WO2013163913A1 - 链路覆盖问题确定方法、装置与系统 - Google Patents
链路覆盖问题确定方法、装置与系统 Download PDFInfo
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- WO2013163913A1 WO2013163913A1 PCT/CN2013/073669 CN2013073669W WO2013163913A1 WO 2013163913 A1 WO2013163913 A1 WO 2013163913A1 CN 2013073669 W CN2013073669 W CN 2013073669W WO 2013163913 A1 WO2013163913 A1 WO 2013163913A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/08—Testing, supervising or monitoring using real traffic
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/24—Cell structures
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/04—Arrangements for maintaining operational condition
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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 communications technologies, and in particular, to a link coverage problem determining method, apparatus, and system. Background technique
- link coverage problems such as downlink coverage problems, uplink coverage problems, and uplink and downlink coverage imbalances often occur due to planning or optimization problems.
- These link coverage issues can cause wireless link critical events such as radio link failure (RRF).
- RRF radio link failure
- UE user equipment
- RRC radio resource control
- the wireless link key event data is reported to the base station.
- the wireless link key event data can only reflect the downlink situation, and it cannot analyze and locate the uplink coverage problem and the uplink and downlink coverage imbalance.
- Embodiments of the present invention provide a method, apparatus, and system for determining a link coverage problem to determine a link coverage problem when a wireless link critical event occurs.
- a method for determining a wireless link coverage problem including: associating downlink measurement data with uplink measurement data; and determining a wireless link coverage problem according to the associated downlink measurement data and uplink measurement data.
- a communication apparatus including: an association unit, configured to associate downlink measurement data and uplink measurement data; and an analyzing unit, configured to determine a wireless link coverage problem according to the associated downlink measurement data and uplink measurement data.
- a communication system including the communication device described above.
- the user equipment when a critical event of the wireless link occurs, the user equipment is triggered to report the wireless link key event data, and the wireless link key event data only includes the downlink measurement data that reflects the downlink condition, and cannot be based on the downlink measurement.
- the data accurately determines whether the occurrence of a critical event of the wireless link is related to an uplink coverage problem.
- the method, the device and the system provided above associate the downlink measurement data with the uplink measurement data for analysis, so that the confirmation of the link coverage problem no longer depends solely on the downlink measurement data, but combines the uplink and downlink measurement data. In this way, the confirmation of the link coverage problem will be more accurate.
- accurately determining the link coverage problem is beneficial to the subsequent adoption of the correct solution.
- FIG. 1 is a schematic flow chart of a method for determining a link coverage problem according to an embodiment of the present invention
- FIG. 2 is a schematic diagram of an application scenario of a method for determining a link coverage problem according to an embodiment of the present invention
- FIG. 3 is a schematic diagram of another application scenario of a method for determining a link coverage problem according to an embodiment of the present invention.
- FIG. 4 is a schematic diagram of another application scenario for determining a link coverage problem according to an embodiment of the present invention.
- FIG. 5 is a schematic flow chart of a method for determining a link coverage problem according to an embodiment of the present invention
- FIG. 6 is a schematic structural diagram of a communication apparatus according to an embodiment of the present invention.
- FIG. 7 is a schematic structural diagram of still another communication apparatus according to an embodiment of the present invention
- FIG. 8 is a schematic structural diagram of another communication apparatus according to an embodiment of the present invention. detailed description
- FIG. 1 is a schematic flowchart of a method for determining a link coverage problem according to an embodiment of the present invention. As shown in Figure 1, the method includes:
- the downlink measurement data is used to reflect the downlink situation, and can be obtained by triggering a radio link key event, for example, obtaining the downlink measurement data by using RLF measurement.
- the occurrence of the RLF triggers the UE to upload an RLF report, where the RLF report includes downlink measurement data reflecting the downlink condition, for example, including reference signal received power (RSRP), or reference signal reception quality (reference) Signal received quality, RSRQ ) and other data reflecting the downlink condition.
- RSRP reference signal received power
- RSRQ reference signal reception quality
- the wireless link key event is not limited.
- the radio link key event may also be a UE failure, so that the UE uploads a UE failure report carrying the downlink measurement data.
- the minimization of drive test (MDT) data which includes periodic measurement or reporting, includes data M1 (Ml: RSRP or RSRQ) reflecting the downlink condition.
- Ml it is reported as the occurrence of RLF, which is a kind of downlink measurement data.
- the uplink measurement data is used to reflect the uplink situation, and can be obtained by periodic measurement or reporting, for example, by MDT, erformance management (PM), ⁇ alarm ⁇ ), with] ⁇ Trace salt resource management (radio resource management, RRM) to measure the obtained MDT data, ⁇ data, alarm data sent by network failure, monitoring data for network signaling, or RRM data.
- RRM Radio resource management
- These data include uplink measurement data reflecting the uplink condition, for example, uplink signal strength, uplink signal power, uplink signal quality, or uplink signal to interference and noise ratio.
- the MDT data includes not only downlink measurement data M1 reflecting the downlink condition but also uplink measurement data M2 and M3 reflecting the uplink condition (for example, M2: ower headroom, M3: uplink signal)
- uplink measurement data M2 and M3 reflecting the uplink condition
- M2 ower headroom
- M3 uplink signal
- SINR interference plus noise ratio
- the downlink measurement data M1 in the MDT data can be obtained by triggering the RLF; the uplink measurement in the MDT data
- the data M2 and M3 cannot be obtained by the trigger of the RLF, but are obtained by periodic measurement or reporting. Therefore, it is impossible to accurately determine the chain when the RLF occurs, combining the downlink measurement data M1 and the uplink measurement data M2 and M3 of the MDT data. Road coverage problem.
- the UE reports the radio link key event data
- the radio link key event data only includes the downlink measurement data that reflects the downlink situation, and cannot be based on the downlink.
- the measurement data accurately determines whether the occurrence of a critical event of the wireless link is related to an uplink coverage problem.
- the method provided in the embodiment shown in FIG. 1 will be downlinked.
- the measurement data is correlated with the uplink measurement data for analysis, so that the confirmation of the link coverage problem is no longer solely dependent on the downlink measurement data, but the upper and lower measurement data are combined, so that the confirmation of the link coverage problem will be more accurate. .
- accurately determining the link coverage problem is beneficial to the subsequent adoption of the correct solution. For example, if it is an uplink coverage problem, after optimization analysis, parameters such as antenna parameters (direction angle, downtilt angle, etc.) and initial transmission power of the UE can be adjusted to optimize the uplink coverage; if it is a downlink coverage problem, after optimization analysis The antenna parameters (direction angle, downtilt angle, etc.) and base station transmit power parameters can be adjusted to optimize the downlink coverage to solve the problem of unbalanced uplink and downlink coverage.
- the association described in the above step S110 refers to linking the two sets of data through a certain factor, so as to comprehensively consider the two sets of data, and analyze and determine the link coverage problem.
- This factor can be time or an identity, such as a UE identity or a cell identity.
- the downlink measurement data and the uplink measurement data can be associated with the time and the identifier.
- the downlink measurement data and the uplink measurement data may be associated by using the time window, and the downlink measurement data and the uplink measurement data may be associated by using the UE identifier or the cell identifier, or the two association manners may be combined.
- FIG. 2 is a schematic diagram of an application scenario of a method for determining a link coverage problem according to an embodiment of the present invention.
- the downlink measurement data and the uplink measurement data are associated according to the UE identity or the cell identity.
- the UE 210 accessing the cell 220 may generate RLF.
- the UE 210 records the RLF measurement data to form an RLF report.
- the UE 210 then retries the connection and accesses the cell 240.
- the UE 210 reports the previously recorded RLF report to the access network device 250 on the network side.
- the radio link key event is the RLF, and the RLF report reported by the UE 210 includes the downlink measurement data.
- the access network device 250 obtains uplink measurement data about the UE 210 or the cell 220 according to the identifier of the UE 210 or the identifier of the cell 220, to comprehensively consider the downlink measurement data reported by the UE 210 and the acquired uplink measurement data, and determine the UE 210. Whether the RLF is caused by an uplink coverage problem or a downlink coverage problem.
- the identifier of the UE 210 or the identifier of the cell 220 can be reported to the access network device 250 by using the RLF report reported by the UE.
- the downlink measurement data is abnormal and the uplink measurement data is normal, it is determined that the downlink has a coverage problem or the uplink coverage is greater than the downlink coverage; if the downlink measurement data is normal, and the uplink measurement data is abnormal. , determining that there is a coverage problem in the uplink or that the uplink coverage is less than the downlink coverage.
- the UE 230 may generate an RLF due to a link coverage problem in the cell 220.
- the UE 230 records the RLF measurement data to form an RLF report.
- the UE 230 continually retryes the connection.
- the UE 230 reports the previously recorded RLF report to the access network device 250, where the RLF report includes downlink measurement data.
- the downlink measurement data is not associated with the uplink measurement data, it is inaccurate to confirm the link coverage problem of the cell 220 by using only the downlink measurement data, especially when the cell 220 has an uplink coverage problem. .
- the access network device 250 obtains the uplink measurement data about the UE 230 or the cell 220 according to the identifier of the UE 230 or the identifier of the cell 220, to comprehensively consider the downlink measurement data reported by the UE 230 and the acquired uplink measurement data, and determine the UE 230. Whether the RLF is caused by an uplink coverage problem or a downlink coverage problem.
- the identifier of the UE 230 or the identifier of the cell 220 may be reported to the access network device 250 by using the RLF report reported by the UE 230.
- the link coverage problem if the downlink measurement data is abnormal and the uplink measurement data is normal, it is determined that the downlink has a coverage problem or the uplink coverage is greater than the downlink coverage; if the downlink measurement data is normal, and the uplink measurement data is abnormal , determining that there is a coverage problem in the uplink or that the uplink coverage is less than the downlink coverage.
- the involved UE identity or cell identity may be included in the report of the radio link critical event.
- the network side saves the correspondence between the network measurement task identifier and the UE identifier or the cell identifier; and in the uplink measurement data (for example, MDT data, RRM data, or PM data) that is periodically measured or reported, Will include network measurement tasks Knowledge. Therefore, the downlink measurement data and the periodic measurement or the reported uplink measurement data in the radio link key event report may be associated according to the correspondence between the network measurement task identifier and the UE identifier or the cell identifier.
- the UE identifier may be a cell radio network temporary identify (CRNTI), a short media access control (Short-MAC) identifier, and an international mobile subscriber identity (IMSI). , or international mobile equipment identity (IMEI).
- CNTI cell radio network temporary identify
- Short-MAC short media access control
- IMSI international mobile subscriber identity
- IMEI international mobile equipment identity
- the network measurement task identifier can be a trace reference (TR) or a trace recording session reference (TRSR). This embodiment does not impose any restrictions.
- the UE identity is usually allocated to the UE by the access network device, and after the allocation, the UE usually only keeps for a period of time, for example, 48 hours.
- the allocated user equipment identity resource is released after the same time (for example, 48 hours), and the access network device discovers the reserved user equipment when receiving the downlink measurement data.
- the identity resource is consistent with the UE identity involved in the downlink measurement data, and the consistent UE identity resource is released. In this way, when the access network device obtains the downlink measurement data, the UE identifier corresponding to the downlink measurement data is repeatedly allocated in the access network device, and a matching error occurs.
- FIG. 3 is a schematic diagram of another application scenario of a method for determining a link coverage problem according to an embodiment of the present invention.
- the downlink measurement data and the uplink measurement data are described by using a time window as an example.
- the uplink coverage of the cell 310 is greater than the downlink coverage (one of the uplink and downlink coverage imbalances), and the cell 320 is a normal cell.
- the periodic event triggers or periodically collects network measurement data (such as establishing an MDT task or a measurement task).
- an MDT task is established as an example, and the uplink measurement data is in the MDT measurement data.
- the downlink measurement data is Ml in the MDT measurement data.
- ⁇ 1 and ⁇ 2 are the acquisition moments of the uplink measurement data M2 and M3.
- the UE When the UE moves from the cell 310 to the cell 320, because the uplink and downlink coverage of the cell 310 is unbalanced, the UE will generate RLF, and in Figure 3, T3 is the RLF occurrence time. At this time, the UE records the downlink measurement data M1 at time T3. From the above description of the MDT data, it can be known that the RLF is the condition reported by the M1. Therefore, the UE reports the downlink measurement data M1 to the access network device. It should be noted that the UE may report downlink measurement data on the cell 310, and may also report downlink measurement data in the cell 320. The UE may re-access the cell 310 after the RLF, and may also move to access the cell 320.
- the access network device of the cell 310 can still measure the corresponding uplink measurement data M2, M3, for example, M2-3 and M3-3o in the figure.
- the uplink measurement data M2 and M3 are not associated with the downlink measurement data M1 of the UE at this time.
- the RLF is for the uplink measurement data M2 and M3. Reporting conditions that are not available. Therefore, the uplink measurement data M2, M3 and the downlink measurement data M1 are not comprehensively considered to determine whether the uplink coverage problem or the downlink coverage problem is caused by the RLF.
- the downlink measurement data M1 and the uplink measurement data M2 and M3 are associated by the RLF occurrence time, and the data closest to the time is associated.
- the downlink measurement data M1 in the dotted line frame and the uplink measurement data M2-3 and M3-3 are associated. If the uplink measurement data M2-3 and M3-3 are not obtained, the previously obtained uplink measurement data M2-2, M3-2 closest to the RLF occurrence time may be associated with the downlink measurement data M1 (within the time window). To determine link coverage issues.
- the reason for the RLF is that there is a coverage problem in the downlink or the uplink coverage is greater than the downlink coverage; if the M1 data is normal, and M2-2 and M3- 2 The data is abnormal, and the reason for the RLF is that there is a coverage problem in the uplink or the uplink coverage is smaller than the downlink coverage.
- the downlink measurement data and the uplink measurement data may be associated by using a time window, and the location of the time window is determined according to the time of the wireless link key event, and the size of the time window is determined according to the time association tolerance range, and the time association is allowed.
- the range is usually preset by the network side, and is usually greater than or equal to the collection period of the uplink measurement data, so that the time window can be associated with at least one group of uplink measurement data.
- the time of the wireless link critical event that determines the location of the time window is the time of occurrence of the critical event of the wireless link or the absolute timestamp of the occurrence of a wireless link critical event. It can be seen that the time window can be a period of time before or after the moment when the wireless link key event occurs (or an absolute time stamp occurs), or a period of time (or an absolute timestamp of the occurrence of the wireless link key event). This embodiment does not impose any restrictions.
- the timestamp is a reference time point used to calculate the exact time with the relative time offset (time offset).
- the absolute timestamp of a wireless link critical event is an accurate moment calculated by the reference time point and relative time displacement.
- the reference time point may be an absolute timestamp of the UE accessing the network, that is, an access time recorded by the network side when the UE accesses the network; and the relative time shift is a relative event of the UE accessing the network to the wireless link. Timestamp, the time shift from the UE access network to the wireless link critical event. It can be seen that the absolute timestamp of the wireless link key event is calculated by the absolute timestamp of the user equipment accessing the network and the relative timestamp of the user equipment access network to the wireless link key event.
- the uplink measurement data near the moment when the key event of the wireless link occurs is associated with the downlink measurement data, so that the wireless link can be more accurately caused.
- Link coverage issues for critical events are located. It can be seen that combining the identification association and the utilization time window association shown in FIG. 2 above will achieve the best effect in determining the link coverage problem. This case will be described in detail below in conjunction with the scenario shown in FIG.
- FIG. 4 is a schematic diagram of still another application scenario of a method for determining a link coverage problem according to an embodiment of the present invention.
- This embodiment combines the two methods of using the UE identity or the cell identity association and the time window association.
- the UE identity is used as an example, and the cell identifier is similar, and details are not described herein.
- the cell 410 has a link coverage problem
- the cell 420 is a normal cell.
- the cells 410 and 420 are maintained by the same access network device 440. For example, they may be maintained by different access network devices. This embodiment does not impose any limitation.
- the UE 430 accesses the cell 410.
- the UE 430 generates an RLF and then retry the connection. After the cell 420 is successfully accessed, the UE 430 reports the downlink measurement data to the access network device 440. In addition, after the UE 430 accesses the cell, the access network device 440 periodically collects uplink measurement data.
- the UE measurement identifier is used to associate the downlink measurement data of the same UE or the neighboring UE with the uplink measurement data. Then, the uplink measurement data and the downlink measurement data in the vicinity of the occurrence time (or the absolute timestamp) of the wireless link key event are correlated by using the time window, and the uplink measurement data and the downlink measurement data are comprehensively considered to determine the link coverage problem.
- the network management device 450 may send a storage indication to the access network device 440, where the storage indication is used to indicate which information of the access network device needs to be saved, for example, the UE identifier and the network measurement task identifier are saved.
- the corresponding relationship for example, the association table of the CRNTI and the TRSR
- the UE identifier can be obtained through the UE context (UE Context). Therefore, the correspondence between the UE context and the network measurement task identifier can be saved.
- the network management device 450 can deliver the time association tolerance range to the access network device 440, so that the access network device 440 determines the size of the time window according to the time association tolerance range.
- the access network device 440 Based on the storage indication delivered by the network management device 450, the access network device 440 associates the UE context with the network measurement task identifier when the UE 430 accesses. Since the UE identifier is included in the UE context, the correspondence between the UE identifier and the network measurement task identifier is saved. Therefore, in the subsequent association process, the downlink measurement data and the uplink measurement data are associated with the UE identifier.
- the access network device 440 establishes a network measurement task, thereby triggering or periodically collecting network measurement data.
- a network measurement task is established to obtain MDT measurement data, including uplink measurement data M2 and M3, and downlink measurement data M1.
- the UE 430 When the RLF occurs, the UE 430 records the time of occurrence of the RLF or the relative timestamp of the UE accessing the network to the RLF. Then, the UE 430 continually retryes the connection. After the connection with the cell 420 is successful, the UE 430 reports the RLF report to record the time of occurrence of the previously recorded RLF (or the relative timestamp of the UE accessing the network to the RLF-free occurrence) and the downlink measurement data M1. The access network device 440 is reported.
- the access network device 440 uses the previously saved UE context and the network measurement task identifier to shut down the downlink measurement data of the same UE or the neighboring UE and the uplink measurement data. Connected together. And determining the time window by using the time of occurrence of the RLF (or the relative timestamp of the UE accessing the network to the occurrence of no RLF) and the network management device 450 delivering the time association allowable range. Thereby, the uplink measurement data outside the time window is filtered out and associated with the downlink measurement data. In this way, comprehensively consider the uplink and downlink measurement data, analyze and determine the link coverage problem, and more accurately locate the link coverage problem that causes the RLF event.
- the access network device 440 can also report the obtained RLF report and the network measurement data to the network management device 450, and the network management device 450 uses the time window and the UE identifier to associate the downlink measurement data in the RLF report with the uplink in the network measurement data.
- the measurement data is used to determine the link coverage problem based on the associated uplink and downlink measurement data.
- the link coverage problem if the downlink measurement data is abnormal and the uplink measurement data is normal, it is determined that the downlink has a coverage problem or the uplink coverage is greater than the downlink coverage; if the downlink measurement data is normal, and the uplink measurement data is abnormal, It is determined that the uplink has a coverage problem or the uplink coverage is less than the downlink coverage.
- the time window needs to be determined, and the position of the time window is determined according to the time of the wireless link key event, and the size of the time window is determined according to the time association allowable range.
- the association window may be [t-tl/2, t+tl/2], or [t, t+tl/ 2], or [t-tl/2, t], etc.
- the embodiment does not impose any restrictions, and the association window only needs to include the moment when the wireless link key event occurs, and the size does not exceed the time association allowable range.
- the time of the wireless link key event can be determined by using an accurate absolute timestamp
- the timestamp content of the wireless link key event report can be extended
- the timestamp position can be determined by using an accurate timestamp.
- the storage indication sent by the network management device 450 to the access network device 440 is further used to indicate that the access network device 440 maintains a ⁇ 11 £ identifier, ⁇ 0> table, for the handover to or access to the UE, where The TO characterizes the absolute timestamp of the UE 430 accessing the access network device.
- the UE 430 When the RLF occurs, the UE 430 records the relative timestamp of the UE accessing the access network device to the RLF, sets the relative timestamp to be dT, and reports the result in the RLF report. Then, when receiving the RLF report, the access network device 440 can learn the relative timestamp dT and look up the ⁇ UE identifier, 10> table, and then learn the absolute timestamp TO of the UE accessing the access network device, thereby calculating The UE generates an absolute timestamp T0+dT of the radio link critical event.
- the absolute time stamp T+dT and the time association allowable range can be used to set the time window, wherein the time correlation allowable range is used to locate the size of the time window, and the absolute time stamp TO+dT is used to locate the position of the time window.
- the method for determining the link coverage problem provided by the embodiment shown in FIG. 1 to FIG. 4 may be an access network device or a network management device, or may be associated with the access network device. And passing the associated data to the network management device, and the network management device determines the link coverage problem. If the execution entity is a network management device, the access network device needs to transmit the received downlink measurement data and the uplink measurement data to the network management device, and needs to save the UE context (UE Context) and network measurement. Task identification, time association The correspondence of the allowable ranges is transmitted to the network management device, so that the network management device uses these correspondences to associate.
- UE context UE Context
- the access network device described above is a device for accessing a UE to a wireless network, including but not limited to: evolved Node B (eNB), Home Node B (HNB), and wireless network control. Radio network controller (RNC), base station controller (BSC), base transceiver station (BTS), etc.
- the network management device described above includes, but is not limited to, operation, administration and maintenance (OAM) system, element management system (S), integration reference, and management reference (Integration Reference Point Manager, IRPManager ) or integration reference; ⁇ Agent Entity (IRP Agent).
- OAM operation, administration and maintenance
- S element management system
- IRPManager Integration Reference Point Manager
- IRP Agent Agent Entity
- the following describes the link coverage problem by using an access network device on the access network side, as shown in the following figure.
- the method for determining the link coverage problem includes the following steps:
- the access network device receives the storage indication sent by the network management device, and/or, the time association allowable range;
- the access network device When the UE accesses the network, the access network device establishes a network measurement task, and saves a correspondence between the network measurement task identifier and the UE identifier according to the storage indication, and/or a time association tolerance range and a UE identifier. Correspondence between
- S530 Obtain network measurement data including uplink measurement data.
- S540 Acquire a wireless link key event report including downlink measurement data;
- S550 Associate the uplink measurement data and downlink measurement data by using a correspondence between a network measurement task identifier and a UE identifier, and/or a correspondence between a time association tolerance range and a UE identifier, and a downlink window, where The size of the time window is determined according to the time association tolerance range, and the location of the time window is determined according to the time of the wireless link key event;
- S560 Determine a wireless link coverage problem according to the associated downlink measurement data and uplink measurement data.
- the network measurement data in the above step S530 may be a periodic acquisition, and there is no order requirement between the step S540 and the step S540, that is, the associated uplink measurement data may be obtained before the downlink measurement data, or may be measured in the downlink. After getting it.
- the access network device does not perform the following steps, but reports the obtained uplink and downlink measurement data to the network management device, and is executed by the network management device. Subsequent associations and steps to determine link coverage issues. There is no need to issue a time association tolerance range, because the network management device can directly determine the time window according to the time association tolerance range.
- the embodiment of the present invention further provides a communication device.
- the device 600 includes an association unit 610 and an analysis unit 620.
- the association unit 610 is configured to associate downlink measurement data and uplink measurement data.
- the determining unit 620 is configured to determine a radio link coverage problem according to the associated downlink measurement data and uplink measurement data.
- the downlink measurement data is used to reflect the downlink situation, and can be obtained by triggering a radio link key event.
- the occurrence of the RLF triggers the UE to upload an RLF report, and the RLF report includes a downlink that reflects the downlink situation.
- the measurement data for example, includes data reflecting the downlink condition, such as RSRP or RSRQ.
- the RLF is only an example.
- the radio link key event is not limited.
- the radio link key event may also be a UE failure, thereby triggering the UE to upload a UE failure report carrying the downlink measurement data.
- the uplink measurement data is used to reflect the uplink situation and can be obtained by periodic measurement or reporting, such as MDT data, RRM data, or PM data obtained by periodic measurement or reporting.
- periodic measurement or reporting such as MDT data, RRM data, or PM data obtained by periodic measurement or reporting.
- These data include uplink measurement data reflecting the uplink condition, for example, uplink signal strength, uplink signal power, uplink signal quality, or uplink signal to interference and noise ratio.
- the communication device may further include an obtaining unit 630, configured to trigger the acquiring the downlink measurement data by using a radio link key event, and configured to acquire the uplink measurement data by using periodic measurement or reporting.
- an obtaining unit 630 configured to trigger the acquiring the downlink measurement data by using a radio link key event, and configured to acquire the uplink measurement data by using periodic measurement or reporting.
- the association unit 610 may use the time window to associate the uplink and downlink measurement data, and may also associate the uplink measurement data with the user identifier, or may combine the two methods.
- the communication device 600 may further include a storage unit 640, where the storage unit may be configured to store a time association tolerance range delivered by the network management device, and may also be used to store the network measurement task identifier and the UE identifier.
- the storage unit may be configured to store a time association tolerance range delivered by the network management device, and may also be used to store the network measurement task identifier and the UE identifier.
- Correspondence relationship and time association tolerance range and UE The correspondence between the identifiers, for example, ⁇ network measurement task identifier, UE identifier> table, ⁇ time association allowable range, UE identifier> table.
- the associating unit 610 determines the location of the time window according to the time of the radio link critical event, and determines the time window according to the time association tolerance range stored by the storage unit 640. Size, after determining the time window, the uplink measurement data and the downlink measurement data in the associated time window. For the determination of the time window and the association process of the uplink and downlink data, reference may be made to the method embodiment shown in FIG. 1 to FIG. 4, and details are not described herein again.
- the association unit 610 When the association unit 610 is configured to use the UE identifier (or the cell identifier) to associate the downlink measurement data with the uplink measurement data, the UE identifier (or the cell identifier) is reported at the same time when the downlink measurement data is reported by the radio link key event. It can be known that the downlink measurement data of the reported downlink measurement data is the downlink measurement data of the UE (or the cell), and the association unit 610 finds the uplink measurement data of the corresponding or neighboring UE (or the cell) according to the correspondence between the network measurement task identifier and the UE identifier. And thus correlate uplink measurement data and downlink measurement data of the same or neighboring UEs (or cells).
- the association unit 610 When the association unit 610 is configured to use the time window to associate the downlink measurement data and the uplink measurement data with the UE identifier (or the cell identifier), the UE identifier (or the cell identifier) is simultaneously reported when the downlink measurement data is reported by the radio link key event. Therefore, it can be known that the downlink measurement data of the reported downlink measurement data is the downlink measurement data of the UE (or the cell), and the association unit 610 finds the corresponding or neighboring UE (or the cell) according to the correspondence between the network measurement task identifier and the UE identifier. Uplink measurement data to correlate uplink measurement data and downlink measurement data of the same or neighboring UEs (or cells).
- the unit 610 determines the location of the time window according to the time of the wireless link key event, and finds the corresponding time association allowable range determining time window according to the correspondence between the time association allowable range and the UE identifier stored by the storage unit 640, and determines the size of the time window. After the time window, the uplink measurement data and the downlink measurement data in the time window are associated.
- the analysis unit 620 is further configured to perform the analysis process in the method embodiments shown in Figures 1 through 4.
- the downlink measurement data is abnormal, and the uplink measurement data is normal, the analysis unit 620 is configured to determine that a downlink presence coverage problem or an uplink coverage is greater than a downlink coverage; or, the downlink measurement data is normal, and the uplink measurement data is abnormal, and the analyzing unit 620 is configured to determine that the uplink has a coverage problem or the uplink coverage is smaller than the downlink coverage.
- association unit 610, the analysis unit 620, the acquisition unit 630, and the storage unit 640 may be hardware modules, software modules executable by the processor, or a combination of the two. This embodiment does not impose any restrictions.
- the association unit 610 and the analysis unit 620 are embedded in the memory of the access network device or the network management device in the form of program code corresponding to the function, and the processor retrieves the program code corresponding to the association unit 610 and the analysis unit 620.
- the obtaining unit 630 can be a receiver of an access network device or a network management device
- the storage unit 640 can be a memory.
- the association unit 610, the analysis unit 620, the acquisition unit 630, and the storage unit 640 may exist as separate components in the access network device or the network management device, and may also partially integrate or fully
- the department is integrated into a logical entity and is set in the access network device or the network management device. This embodiment does not impose any restrictions.
- the embodiment of the present invention further provides a communication system, including a UE, an access network device, and a network management system, and the access network device or the network management system includes the link coverage problem determined as shown in the embodiment of FIG. Device.
- a computer program product provided by an embodiment of the present invention includes a computer readable medium, and the readable medium includes a set of program codes for performing any of the link coverage problem determination methods described in the above embodiments.
- the above link coverage problem determination method, device and system associate the downlink measurement data with the uplink measurement data, and comprehensively analyze and determine the link coverage problem.
- Link coverage problems that cause critical events on the wireless link can be more accurately determined.
- parameters such as antenna parameters (direction angle, downtilt angle, etc.) and initial transmission power of the UE can be adjusted to optimize the uplink coverage;
- antenna parameters (direction angle, downtilt angle, etc.) and base station transmit power parameters can be adjusted to optimize the downlink coverage to solve the problem of unbalanced uplink and downlink coverage.
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Abstract
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| EP13785286.9A EP2846574B1 (en) | 2012-05-04 | 2013-04-02 | Link coverage problem determination method, device and system |
| EP16201023.5A EP3236688B1 (en) | 2012-05-04 | 2013-04-02 | Method, apparatus, and system for determining a link coverage problem |
| KR1020147034001A KR20150013688A (ko) | 2012-05-04 | 2013-04-02 | 링크 커버리지 문제 결정 방법, 장치 및 시스템 |
| US14/532,721 US9894546B2 (en) | 2012-05-04 | 2014-11-04 | Method, apparatus, and system for determining a link coverage problem |
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| CN103384376B (zh) | 2016-12-14 |
| CN106454926B (zh) | 2020-06-02 |
| KR20150013688A (ko) | 2015-02-05 |
| EP3236688B1 (en) | 2019-06-12 |
| CN106454926A (zh) | 2017-02-22 |
| EP2846574A4 (en) | 2015-05-27 |
| US20150056981A1 (en) | 2015-02-26 |
| EP2846574A1 (en) | 2015-03-11 |
| CN103384376A (zh) | 2013-11-06 |
| ES2625116T3 (es) | 2017-07-18 |
| EP3236688A1 (en) | 2017-10-25 |
| EP2846574B1 (en) | 2017-03-01 |
| US9894546B2 (en) | 2018-02-13 |
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