应的映射关系, 映 射关系为需求信息与服务模式之间的对应关系。
需要说明的是, 在本实施例中, UE可以是具备无线网络接入功能的, 并 且能够与网络设备进行数据交互的智能手机、 计算机等设备。
302, 所述终端设备 UE接收所述网络设备发送的服务模式信息, 所述服 务模式信息是所述网络设备根据所述映射关系获取的, 所述服务模式信息用 于指示所述网络设备的服务模式。
其中, UE所接收到的服务模式信息是网络设备根据映射关系获取的, 服 务模式信息用于表示至少一种服务模式。
303 , 终端设备 UE根据所述服务模式信息确定选择信息, 所述选择信息 对应所述服务模式信息中的一种服务模式。
在本实施例中, UE根据服务模式信息获取选择信息的具体实现方式可以
有多种, 例如: 如图 3b所示, 智能手机可以将服务模式信息所表示的服务模 式, 以及与服务模式相对应的费用信息, 显示在手机的触摸屏上。 并可以在 触摸屏上显示多个信息控件, 用于接收用户输入的触发, 当其中的一个信息 控件被触发, 则表示用户选择了与该信息控件相对应的服务模式, 智能手机 可以根据用户所选择的服务模式生成选择信息, 并在选择信息添加用于识别 用户所选择的服务模式的字符串, 以便于网络设备接收到 UE发送的选择信息 后, 根据用户所选的服务模式修改网络设备的配置。
304, 终端设备 UE根据所述选择信息确定的服务模式修改所述终端设备 的配置, 并将所述选择信息发送至所述网络设备, 以便于所述网络设备根据 所述选择信息修改配置。
例如: 当前智能手机的剩余电量为 800mA, 而目标电量值为 500mA, 差值 为 300mA。 选择信息所对应的服务模式为服务模式 x, 在智能手机中预存的与 服务模式 X相对应的发射功率, 比如: 在智能手机进行业务上的数据交互过 程中, 原来的基于的发射功率为 2mW, 则智能手机根据选择信息, 确定了在 服务模式 X中, 智能手机基于的发射功率为 lmW, 则在服务模式 X智能手机进 行数据交互的最大发射功率不超过 lmW。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的 天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。
UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越
低, 从而增加 UE的运行时间, 提高用户体验。
进一歩可选的, 基于如图 3a所示的种调整网络配置的方法, 还可以包括 如图 4a所示的方案:
401, 向网络设备发送需求信息。
其中, 需求信息包括: UE的节电请求信息或 UE的最大发射功率, 以便于 网络设备获取与需求信息对应的映射关系, 映射关系为需求信息与服务模式 之间的对应关系。
进一歩的, 节电请求信息包括 UE的电量信息, 电量信息对应至少一个映 射关系, 以便于网络设备确定电量信息所对应的映射关系, 并根据电量信息 所对应的映射关系获取服务模式。
402, 接收所述网络设备发送的服务模式信息。
其中, 服务模式信息是网络设备根据映射关系获取的, 服务模式信息用 于表示至少一种服务模式。
403, 根据所述服务模式信息获取选择信息。
其中, 选择信息对应服务模式信息中的一种服务模式。
404, 根据所述选择信息所对应的服务模式修改终端设备的配置, 并将 所述选择信息发送至所述网络设备。
以便于网络设备根据选择信息所对应的服务模式修改网络侧的配置。 可选的, 在本实施例中, 404可以包括:
404a, 确定所述选择信息所对应的服务模式所对应的发射功率, 基于所 述服务模式所对应的发射功率向所述网络设备发送数据, 并将所述选择信息 发送至所述网络设备。
在本实施例中, UE中可以预存各个服务模式所指定的发射功率, 如表 二所; 表二
UE可以获取选择信息所对应的服务模式的发射功率, 并将所获取的发射 功率作为 UE发射无线电波的功率上限, 从而使 UE在运行过程中的发射功率不 超过所获取的发射功率, 例如: 选择信息对应服务模式 2, 智能手机所获取 的发射功率为 1. OOmW, 则智能手机在运行过程中的发射功率不超过 1. OOmWo 或如图 4b所示, 包括:
404b , 基于所述 UE的最大发射功率向所述网络设备发送数据, 并将所述 选择信息发送至所述网络设备。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的 天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。 UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越 低, 从而增加 UE的运行时间, 提高用户体验。
另一方面, 在本发明的实施例中, 提供了一种网络设备, 如图 5a所示, 网络设备 5a包括:
第一接收模块 51, 用于接收终端设备 UE发送的信息, 所述信息包括需求
信息和选择信息,其中所述需求信息包括所述 UE的节电请求信息或所述 UE的 最大发射功率。
进一歩的, 所述第一接收模块 51, 还用于接收所述 UE发送的选择信息。 分析模块 52, 用于查找服务模式与所述需求信息之间的映射关系, 根据 所述映射关系确定所述网络设备的至少一种服务模式。
可选的, 如图 5b所述, 所述分析模块 52包括:
其中, UE的电量信息包括 UE的目标电量值
电量分析单元 521, 用于确定所述电量信息所对应的映射关系。
服务模式获取单元 522, 用于根据所述电量信息所对应的映射关系确定 所述网络设备的至少一种服务模式。
并列可选的可选的, 如图 5c所述, 所述分析模块 52包括:
功率分析单元 524, 用于确定所述 UE的最大发射功率所在的数值区间, 所述数值区间对应至少一个映射关系。
则服务模式获取单元,还可以或者可以用于根据所述数值区间所对应的 映射关系确定至少一种所述网络设备的所述服务模
第一发送模块 54, 用于将确定的所述网络设备的服务模式的服务模式信 息发送至所述 UE, 以便于所述 UE根据接收到的所述服务模式信息确定选择信 息, 所述服务模式信息用于指示所述网络设备的服务模式。
第一配置修改模块 55, 用于获得所述 UE发送的所述选择信息, 并根据所 述选择信息确定的服务模式以修改所述网络设备的配置,所述选择信息对应 所述服务模式信息中的一种服务模式。
如前所述,第一接收模块 51, 还用于接收所述 UE发送的选择信息,这样从
第一配置修改模块 55获得所述 UE发送的所述选择信息。 实践中,也可以是直 接获得。
可选的, 如图 5d所示, 所述第一配置修改模块 55包括:
天线数量分析单元 551, 用于获得所述 UE发送的所述选择信息, 根据所 述选择信息所对应的服务模式, 确定所述服务模式所指定的天线数量。
天线启动单元 552, 用于根据所述天线数量, 开启相应数量的天线, 并 通过所开启的天线接收所述 UE发送的数据。
进一歩可选的, 在本实施例中, 所述天线数量分析单元 551, 还用于检 测所述 UE当前所需的发射功率是否大于所述最大发射功率;
所述天线启动单元 552, 还用于若所述 UE当前所需的发射功率大于所述 最大发射功率, 则增加预设数量的天线, 并将增加了所述预设数量后的天线 的数量总和作为所述服务模式所指定的天线数量。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的 天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。 UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越 低, 从而增加 UE的运行时间, 提高用户体验。
并列的, 在本发明的实施例中, 提供了一种终端设备, 如图 6所示, 终 端设备 60包括:
第二发送模块 61, 用于向网络设备发送需求信息。
其中, 需求信息包括: UE的节电请求信息或 UE的最大发射功率, 以便于 网络设备获取与需求信息对应的映射关系, 映射关系为需求信息与服务模式 之间的对应关系。
进一歩的, 所述节电请求信息包括所述 UE的电量信息, 所述电量信息对 应至少一个映射关系, 以便于所述网络设备确定所述电量信息所对应的映射 关系, 并根据所述电量信息所对应的映射关系获取服务模式。
第二接收模块 62, 用于接收所述网络设备发送的服务模式信息。
其中, 服务模式信息是网络设备根据映射关系获取的, 服务模式信息用 于表示至少一种服务模式。
选择模块 63, 用于根据所述服务模式信息获取选择信息。
其中, 选择信息对应服务模式信息中的一种服务模式。
第二配置修改模块 64, 用于根据所述选择信息所对应的服务模式修改终 端设备的配置, 并将所述选择信息发送至所述网络设备。 以便于网络设备根 据选择信息所对应的服务模式修改网络侧的配置。
可选的, 所述第二配置修改模块 64包括:
功率分析单元 641, 用于确定所述选择信息所对应的服务模式所对应的 发射功率。 以便于所述终端设备基于所述服务模式所对应的发射功率向所述 网络设备发送数据, 或基于所述 UE的最大发射功率向所述网络设备发送数 据。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的
天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。
UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越 低, 从而增加 UE的运行时间, 提高用户体验。
再一方面, 在本发明的实施例中, 提供了一种调整网络配置的系统, 如 图 7所示, 包括网络设备 71、 终端设备 72。
终端设备 72向网络设备 71发送需求信息, 所述需求信息包括: 所述终端 设备 72的节电请求信息或所述终端设备 72的最大发射功率, 以便于所述网络 设备 71获取与所述需求信息对应的映射关系, 所述映射关系为所述需求信息 与服务模式之间的对应关系。
所述网络设备 71接收所述终端设备 72发送的需求信息。
并获取与所述需求信息对应的映射关系, 所述映射关系为所述需求信息 与服务模式之间的对应关系。
再根据所述映射关系获取服务模式信息, 并将所述服务模式信息发送至 所述终端设备 72。
所述终端设备 72接收所述网络设备 71发送的服务模式信息, 所述服务模 式信息是所述网络设备 71根据所述映射关系获取的,所述服务模式信息用于 表示至少一种服务模式。
并根据所述服务模式信息获取选择信息, 所述选择信息对应所述服务模 式信息中的一种服务模式。
再根据所述选择信息所对应的服务模式修改终端设备的配置, 并将所述 选择信息发送至所述网络设备 71。
所述网络设备 71接收所述终端设备 72发送的选择信息, 并根据所述选择 信息所对应的服务模式修改网络设备 71的配置, 所述选择信息对应所述服务 模式信息中的一种服务模式。
如本领域技术人员所熟知的, 在 UE的发射功率较低时, 基站可以通过多 天线接收数据, 并对所接收的数据进行波束成形等处理, 从而保证 UE传输数 据的质量。 即当 UE传输数据的质量比较稳定时, 基站在接收数据时所启用的 天线越多, UE的所需求的发射功率越低。 因此, 在本实施例中, 网络设备通 过修改配置, 以增加所启用的天线数量, 从而降低 UE的所需求的发射功率。 UE的所需求的发射功率越低, UE在业务中的进行数据交互所需的能耗也就越 低, 从而增加 UE的运行时间, 提高用户体验。
本说明书中的各个实施例均采用递进的方式描述, 各个实施例之间相同 相似的部分互相参见即可, 每个实施例重点说明的都是与其他实施例的不同 之处。 尤其, 对于设备实施例而言, 由于其基本相似于方法实施例, 所以描 述得比较简单, 相关之处参见方法实施例的部分说明即可。
本发明实施例进一歩给出实现上述方法实施例中各歩骤及方法的装置 实施例。 图 8示出了一种装置的实施例,在该实施例中,设备 80包括发射电路 802、 接收电路 803、 处理器 806, 存储器 807及天线 801。 处理器 806用于控制 设备 80, 处理器 806还可以称为中央处理器 CPU。 存储器 807可以包括只读存 储器和随机存取存储器, 并向处理单元 306提供指令和数据。 存储器 807的 一部分还可以包括非易失行随机存取存储器(NVRAM)。 具体的应用中, 还可 以包括容纳发射电路 302和接收电路 803的载体, 以使得设备 80和远程位置之 间的设备进行数据发射和接收。发射电路 802和接收电路 803可以耦合到天线
801。 设备 80的各个组件通过总线系统 8100耦合在一起, 其中总线系统 8100 除包括数据总线之外, 还包括电源总线、 控制总线和状态信号总线。 但是为 了清楚说明起见, 在图中将各种总线都标为总线系统 8100。
设备 80可以嵌入或者本身可以就是例如移动电话之类的无线通信设备, 本发明实施例给出又一个终端设备的实施例,能够实施上述终端设备执行的 方法。 在上述的终端设备的实施例中,第二发送模块通过本实施例的发射电 路 802实现, 或者第二发送模块为发射电路 802的一部分, 第二接收模块通 过本实施例的发射电路 802实现, 或者第二接收模块为发射电路 802的一部 分。 选择模块和第二配置修改模块在处理器 806上,可以认为处理器 806用于 实现根据所述服务模式信息确定选择信息,所述选择信息对应所述服务模式 信息中的一种服务模式; 根据所述选择信息确定的服务模式修改所述终端设 备的配置, 并将所述选择信息发送至所述网络设备, 以便于所述网络设备根 据所述选择信息修改配置。
上述本发明实施例揭示的方法可以应用于上述的终端设备, 通过具有处 理能力的上述硬件实体完成。 处理器 806可能是一种集成电路芯片, 具有信 号的处理能力。 在实现过程中, 上述方法的各歩骤可以通过处理器 806中的 硬件的集成逻辑电路或者硬件运行软件形式的指令完成。用于执行本发明实 施例揭示的方法,上述的处理器可以是通用处理器、数字信号处理器(DSP)、 专用集成电路 (ASIC)、 现成可编程门阵列 (FPGA) 或者其他可编程逻辑器 件、 分立门或者晶体管逻辑器件、 分立硬件组件。 可以实现或者执行本发明 实施例中的公开的各方法、 歩骤及逻辑框图。 通用处理器可以是微处理器或 者该处理器也可以是任何常规的处理器, 解码器等。 结合本发明实施例所公
开的方法的歩骤可以直接体现为硬件解码处理器执行完成, 或者用解码处 理器中的硬件及软件模块组合执行完成。 软件模块可以位于随机存储器, 闪 存、 只读存储器, 可编程只读存储器或者电可擦写可编程存储器、 寄存器等 本领域成熟的存储介质中。 该存储介质位于存储器 807, 处理器读取存储器 807中的信息, 结合其硬件完成上述方法的歩骤。
进一歩,本发明实施例还给出网络设备的又一实施例, 图 9示出了一种 装置的实施例,在该实施例中,设备 90包括发射电路 902、 接收电路 903、 功率 控制器 904、 处理器 906, 存储器 907及天线 901。 处理器 906用于控制设备 90, 处理器 906还可以称为中央处理器 CPU。 存储器 907可以包括只读存储器和随 机存取存储器, 并向处理单元 906提供指令和数据。 存储器 907的一部分还可 以包括非易失行随机存取存储器(NVRAM)。 具体的应用中, 还可以包括容纳 发射电路 902和接收电路 903的载体, 以使得设备 90和远程位置之间的设备进 行数据发射和接收。 发射电路 902和接收电路 903可以耦合到天线 901。 设备 90的各个组件通过总线系统 9100耦合在一起, 其中总线系统 9100除包括数据 总线之外, 还包括电源总线、 控制总线和状态信号总线。 但是为了清楚说明 起见, 在图中将各种总线都标为总线系统 9100。
设备 90可以为本发明实施网络设备的又一实施例。能够实施上述网络设 备执行的方法。 对于上述网络设备的实施例, 第一接收模块位于接收电路 903, 接收电路 903通过天线 901接收终端设备 UE发送的信息, 信息包括需求 信息和选择信息, 以及其他信息。分析单元以及第一配置修改模块位于处理 器,或者为处理器 906中的一部分功能,处理器 906查找服务模式与需求信息 之间的映射关系, 根据映射关系确定网络设备的至少一种服务模式,并且处
理器 906可以获得 UE发送的选择信息, 并根据选择信息确定的服务模式以修 改网络设备的配置, 选择信息对应服务模式信息中的一种服务模式。 第一发 送模块位于发射电路 902, 或者说通过发射电路实现, 发射电路 902通过天 线 901将确定的所述网络设备的服务模式的服务模式信息发送至所述 UE, 以 便于所述 UE根据接收到的所述服务模式信息确定选择信息, 所述服务模式 信息用于指示所述网络设备的服务模式。
进一歩,在本实施例中,还包括功率控制器 904,功率控制器实现上述的 功率分析单元. 功率控制器 904确定所述 UE的最大发射功率所在的数值区间, 并在处理器的控制下实现对天线功率的控制,开启以及关闭。
上述本发明实施例揭示的方法可以应用于上述的网络设备, 通过具有处 理能力的上述硬件实体完成。 处理器 906可能是一种集成电路芯片, 具有信 号的处理能力。 在实现过程中, 上述方法的各歩骤可以通过处理器 906中的 硬件的集成逻辑电路或者硬件运行软件形式的指令完成。用于执行本发明实 施例揭示的方法,上述的处理器可以是通用处理器、数字信号处理器(DSP)、 专用集成电路 (ASIC)、 现成可编程门阵列 (FPGA) 或者其他可编程逻辑器 件、 分立门或者晶体管逻辑器件、 分立硬件组件。 可以实现或者执行本发明 实施例中的公开的各方法、 歩骤及逻辑框图。 通用处理器可以是微处理器或 者该处理器也可以是任何常规的处理器, 解码器等。 结合本发明实施例所公 开的方法的歩骤可以直接体现为硬件解码处理器执行完成, 或者用解码处 理器中的硬件及软件模块组合执行完成。 软件模块可以位于随机存储器, 闪 存、 只读存储器, 可编程只读存储器或者电可擦写可编程存储器、 寄存器等 本领域成熟的存储介质中。 该存储介质位于存储器 907, 处理器读取存储器
907中的信息, 结合其硬件完成上述方法的歩骤。
本领域普通技术人员可以理解实现上述实施例方法中的全部或部分流 程, 是还可以通过计算机程序来指令相关的硬件来完成, 所述的程序可存储 于一计算机可读取存储介质中, 该程序在执行时, 可包括如上述各方法的实 施例的流程。 其中, 所述的存储介质可为磁碟、 光盘、 只读存储记忆体
( Read-Only Memory, ROM) 或随机存储记忆体 ( Random Access Memory, RAM) 等。
以上所述, 仅为本发明的具体实施方式, 但本发明的保护范围并不局限 于此, 任何熟悉本技术领域的技术人员在本发明揭露的技术范围内, 可轻易 想到的变化或替换, 都应涵盖在本发明的保护范围之内。 因此, 本发明的保 护范围应该以权利要求的保护范围为准。
Claims
1、 一种修改网络配置的方法, 其特征在于, 包括:
网络设备接收终端设备 UE发送的需求信息,所述需求信息包括所述 UE的 节电请求信息或所述 UE的最大发射功率;
所述网络设备查找服务模式信息与所述需求信息之间的映射关系, 根 据所述映射关系确定所述网络设备的至少一种服务模式;
所述网络设备将确定的所述网络设备的服务模式的服务模式信息发送 至所述 UE, 以便于所述 UE根据接收到的所述服务模式信息确定选择信息, 所 述服务模式信息用于指示所述网络设备的服务模式;
所述网络设备接收所述 UE发送的所述选择信息, 并根据所述选择信息确 定的服务模式以修改所述网络设备的配置,所述选择信息对应所述服务模式 信息中的一种服务模式。
2、 根据权利要求 1所述的修改网络配置的方法, 其特征在于, 所述节电 请求信息包括所述 UE的电量信息, 所述网络设备查找所述需求信息与服务模 式信息之间的映射关系包括:
所述网络设备确定所述电量信息与服务模式信息之间的映射关系; 则根据所述映射关系确定所述网络设备的至少一种服务模式包括: 所述 网络设备根据所述电量信息所对应的映射关系确定至少一种所述网络设备 的服务模式。
3、 根据权利要求 1所述的修改网络配置的方法, 其特征在于, 所述需 求信息包括所述 UE的最大发射功率, 所述网络设备查找所述需求信息与服 务模式信息之间的映射关系包括:
所述网络设备确定所述 UE的最大发射功率所在的数值区间, 所述数值区 间对应至少一个映射关系;
则根据所述映射关系确定所述网络设备的至少一种服务模式包括: 根据 所述数值区间所对应的映射关系确定至少一种所述网络设备的所述服务模 式。
4、根据权利要求 1-3中任一项所述的修改网络配置的方法,其特征在于, 所述根据所述选择信息确定的服务模式修改网络设备的配置包括:
所述网络设备根据所述选择信息所对应的所述服务模式, 确定所述服务 模式所指定的天线数量;
所述网络设备根据所述天线数量, 开启相应数量的天线, 并通过所开启 的天线接收所述 UE发送的数据。
5、 根据权利要求 4所述的修改网络配置的方法, 其特征在于, 所述确定 所述服务模式所指定的天线数量包括:
检测所述 UE当前所需的发射功率是否大于所述最大发射功率;
若所述 UE当前所需的发射功率大于所述最大发射功率, 则增加预设数量 的天线, 并将增加了所述预设数量后的天线的数量总和作为所述服务模式所 指定的天线数量。
6、 一种修改网络配置的方法, 其特征在于, 包括:
终端设备 UE向网络设备发送需求信息,所述需求信息包括所述 UE的节电 请求信息或所述 UE的最大发射功率, 以便于所述网络设备查找所述需求信息 与服务模式之间的映射关系并根据所述映射关系确定至少一种网络设备的 服务模式;
所述终端设备 UE接收所述网络设备发送的服务模式信息, 所述服务模式 信息是所述网络设备根据所述映射关系获取的, 所述服务模式信息用于指示 所述网络设备的服务模式;
终端设备 UE根据所述服务模式信息确定选择信息, 所述选择信息对应所 述服务模式信息中的一种服务模式;
终端设备 UE根据所述选择信息确定的服务模式修改所述终端设备的配 置, 并将所述选择信息发送至所述网络设备, 以便于所述网络设备根据所述 选择信息修改配置。
7、 根据权利要求 6所述的修改网络配置的方法, 其特征在于, 所述节电 请求信息包括所述 UE的电量信息,
所述终端设备 UE向网络设备发送需求信息包括所述终端设备 UE向网络 设备发送所述 UE的电量信息, 所述电量信息对应至少一个与服务模式之间 的所述映射关系, 以便于所述网络设备确定所述电量信息与服务模式之间的 所述映射关系, 并根据所述电量信息所对应的映射关系获取所述服务模式。
8、 根据权利要求 6-7任一项所述的修改网络配置的方法, 其特征在于, 所述终端设备 UE根据所述选择信息所确定的服务模式修改所述终端设备的 配置包括:
所述终端设备 UE确定所述选择信息所确定的服务模式对应的发射功率, 并根据所述服务模式所对应的发射功率向所述网络设备发送数据;
或所述终端设备 UE采用最大发射功率向所述网络设备发送数据。
9、 一种网络设备, 其特征在于, 包括:
第一接收模块, 用于接收终端设备 UE发送的信息, 所述信息包括需求信
息和选择信息,其中所述需求信息包括所述 UE的节电请求信息或所述 UE的最 大发射功率;
分析模块, 用于查找服务模式与所述需求信息之间的映射关系, 根据所 述映射关系确定所述网络设备的至少一种服务模式;
第一发送模块,用于将确定的所述网络设备的服务模式的服务模式信息 发送至所述 UE, 以便于所述 UE根据接收到的所述服务模式信息确定选择信息 所述服务模式信息用于指示所述网络设备的服务模式;
第一配置修改模块, 用于获得所述 UE发送的所述选择信息, 并根据所述 选择信息确定的服务模式以修改所述网络设备的配置, 所述选择信息对应所 述服务模式信息中的一种服务模式。
10、 根据权利要求 9所述的网络设备, 其特征在于, 所述节电请求信息 包括所述 UE的电量信息, 所述分析模块包括:
电量分析单元, 用于获得所述电量信息与服务模式信息之间的映射关 服务模式获取单元, 用于根据所述电量信息所对应的映射关系确定所述 网络设备的至少一种服务模式。
11、 根据权利要求 10所述的网络设备, 其特征在于, 所述需求信息包括 所述 UE的最大发射功率,所述分析模块包括:
功率分析单元, 用于确定所述 UE的最大发射功率所在的数值区间, 所述 数值区间对应至少一个所述映射关系;
服务模式获取单元, 用于根据所述数值区间所对应的映射关系确定至 少一种所述网络设备的所述服务模式。
12、 根据权利要求 10或 11所述的网络设备, 其特征在于, 所述第一配置 修改模块包括:
天线数量分析单元, 用于获得所述 UE发送的所述选择信息,根据所述选 择信息所对应的所述服务模式, 确定所述服务模式所指定的天线数量; 天线启动单元, 用于根据所述天线数量, 开启相应数量的天线以修改所 述网络设备的天线启用配置, 并通过所开启的天线接收所述 UE发送的数据。
13、 根据权利要求 10或 11所述的网络设备, 其特征在于, 所述天线数量 分析单元, 还用于检测所述 UE当前所需的发射功率是否大于所述最大发射功 -;
所述天线启动单元, 还用于若所述 UE当前所需的发射功率大于所述最大 发射功率, 则增加预设数量的天线, 并将增加了所述预设数量后的天线的数 量总和作为所述服务模式所指定的天线数量。
14、 一种终端设备, 其特征在于, 包括:
第二发送模块, 用于向网络设备发送需求信息, 所述需求信息包括所述 UE的节电请求信息或所述 UE的最大发射功率, 以便于所述网络设备获取与服 务模式之间的对应关系;
第二接收模块, 用于接收所述网络设备发送的服务模式信息, 所述服务 模式信息是所述网络设备根据所述映射关系获取的,所述服务模式信息用于 指示服务模式;
选择模块, 用于根据所述服务模式信息确定选择信息, 所述选择信息对 应所述服务模式信息中的一种服务模式;
第二配置修改模块, 用于根据所述选择信息确定的服务模式修改所述终
端设备的配置, 并将所述选择信息发送至所述网络设备, 以便于所述网络设 备根据所述选择信息修改配置。
15、 根据权利要求 14所述的终端设备, 所述第二发送模块发送所述节电 请求信息包括所述 UE的电量信息, 所述电量信息对应至少一个与服务模式之 间的所述映射关系, 以便于所述网络设备确定所述电量信息所与服务模式之 间的所述映射关系, 并根据所述电量信息所对应的所述映射关系获取服务模 式。
16、 根据权利要求 14或 15所述的终端设备, 其特征在于, 所述第二配置 修改模块包括:
功率分析单元,用于确定所述选择信息所确定的服务模式对应的发射功 率; 以便于所述第二发送模块根据所述服务模式所对应的发射功率向所述网 络设备发送数据。
17、 根据权利要求 14或 15所述的终端设备, 其特征在于, 所述第二配置 修改模块包括:
功率分析单元,用于根据所述终端设备 UE的最大发射功率向所述网络设 备发送数据。
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| US14/813,963 US20150341863A1 (en) | 2013-01-31 | 2015-07-30 | Method and apparatus for adjusting network configuration |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2019056322A1 (zh) * | 2017-09-22 | 2019-03-28 | Oppo广东移动通信有限公司 | 一种指示ue发射端口数量的方法、ue及网络设备 |
Families Citing this family (14)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN104219377B (zh) * | 2014-06-30 | 2017-11-21 | 华为技术有限公司 | 移动终端的天线的控制方法和移动终端 |
| EP3197221B1 (en) * | 2014-10-31 | 2020-07-29 | Huawei Technologies Co., Ltd. | Access method and device |
| CN104918308A (zh) * | 2015-05-27 | 2015-09-16 | 努比亚技术有限公司 | 节省终端电量的方法、装置和系统 |
| DE102015012893A1 (de) | 2015-10-06 | 2017-04-06 | Audi Ag | Kraftfahrzeug mit mehreren Antennen und wenigstens einer Kommunikationseinrichtung |
| KR102429965B1 (ko) | 2016-02-19 | 2022-08-08 | 삼성전자주식회사 | 사용자 단말의 수신 안테나 선택 방법 및 그 장치 |
| US10750569B2 (en) * | 2017-03-03 | 2020-08-18 | Qualcomm Incorporated | Beam management for connected mode discontinuous reception operation |
| CN109756995B (zh) * | 2017-11-01 | 2020-09-25 | 北京紫光展锐通信技术有限公司 | 网络侧设备、终端及其邻区测量方法 |
| WO2019119364A1 (en) * | 2017-12-21 | 2019-06-27 | Telefonaktiebolaget Lm Ericsson (Publ) | Antenna configuration in a communication network |
| CN109963330B (zh) * | 2017-12-26 | 2021-11-09 | 北京小米松果电子有限公司 | 调整天线发射功率的方法、通信设备、遥控设备及计算机可读存储介质 |
| US10944455B2 (en) * | 2018-02-26 | 2021-03-09 | Qualcomm Incorporated | Beam tracking for periodic user equipment movement |
| CN111418237B (zh) * | 2018-03-09 | 2021-11-23 | Oppo广东移动通信有限公司 | 数据传输方法及装置 |
| CN110557178A (zh) * | 2018-06-04 | 2019-12-10 | 电信科学技术研究院有限公司 | 一种天线配置的指示方法、基站、终端及计算机存储介质 |
| CN110650485B (zh) * | 2018-06-26 | 2021-02-19 | 维沃移动通信有限公司 | 用于srs的天线切换传输方式指示方法、终端设备和网络设备 |
| CN110958622B (zh) * | 2018-09-27 | 2022-04-01 | 大唐移动通信设备有限公司 | 一种信息发送和接收方法及装置、终端和基站 |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN101860948A (zh) * | 2009-04-13 | 2010-10-13 | 华为技术有限公司 | 功耗调节的方法、设备及系统 |
| CN102098784A (zh) * | 2009-12-14 | 2011-06-15 | 华为技术有限公司 | 一种资源配置方法和设备 |
| CN102685869A (zh) * | 2009-12-30 | 2012-09-19 | 华为技术有限公司 | 一种功率控制方法和装置 |
Family Cites Families (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5666649A (en) * | 1994-09-01 | 1997-09-09 | Ericsson Inc. | Communications system having variable system performance capability |
| US7010329B2 (en) * | 2003-03-11 | 2006-03-07 | Interdigital Technology Corp. | System and method for battery conservation with assistance from the network and radio resource management |
| JP2006191455A (ja) * | 2005-01-07 | 2006-07-20 | Nec Corp | 無線移動通信方法、無線移動通信システム、基地局制御装置及び無線移動端末 |
| US8149746B2 (en) * | 2006-08-28 | 2012-04-03 | Intel Corporation | Battery level based configuration of a mobile station by a base station |
| CN101267249B (zh) * | 2007-03-13 | 2012-11-07 | 华为技术有限公司 | 分布式无线通信系统中天线选择方法、终端及网络侧设备 |
| EP2290780B1 (en) * | 2009-09-01 | 2019-11-06 | BlackBerry Limited | A wireless communication device with a programmable battery |
| CN102611803A (zh) * | 2011-01-25 | 2012-07-25 | 深圳富泰宏精密工业有限公司 | 手机省电方法及系统 |
-
2013
- 2013-01-31 CN CN201310039018.8A patent/CN103974340B/zh active Active
- 2013-09-12 WO PCT/CN2013/083361 patent/WO2014117521A1/zh not_active Ceased
- 2013-09-12 EP EP13874159.0A patent/EP2945418B1/en active Active
-
2015
- 2015-07-30 US US14/813,963 patent/US20150341863A1/en not_active Abandoned
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN101860948A (zh) * | 2009-04-13 | 2010-10-13 | 华为技术有限公司 | 功耗调节的方法、设备及系统 |
| CN102098784A (zh) * | 2009-12-14 | 2011-06-15 | 华为技术有限公司 | 一种资源配置方法和设备 |
| CN102685869A (zh) * | 2009-12-30 | 2012-09-19 | 华为技术有限公司 | 一种功率控制方法和装置 |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP2945418A4 * |
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2019056322A1 (zh) * | 2017-09-22 | 2019-03-28 | Oppo广东移动通信有限公司 | 一种指示ue发射端口数量的方法、ue及网络设备 |
| US10993212B2 (en) | 2017-09-22 | 2021-04-27 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Method for indicating number of transmitting ports of UE, UE and network device |
| US11540261B2 (en) | 2017-09-22 | 2022-12-27 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Method for indicating number of transmitting ports of UE, UE and network device |
Also Published As
| Publication number | Publication date |
|---|---|
| US20150341863A1 (en) | 2015-11-26 |
| EP2945418B1 (en) | 2017-07-12 |
| CN103974340B (zh) | 2018-05-18 |
| CN103974340A (zh) | 2014-08-06 |
| EP2945418A1 (en) | 2015-11-18 |
| EP2945418A4 (en) | 2015-12-23 |
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