WO2014205852A1 - 信号测量方法和装置 - Google Patents

信号测量方法和装置 Download PDF

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Publication number
WO2014205852A1
WO2014205852A1 PCT/CN2013/078519 CN2013078519W WO2014205852A1 WO 2014205852 A1 WO2014205852 A1 WO 2014205852A1 CN 2013078519 W CN2013078519 W CN 2013078519W WO 2014205852 A1 WO2014205852 A1 WO 2014205852A1
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WO
WIPO (PCT)
Prior art keywords
sector
terminal device
base station
super cell
target
Prior art date
Application number
PCT/CN2013/078519
Other languages
English (en)
French (fr)
Inventor
姚霈
张岩强
郇海滨
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to EP13863701.2A priority Critical patent/EP2884800B1/en
Priority to CN201380000678.3A priority patent/CN103650559B/zh
Priority to PCT/CN2013/078519 priority patent/WO2014205852A1/zh
Priority to BR112014020767-4A priority patent/BR112014020767B1/pt
Priority to ARP140102383A priority patent/AR096716A1/es
Publication of WO2014205852A1 publication Critical patent/WO2014205852A1/zh
Priority to ZA2015/09241A priority patent/ZA201509241B/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0083Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
    • H04W36/0085Hand-off measurements
    • H04W36/0088Scheduling hand-off measurements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0055Transmission or use of information for re-establishing the radio link
    • H04W36/0058Transmission of hand-off measurement information, e.g. measurement reports

Definitions

  • TECHNICAL FIELD Embodiments of the present invention relate to communication technologies, and in particular, to a signal measurement method and apparatus.
  • GSM Global System for Mobile communication
  • the frequency band of the GSM system is becoming narrower.
  • the terminal equipment performs downlink measurement on its serving cell and its neighboring cells, and obtains the receiving levels of the serving cell and the neighboring cell, and then reports the measurement results of the serving cell and the neighboring cell simultaneously through the measurement report.
  • the base station controller can perform mobility management on the terminal according to the measurement result.
  • the terminal device cannot normally measure the level quality of each sector in the super cell, the base station controller cannot be used.
  • the level quality of each sector is reported, which results in the base station controller being unable to perform mobility management on the terminal device or assigning a sector to the terminal device.
  • an embodiment of the present invention provides a signal measurement method, including:
  • the base station controller sends a message to notify the base station to measure an uplink signal in the to-be-measured sector of the target device in the target super cell, and the terminal device receives or transmits a signal on the relay layer channel of the target super cell, so that the base station And measuring, according to the message, an uplink signal on a physical channel corresponding to the relay layer channel in the to-be-measured sector, obtaining an uplink measurement result of the to-be-measured sector, and reporting the uplink measurement result to the base station controller;
  • the target super cell includes at least two sectors, and the at least two sectors include At least one physical channel having the same time-frequency resource, the relay layer channel including one or more of the same physical channels of the at least one time-frequency resource.
  • the method further includes:
  • the method further includes:
  • the base station controller sends a message to notify the base station that the measurement terminal device is in the target Before the uplink signal in the sector to be measured under the super cell, the method further includes:
  • the target super cell is a serving super cell where the terminal device is located Adjacent super cell;
  • the target super cell is a serving super cell where the terminal device is located.
  • the method further includes:
  • the relay layer channel includes an independent dedicated control channel SDCCH, and the target super cell is a serving super cell where the terminal device is located.
  • the method further includes:
  • Receiving an access request message sent by the terminal device And sending, according to the access request message, an immediate assignment message to the terminal device, and assigning the terminal device to the SDCCH, so that the terminal device receives or sends a signal on the SDCCH.
  • the relay layer channel includes a physical random access channel PRACH, where the target super cell is a terminal device Super cell
  • the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the target super cell in the target super cell, and further includes:
  • the message includes: the time-frequency resource corresponding to the relay layer channel Identification information and/or identification information of the terminal device; or
  • the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device, and the identification information of the sector to be measured is measured.
  • an embodiment of the present invention provides a signal measurement method, including:
  • the base station performs, according to the message, an uplink signal on a physical channel corresponding to a relay layer channel of a target super cell in a sector to be measured;
  • the target super cell includes at least two sectors, the at least two sectors include at least one physical channel with the same time-frequency resource, and the relay layer channel includes the physical channel with the same at least one time-frequency resource. One or more of them.
  • the method further includes: the message includes: identifier information of a time-frequency resource corresponding to the relay layer channel and/or identifier information of the terminal device; or
  • the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device, and the identification information of the sector to be measured is measured.
  • an embodiment of the present invention provides a signal measurement apparatus, including:
  • a message sending module configured to send, by the base station controller, a message to notify the base station to measure an uplink signal in the to-be-measured sector of the target device in the target super cell, where the terminal device receives or sends a signal on the relay layer channel of the target super cell.
  • the base station is configured to measure, according to the message, an uplink signal on a physical channel corresponding to the relay layer channel in the to-be-measured sector, obtain an uplink measurement result of the to-be-measured sector, and report the result to the Base station controller;
  • An uplink measurement result obtaining module configured to acquire, by using the message sending module, an uplink measurement result of the to-be-measured sector
  • the target super cell includes at least two sectors, the at least two sectors include at least one physical channel with the same time-frequency resource, and the relay layer channel includes the physical channel with the same at least one time-frequency resource. One or more of them.
  • the method further includes:
  • a target sector determining module configured to: after the base station controller acquires an uplink measurement result of the to-be-measured sector, according to the uplink measurement result of the to-be-measured sector acquired by the uplink measurement result acquiring module, A target sector is determined for the terminal device.
  • the method further includes: a target sector switching module, configured to: after determining the target sector for the terminal device, The terminal device switches to the target sector determined by the target sector determination module.
  • the first relay layer channel processing module is configured to be used in the base station controller Sending a message to the base station to measure the downlink signal measurement result of each super cell reported by the terminal device before the terminal device measures the uplink signal in the to-be-measured sector in the target super cell; and according to the downlink signal of each super cell a measurement result, determining the target super cell in each of the super cells;
  • the target super cell is a service where the terminal device is located Adjacent super cell of the super cell;
  • the target super cell is a serving super cell where the terminal device is located.
  • the method further includes:
  • a target sector assignment module configured to allocate, for the terminal device, a channel in a target sector determined by the target sector determining module after the determining the target sector for the terminal device, and assigning the channel to the Terminal Equipment.
  • the method further includes:
  • the relay layer channel includes an independent dedicated control channel SDCCH, and the target super cell is a serving super cell in which the terminal device is located;
  • a second relay layer channel processing module configured to: after the base station controller sends a message to notify the base station to measure an uplink signal in the to-be-measured sector of the target super-cell in the target super-cell, receive an access request message sent by the terminal device ;
  • the relay layer channel includes a physical random access channel PRACH, where the target super cell is a terminal device Super cell
  • An access request message receiving module configured to send, by the base station controller, a message to notify the base station to receive the uplink signal sent by the terminal device on the PRACH before the uplink signal in the to-be-measured sector in the target super cell is measured by the base station Incoming request message.
  • the target sector determining module is specifically configured to be used according to the uplink As a result of the measurement, the sector with the highest priority is determined from the sector for performing uplink measurement on the relay layer channel used by the terminal device as the target sector.
  • the message includes: the time-frequency corresponding to the relay layer channel Identification information of the source and/or identification information of the terminal device; or
  • the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device, and the identification information of the sector to be measured is measured.
  • an embodiment of the present invention provides a signal measurement apparatus, including:
  • a message receiving module configured to receive a message sent by the base station controller
  • an uplink signal measurement module configured to perform an uplink measurement result reporting module on the uplink signal corresponding to the physical channel corresponding to the relay layer channel of the target super cell in the sector according to the message received by the message receiving module,
  • the base station controller reports an uplink measurement result that is measured by the uplink signal measurement module on the uplink signal;
  • the target super cell includes at least two sectors, the at least two sectors include at least one physical channel with the same time-frequency resource, and the relay layer channel includes the physical channel with the same at least one time-frequency resource. One or more of them.
  • the message includes: identifier information of a time-frequency resource corresponding to the relay layer channel and/or identifier information of the terminal device; or
  • the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device, and the identification information of the sector to be measured is measured.
  • the signal measurement method and device of the embodiment of the present invention sends a message to the base station controller to notify the base station to measure the uplink signal in the to-be-measured sector of the target device in the target super cell, so that the base station compares the channel corresponding to the relay layer channel according to the message.
  • the uplink signal on the physical channel is measured, and the uplink measurement result of the sector to be measured is obtained, and the uplink measurement result is reported to the base station controller. Therefore, in the super cell scenario, the base station controller can obtain the uplink measurement result, thereby implementing mobility management of the terminal device and assigning a sector to the terminal device.
  • 1 is a flowchart of a signal measurement method according to Embodiment 1 of the present invention
  • 2 is a flowchart of a signal measurement method according to Embodiment 2 of the present invention
  • Embodiment 3 is a flowchart of a signal measurement method according to Embodiment 3 of the present invention.
  • Embodiment 4 is a flowchart of a signal measurement method according to Embodiment 4 of the present invention.
  • Embodiment 5 is a flowchart of a signal measurement method according to Embodiment 5 of the present invention.
  • FIG. 6 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 6 of the present invention.
  • FIG. 7 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 7 of the present invention.
  • Embodiment 8 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 8 of the present invention.
  • FIG. 9 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 9 of the present invention.
  • FIG. 10 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 10 of the present invention.
  • FIG. 11 is a schematic structural diagram of a base station controller according to Embodiment 11 of the present invention.
  • FIG. 12 is a schematic structural diagram of a base station according to Embodiment 12 of the present invention.
  • the technical solutions in the embodiments of the present invention are clearly and completely described in the following with reference to the accompanying drawings in the embodiments of the present invention. It is obvious that the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. example. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative efforts are within the scope of the present invention.
  • FIG. 1 is a flowchart of a signal measurement method according to Embodiment 1 of the present invention.
  • the method in this embodiment is applicable to the case where the base station controller acquires the uplink measurement result of the sector to be measured in the super cell scenario.
  • the method of this embodiment includes the following steps:
  • Step 110 The base station controller sends a message to notify the base station to measure the uplink signal of the terminal device in the to-be-measured sector under the target super cell, and the terminal device receives or sends a signal on the relay layer channel of the target super cell, so that the base station treats the message according to the message.
  • the uplink signal on the physical channel corresponding to the relay layer channel in the sector is measured, and the uplink measurement result of the sector to be measured is obtained and reported to the base station controller.
  • the relay layer channel can be configured on all time slots of the primary B carrier frequency, on some time slots of the primary B carrier frequency, on all time slots of all service carrier frequencies, on some time slots of all service carrier frequencies, and part of the service carrier frequency. All the time On a time slot on the slot or part of the service carrier frequency.
  • the target super cell includes at least two sectors, at least two sectors include at least one physical channel with the same time-frequency resource, and the relay layer channel includes one or more of at least one physical channel with the same time-frequency resource.
  • the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the terminal device under the target super cell, so that the base station measures the uplink signal on the physical channel corresponding to the relay layer channel in the sector according to the message.
  • the measurement is performed to obtain an uplink measurement result of the sector to be measured, and the uplink measurement result is reported to the base station controller, so that the base station controller acquires the uplink measurement result of the sector to be measured.
  • Step 120 The base station controller acquires an uplink measurement result of the sector to be measured.
  • the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the target device in the target super cell, so that the base station performs the uplink signal on the physical channel corresponding to the relay layer channel in the sector according to the message.
  • the measurement obtains the uplink measurement result of the sector to be measured, and reports the uplink measurement result to the base station controller, so that the base station controller can obtain the uplink measurement result.
  • the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the target device in the target super cell, so that the base station compares the channel corresponding to the relay layer channel according to the message.
  • the uplink signal on the physical channel is measured, and the uplink measurement result of the sector to be measured is obtained, and the uplink measurement result is reported to the base station controller. Therefore, in the super cell scenario, the base station controller can obtain the uplink measurement result, thereby implementing mobility management on the terminal device and assigning a sector to the terminal device.
  • FIG. 2 is a flowchart of the signal measurement method provided by the second embodiment of the present invention.
  • the method of this embodiment may include:
  • Step 210 Obtain a downlink signal measurement result of each super cell reported by the terminal device.
  • Step 220 Determine a target super cell in each super cell according to downlink signal measurement results of each super cell.
  • the target super cell may be a neighboring super cell of the serving super cell where the terminal device is located, or a serving super cell where the terminal device is located. How to determine that the target super cell is determined by the downlink signal measurement result of each super cell reported by the terminal device acquired by the base station controller, and when determining that the serving super cell where the terminal device is located is the target super cell, triggering the intra cell switching in the super cell; When it is determined that the neighboring super cell is the target super cell, the sector switching between the super cells is triggered. Step 230: Switch the terminal device to the relay layer channel.
  • Step 240 The base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the terminal device under the target super cell, and the terminal device receives or transmits a signal on the relay layer channel, so that the base station treats the intra-sector according to the message.
  • the uplink signal on the physical channel corresponding to the relay layer channel is measured, and the uplink measurement result of the sector to be measured is obtained and reported to the base station controller.
  • the sector to be measured can be selected by the base station controller according to the load, alarm state or priority of the sector, or by sending a message to the base station to inform the base station which sectors are to be measured.
  • the sector to be measured may be each sector under the target super cell, or may be a partial sector under the target super cell.
  • Step 250 The base station controller acquires an uplink measurement result of the sector to be measured.
  • Step 260 Determine, according to an uplink measurement result of the sector to be measured, a target sector for the terminal device. For example, determining the target sector for the terminal device according to the uplink measurement result can be implemented as follows:
  • the sector with the highest priority is determined from the sector for performing uplink measurement on the relay layer channel used by the terminal device as the target sector. It should be noted that, if the sector with the highest priority determined according to the measurement result cannot receive the terminal device, for example, the determined highest priority sector has no redundant resources allocated to the terminal device, then the fan with the lower priority is determined.
  • the area is the target sector.
  • Step 270 Switch the terminal device to the target sector.
  • the signal measurement method provided in this embodiment determines the target super cell by acquiring the downlink signal measurement result of each super cell reported by the terminal device, and switches the terminal device to the relay layer channel to notify the base station to measure the terminal device to be in the target super cell.
  • the uplink signal in the sector is measured, the uplink measurement result of the sector to be measured is obtained, and the target sector is determined according to the uplink measurement result, and the terminal device is switched to the target sector.
  • the base station controller can determine the target sector for the terminal device and switch the terminal device to the target sector.
  • FIG. 3 is a flowchart of the signal measurement method provided by the third embodiment of the present invention.
  • the implementation scenario of this embodiment is: assigning a sector to a terminal device on the SDCCH that is connected to the relay layer channel.
  • the method of this embodiment may include:
  • Step 310 Receive an access request message sent by the terminal device.
  • Step 320 Send an immediate assignment message to the terminal device according to the access request message, and send the terminal
  • the device is assigned to the SDCCH such that the terminal device receives or transmits a signal on the SDCCH.
  • the relay layer channel includes the independent dedicated control channel SDCCH, and the target super cell is the serving super cell where the terminal device is located. In this step, the terminal device is assigned to the SDCCH in the relay layer channel.
  • Step 330 The base station controller sends a message to notify the base station to measure an uplink signal in the to-be-measured sector of the terminal device under the target super cell, and the terminal device receives or transmits a signal on the relay layer channel, so that the base station treats the intra-sector according to the message.
  • the uplink signal on the physical channel corresponding to the relay layer channel is measured, and the uplink measurement result of the sector to be measured is obtained and reported to the base station controller.
  • Step 340 The base station controller acquires an uplink measurement result of the sector to be measured.
  • Step 350 Determine, according to an uplink measurement result of the sector to be measured, a target sector for the terminal device. According to the uplink measurement result, the sector with the highest priority is determined from the sector for performing uplink measurement on the relay layer channel used by the terminal device as the target sector.
  • Step 360 Allocate a channel in the target sector for the terminal device, and assign it to the terminal device. If the base station controller does not determine the sector with the highest priority, the terminal device is first assigned to the traffic channel in the relay layer channel, and then the uplink measurement is performed on the traffic channel according to the sector under the target super cell, and the fan is obtained. The area performs the measurement result of the uplink measurement on the traffic channel, and then determines the sector with the highest priority as the target sector according to the measurement result.
  • the signal measurement method provided by the embodiment receives the access request message sent by the terminal device, and sends an immediate assignment message to the terminal device according to the access request message, and assigns the terminal device to the SDCCH, so that the terminal device is in the
  • the SDCCH receives or sends a signal, so that the base station can measure the uplink signal sent by the terminal device in the to-be-measured sector in the target super cell, and obtain an uplink measurement result, and allocate a channel in the target sector for the terminal device according to the uplink measurement result. Therefore, in the super cell scenario, the base station controller can allocate a channel to the target device for the terminal device and assign the channel to the terminal device.
  • FIG. 4 is a flowchart of the signal measurement method provided by the fourth embodiment of the present invention.
  • the implementation scenario of this embodiment is: assigning a sector to a terminal device on a PRACH that is connected to a relay layer channel.
  • the method of this embodiment may include:
  • Step 410 Receive an access request message sent by the terminal device on the PRACH.
  • the relay layer channel includes a physical random access channel PRACH, and the target super cell is a super cell where the terminal device resides.
  • the uplink signal on the physical channel corresponding to the relay layer channel is measured, and the uplink measurement result of the sector to be measured is obtained and reported to the base station controller.
  • Step 430 The base station controller acquires an uplink measurement result of the sector to be measured.
  • Step 440 Determine, according to an uplink measurement result of the sector to be measured, a target sector for the terminal device. According to the uplink measurement result, the sector with the highest priority is determined from the sector for performing uplink measurement on the relay layer channel used by the terminal device as the target sector.
  • Step 450 Allocate a channel in the target sector for the terminal device, and assign it to the terminal device. If the base station controller determines that the highest priority sector is the target sector, the terminal device may be allocated the SDCCH channel or the traffic channel of the target sector in the target sector; if the base station controller does not determine the highest priority fan The terminal device immediately assigns the terminal device to the traffic channel in the relay layer channel or the SDCCH, and then performs uplink measurement on the traffic channel or SDCCH according to the sector under the target super cell, and acquires the sector for the traffic channel or SDCCH. The measurement result of the uplink measurement is performed, and the sector with the highest priority is determined as the target sector according to the measurement result.
  • the signal measurement method provided in this embodiment by receiving an access request message sent by the terminal device on the PRACH, enables the base station to measure the uplink signal sent by the terminal device in the to-be-measured sector in the target super cell, and obtain the uplink measurement result. According to the uplink measurement result, the terminal device allocates a channel in the target sector. Therefore, in the super cell scenario, the base station controller can allocate a channel to the target device for the terminal device and assign the channel to the terminal device.
  • FIG. 5 is a flowchart of a signal measurement method according to Embodiment 5 of the present invention.
  • the method of this embodiment is applicable to the case of determining a target sector for a terminal device in a super cell scenario.
  • the method of this embodiment includes the following steps:
  • Step 510 The base station receives a message sent by the base station controller.
  • Step 520 The base station performs, according to the message, the uplink signal on the physical channel corresponding to the relay layer channel of the target super cell in the measurement sector.
  • Step 530 The base station reports, to the base station controller, an uplink measurement result that the base station measures the uplink signal.
  • the target super cell includes at least two sectors, at least two sectors include at least one physical channel with the same time-frequency resource, and each relay layer channel includes at least one of the same time-frequency resources.
  • the message includes the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device; or the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device, and the identifier of the sector to be measured information.
  • the base station receives the message sent by the base station controller, and measures the uplink signal on the physical channel corresponding to the channel of the relay layer in the sector to be measured, and reports the uplink signal to the base station controller.
  • the measured upstream measurement results Therefore, in the super cell scenario, the uplink measurement result can be reported to the base station controller, so that the base station controller determines the target sector for the terminal device, performs mobility management on the terminal device, and assigns the sector to the terminal device.
  • FIG. 6 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 6 of the present invention.
  • the apparatus of this embodiment is adapted to determine a target sector for a terminal device in a super cell scenario.
  • the signal measuring apparatus includes the following modules: a message transmitting module 610 and an uplink measurement result obtaining module 620.
  • the message sending module 610 is configured to send a message to the base station controller to notify the base station to measure an uplink signal in the to-be-measured sector of the terminal device under the target super cell, and the terminal device receives or transmits a signal on the relay layer channel, so that the base station performs measurement according to the message.
  • the uplink signal on the physical channel corresponding to the relay layer channel in the sector is measured, and the uplink measurement result of the to-be-measured sector is obtained, and is reported to the base station controller.
  • the uplink measurement result obtaining module 620 is configured to obtain the to-be-measured fan by using the message sending module.
  • the uplink measurement result of the area wherein, the target super cell includes at least two sectors, at least two sectors include at least one physical channel with the same time-frequency resource, and each relay layer channel includes at least one physical channel with the same time-frequency resource One or more of them.
  • the signal measurement device provided in this embodiment can be used to implement the technical solution of the method embodiment shown in FIG. 1.
  • the implementation principle is similar to the technical effect, and details are not described herein again.
  • FIG. 7 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 7 of the present invention.
  • the signal measuring apparatus further includes the following modules: a first relay layer channel processing module 710, a target sector determining module 720, and a target sector switching module 730.
  • the first relay layer channel processing module 710 is configured to: after the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the target super-cell in the target super-cell, obtain the downlink signal measurement result of each super cell reported by the terminal device. Determining the target super cell in each super cell according to the downlink signal measurement result of each super cell; switching the terminal device to the relay layer On the road.
  • the target sector determining module 720 is configured to: after the base station controller acquires the uplink measurement result of the to-be-measured sector, obtain an uplink measurement result of the to-be-measured sector acquired by the module according to the uplink measurement result, and determine a target sector for the terminal device;
  • the area switching module 730 is configured to switch the terminal device to the target sector determined by the target sector determining module after determining the target sector for the terminal device.
  • the target super cell is a neighboring super cell of the serving super cell where the terminal device is located, or the target super cell is a serving super cell where the terminal device is located.
  • the signal measurement device provided in this embodiment can be used to implement the technical solution of the method embodiment shown in FIG. 2, and the implementation principle is similar to the technical effect, and details are not described herein again.
  • FIG. 8 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 8 of the present invention.
  • the signal measuring apparatus further includes the following modules: a second relay layer channel processing module 810 and a target sector assignment module 820.
  • the second relay layer channel processing module 810 is configured to: after the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector in the target super cell, the terminal device receives the access request message sent by the terminal device; The request message, sending an immediate assignment message to the terminal device, and assigning the terminal device to the SDCCH, so that the terminal device receives or transmits a signal on the SDCCH.
  • the target sector assignment module 820 is configured to allocate a channel to the target device in the target sector determined by the target sector determination module after determining the target sector for the terminal device, and assign the channel to the terminal device.
  • the signal measurement device provided in this embodiment can be used to implement the technical solution of the method embodiment shown in FIG. 3, and the implementation principle is similar to the technical effect, and details are not described herein again.
  • FIG. 9 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 9 of the present invention.
  • the signal measuring apparatus further includes the following modules: a third relay layer channel processing module 910 and a target sector assignment module 920.
  • the third relay layer channel processing module 910 is configured to send a message to the base station controller to notify the base station to measure an access request message sent by the terminal device on the PRACH before the uplink signal in the to-be-measured sector of the target super cell is measured by the terminal device;
  • the target sector assignment module 920 is configured to allocate a channel to the target device in the target sector determined by the target sector determination module after determining the target sector for the terminal device, and assign the channel to the terminal device.
  • the signal measurement device provided in this embodiment can be used to implement the technical solution of the method embodiment shown in FIG. 4, and the implementation principle is similar to the technical effect, and details are not described herein again.
  • FIG. 10 is a schematic structural diagram of a signal measuring apparatus according to Embodiment 10 of the present invention. This embodiment The apparatus is adapted to determine a target sector for a terminal device in a super cell scenario. Reference map
  • the signal measuring device includes the following modules: a message receiving module 1010, an uplink signal measuring module 1020, and an uplink measurement result reporting module 1030.
  • the message receiving module 1010 is configured to receive a message sent by the base station controller, and the uplink signal measuring module 1020 is configured to: use an uplink signal measurement module to measure an uplink signal on a physical channel corresponding to the relay layer channel in the sector according to the message received by the message receiving module.
  • the uplink measurement result reporting module 1030 is configured to report, to the base station controller, an uplink measurement result that is measured by the uplink signal measurement module to measure the uplink signal, where the target super cell includes at least two sectors, and the at least two sectors include At least one physical channel having the same time-frequency resource, and the relay layer channel includes one or more of at least one physical channel having the same time-frequency resource.
  • the signal measurement device provided in this embodiment can be used to implement the technical solution of the method embodiment shown in FIG. 5, and the implementation principle is similar to the technical effect, and details are not described herein again.
  • FIG. 11 is a schematic structural diagram of a base station controller according to Embodiment 11 of the present invention.
  • the base station controller of this embodiment is adapted to determine a target sector for a terminal device in a super cell scenario.
  • the base station controller includes: a transmitter 1110 and a processor 1120.
  • the transmitter 1110 is configured to send a message to notify the base station to measure an uplink signal in the to-be-measured sector of the target device in the target super cell, and the terminal device receives or sends a signal on the relay layer channel of the target super cell, so that the base station performs measurement according to the message.
  • the uplink signal on the physical channel corresponding to the relay layer channel in the sector is measured, and the uplink measurement result of the sector to be measured is obtained, and is reported to the base station controller.
  • the processor 1120 is configured to obtain the uplink of the to-be-measured sector by using the message sending module.
  • the measurement result wherein, the target super cell includes at least two sectors, at least two sectors include at least one physical channel with the same time-frequency resource, and the relay layer channel includes one or more of at least one physical channel with the same time-frequency resource One.
  • the processor 1120 is further configured to: after the base station controller acquires the uplink measurement result of the to-be-measured sector, obtain an uplink measurement result of the to-be-measured sector acquired by the module according to the uplink measurement result, and determine a target sector for the terminal device.
  • the processor 1120 is further configured to: after determining the target sector for the terminal device, switch the terminal device to the target sector determined by the target sector determining module.
  • the processor 1120 is further configured to: when the base station controller sends a message to notify the base station to measure the uplink signal of the terminal device in the to-be-measured sector in the target super cell, obtain the terminal device to report The downlink signal measurement result of each super cell; determining the target super cell in each super cell according to the downlink signal measurement result of each super cell; and switching the terminal device to the relay layer channel.
  • the processor 1120 is further configured to: after determining the target sector for the terminal device, allocate a channel to the terminal device in the target sector determined by the target sector determining module, and assign the channel to the terminal device.
  • the processor 1120 is further configured to: after the base station controller sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the target super cell in the target super cell, receive the access request message sent by the terminal device; The message, sending an immediate assignment message to the terminal device, assigning the terminal device to the SDCCH, so that the terminal device receives or transmits a signal on the SDCCH.
  • the processor 1120 is further configured to send a message to notify the base station to measure an access request message sent by the terminal device on the PRACH before the uplink signal in the to-be-measured sector of the target super cell is measured by the base station;
  • the access request message sends an immediate assignment message to the terminal device, and the terminal device is assigned to the PRACH, so that the terminal device receives or sends a signal on the PRACH.
  • the processor 1120 is further configured to determine, according to the uplink measurement result, a sector with the highest priority from the sector that performs uplink measurement on the relay layer channel used by the terminal device as the target sector.
  • the base station controller provided by the embodiment sends a message to notify the base station to measure the uplink signal in the to-be-measured sector of the terminal device under the target super cell, so that the base station treats the physical channel corresponding to the relay layer channel in the sector according to the message.
  • the uplink signal is measured, and the uplink measurement result of the sector to be measured is obtained, and the uplink measurement result is reported to the base station controller. Therefore, in the super-small area scenario, the base station controller can determine the target sector for the terminal device, thereby implementing the control terminal device to perform sector switching and assigning the sector to the terminal device.
  • FIG. 12 is a schematic structural diagram of a base station according to Embodiment 12 of the present invention.
  • the base station in this embodiment is applicable to the case where the uplink measurement result is reported to the base station controller in the super cell scenario.
  • the base station includes: a receiver 1210 and a processor 1220.
  • the receiver 1210 is configured to receive a message sent by the base station controller, where the processor 1220 is configured to perform, according to the message received by the message receiving module, the uplink signal on the physical channel corresponding to the relay layer channel in the sector to be measured; a reporting module, configured to report, to the base station controller, an uplink measurement result that is measured by the uplink signal measurement module, where the uplink signal includes at least two sectors, where at least two sectors are included At least one physical channel having the same time-frequency resource, and the relay layer channel includes at least one physical channel having the same time-frequency resource one or more.
  • the message includes the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device; or the identification information of the time-frequency resource corresponding to the relay layer channel and/or the identification information of the terminal device, and the sector to be measured Identification information.
  • the base station by receiving the message sent by the base station controller, measures the uplink signal on the physical channel corresponding to the channel of the relay layer in the sector to be measured, and reports the uplink of the uplink signal to the base station controller. Measurement results. Therefore, in the super cell scenario, the uplink measurement result can be reported to the base station controller, so that the base station controller determines the target sector for the terminal device, performs mobility management on the terminal device, and assigns the sector to the terminal device.
  • the aforementioned program can be stored in a computer readable storage medium.
  • the program when executed, performs the steps including the foregoing method embodiments; and the foregoing storage medium includes: a medium that can store program codes, such as a ROM, a RAM, a magnetic disk, or an optical disk.

Abstract

本发明实施例提供一种信号测量方法和装置。本发明信号测量方法,包括:基站控制器发送消息通知基站测量终端设备在目标超级小区下的待测量扇区内的上行信号,所述终端设备在所述目标超级小区的接力层信道上接收或发送信号,以使得所述基站根据所述消息对所述待测量扇区内所述接力层信道对应的物理信道上的上行信号进行测量,获得所述待测量扇区的上行测量结果,并上报给所述基站控制器;所述基站控制器获取所述待测量扇区的上行测量结果。本发明实施例实现了在超级小区场景下,为终端设备确定目标扇区,进而实现对终端设备进行移动性管理以及为终端设备指配扇区。

Description

信号测量方法和装置
技术领域 本发明实施例涉及通信技术, 尤其涉及一种信号测量方法和装置。 背景技术 随着全球移动通信系统 (Global System for Mobile communication, 简称 GSM)网络频率重整技术的发展, GSM系统的频带越来越窄。为了降低 GSM 系统的干扰、 改善网络质量, 需要对现有 GSM扇区进行合并, 即把多个现有 GSM扇区的主 B载频合并为一个主 B载频, 而业务载频合并或不合并, 从 而形成超级小区。
在现有 GSM 网络中, 终端设备对其服务小区及其相邻小区进行下行测 量, 得到服务小区及相邻小区的接收电平后, 通过测量报告将服务小区和相 邻小区的测量结果同时上报给基站控制器, 基站控制器可以根据测量结果对 终端进行移动性管理, 然而, 在超级小区场景下, 由于终端设备无法正常测 量超级小区下各个扇区的电平质量, 因此无法向基站控制器上报各个扇区的 电平质量, 从而导致基站控制器无法对终端设备进行移动性管理, 也无法为 终端设备指配扇区。 发明内容 本发明实施例提供一种信号测量方法和装置, 解决了在超级小区场景下 无法对终端设备进行移动性管理以及为终端设备指配扇区的问题。
第一方面, 本发明实施例提供一种信号测量方法, 包括:
基站控制器发送消息通知基站测量终端设备在目标超级小区下的待测量 扇区内的上行信号, 所述终端设备在所述目标超级小区的接力层信道上接收 或发送信号, 以使得所述基站根据所述消息对所述待测量扇区内所述接力层 信道对应的物理信道上的上行信号进行测量, 获得所述待测量扇区的上行测 量结果, 并上报给所述基站控制器;
所述基站控制器获取所述待测量扇区的上行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述接力层信道包括所述至少一个时频 资源相同的物理信道中的一个或多个。
在第一方面的第一种可能的实现方式中, 所述基站控制器获取所述待测 量扇区的上行测量结果之后, 还包括:
根据所述待测量扇区的所述上行测量结果, 为所述终端设备确定目标扇 区。
根据第一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, 在所述为所述终端设备确定目标扇区之后, 还包括:
将所述终端设备切换到所述目标扇区。
根据第一方面、第一方面的第一种至第二种可能的实现方式的任意一种, 在第三种可能的实现方式中, 在所述基站控制器发送消息通知基站测量终端 设备在目标超级小区下的待测量扇区内的上行信号之前, 还包括:
获取所述终端设备上报的各个超级小区的下行信号测量结果;
根据所述各个超级小区的所述下行信号测量结果, 在所述各个超级小区 中确定所述目标超级小区;
将所述终端设备切换到所述接力层信道上。
根据第一方面、第一方面的第一种至第三种可能的实现方式的任意一种, 在第四种可能的实现方式中, 所述目标超级小区为所述终端设备所在的服务 超级小区的相邻超级小区;
或者,
所述目标超级小区为所述终端设备所在的服务超级小区。
根据第一方面的第一种可能的实现方式, 在第五种可能的实现方式中, 在所述为所述终端设备确定目标扇区之后, 还包括:
为所述终端设备在所述目标扇区中分配信道, 并指配给所述终端设备。 根据第一方面的第五种可能的实现方式, 在第六种可能的实现方式中, 所述接力层信道包括独立专用控制信道 SDCCH,所述目标超级小区为所述终 端设备所在的服务超级小区;
在所述基站控制器发送消息通知基站测量终端设备在目标超级小区下的 待测量扇区内的上行信号之前, 还包括:
接收所述终端设备发送的接入请求消息; 根据所述接入请求消息, 发送立即指配消息给所述终端设备, 将所述终 端设备指配到所述 SDCCH上,以使得所述终端设备在所述 SDCCH上接收或 发送信号。
根据第一方面的第五种可能的实现方式, 在第七种可能的实现方式中, 所述接力层信道包括物理随机接入信道 PRACH,所述目标超级小区为所述终 端设备所驻留的超级小区;
所述基站控制器发送消息通知基站测量终端设备在目标超级小区下的待 测量扇区内的上行信号之前, 还包括:
接收所述终端设备在所述 PRACH上发送的接入请求消息。
根据第一方面、第一方面的第一种至第七种可能的实现方式的任意一种, 在第八种可能的实现方式中, 所述根据所述测量结果, 为所述终端设备确定 目标扇区, 包括:
根据所述上行测量结果, 从所述对所述终端设备使用的接力层信道进行 上行测量的扇区中确定优先级最高的扇区为目标扇区。
根据第一方面、第一方面的第一种至第八种可能的实现方式的任意一种, 在第九种可能的实现方式中, 所述消息包含: 所述接力层信道对应的时频资 源的标识信息和 /或所述终端设备的标识信息; 或者,
所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
第二方面, 本发明实施例提供一种信号测量方法, 包括:
基站接收基站控制器发送的消息;
所述基站根据所述消息对待测量扇区内目标超级小区的接力层信道对应 的物理信道上的上行信号进行测量;
所述基站向所述基站控制器上报所述基站对所述上行信号进行测量的上 行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述接力层信道包括所述至少一个时频 资源相同的物理信道中的一个或多个。
在第二方面的第一种可能的实现方式中, 还包括: 所述消息包含: 所述 接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识信息; 或 者,
所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
第三方面, 本发明实施例提供一种信号测量装置, 包括:
消息发送模块, 用于基站控制器发送消息通知基站测量终端设备在目标 超级小区下的待测量扇区内的上行信号, 所述终端设备在所述目标超级小区 的接力层信道上接收或发送信号, 以使得所述基站根据所述消息对所述待测 量扇区内所述接力层信道对应的物理信道上的上行信号进行测量, 获得所述 待测量扇区的上行测量结果, 并上报给所述基站控制器;
上行测量结果获取模块, 用于通过所述消息发送模块获取所述待测量扇 区的上行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述接力层信道包括所述至少一个时频 资源相同的物理信道中的一个或多个。
在第三方面的第一种可能的实现方式中, 还包括:
目标扇区确定模块, 用于在所述基站控制器获取所述待测量扇区的上行 测量结果之后, 根据所述上行测量结果获取模块获取的所述待测量扇区的所 述上行测量结果, 为所述终端设备确定目标扇区。
根据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, 还包括: 目标扇区切换模块, 用于在所述为所述终端设备确定目标扇区之后, 将所述终端设备切换到所述目标扇区确定模块确定的所述目标扇区。
根据第三方面、 第三方面第一种至第二种可能的实现方式的任意一种, 在第三种可能的实现方式中, 第一接力层信道处理模块, 用于在所述基站控 制器发送消息通知基站测量终端设备在目标超级小区下的待测量扇区内的上 行信号之前, 获取所述终端设备上报的各个超级小区的下行信号测量结果; 根据所述各个超级小区的所述下行信号测量结果, 在所述各个超级小区 中确定所述目标超级小区;
将所述终端设备切换到所述接力层信道上。
根据第三方面、第三方面的第一种至第三种可能的实现方式的任意一种, 在第四种可能的实现方式中, 所述目标超级小区为所述终端设备所在的服务 超级小区的相邻超级小区;
或者,
所述目标超级小区为所述终端设备所在的服务超级小区。
根据第三方面的第一种可能的实现方式, 在第五种可能的实现方式中, 还包括:
目标扇区指配模块, 用于在所述为所述终端设备确定目标扇区之后, 为 所述终端设备在所述目标扇区确定模块确定的目标扇区中分配信道, 并指配 给所述终端设备。
根据第三方面的第五种可能的实现方式, 在第六种可能的实现方式中, 还包括:
所述接力层信道包括独立专用控制信道 SDCCH,所述目标超级小区为所 述终端设备所在的服务超级小区;
第二接力层信道处理模块, 用于在所述基站控制器发送消息通知基站测 量终端设备在目标超级小区下的待测量扇区内的上行信号之前, 接收所述终 端设备发送的接入请求消息;
根据所述接入请求消息, 发送立即指配消息给所述终端设备, 将所述终 端设备指配到所述 SDCCH上,以使得所述终端设备在所述 SDCCH上接收或 发送信号。
根据第三方面的第五种可能的实现方式, 在第七种可能的实现方式中, 所述接力层信道包括物理随机接入信道 PRACH,所述目标超级小区为所述终 端设备所驻留的超级小区;
接入请求消息接收模块, 用于所述基站控制器发送消息通知基站测量终 端设备在目标超级小区下的待测量扇区内的上行信号之前, 接收所述终端设 备在所述 PRACH上发送的接入请求消息。
根据第三方面、第三方面的第一种至第七种可能的实现方式的任意一种, 在第八种可能的实现方式中, 所述目标扇区确定模块, 具体用于根据所述上 行测量结果, 从所述对所述终端设备使用的接力层信道进行上行测量的扇区 中确定优先级最高的扇区为目标扇区。
根据第三方面、第三方面的第一种至第八种可能的实现方式的任意一种, 在第九种可能的实现方式中, 所述消息包含: 所述接力层信道对应的时频资 源的标识信息和 /或所述终端设备的标识信息; 或者,
所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
第四方面, 本发明实施例提供一种信号测量装置, 包括:
消息接收模块, 用于接收基站控制器发送的消息;
上行信号测量模块, 用于根据通过所述消息接收模块接收的所述消息对 待测量扇区内目标超级小区的接力层信道对应的物理信道上的上行信号进行 上行测量结果上报模块, 用于向所述基站控制器上报通过所述上行信号 测量模块对所述上行信号进行测量的上行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述接力层信道包括所述至少一个时频 资源相同的物理信道中的一个或多个。
在第四方面的第一种可能的实现方式中, 所述消息包含: 所述接力层信 道对应的时频资源的标识信息和 /或所述终端设备的标识信息; 或者,
所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
本发明实施例信号测量方法和装置, 通过基站控制器发送消息通知基站 测量终端设备在目标超级小区下的待测量扇区内的上行信号, 以使得基站根 据消息对待测量扇区内接力层信道对应的物理信道上的上行信号进行测量, 获得待测量扇区的上行测量结果, 并把上行测量结果上报给基站控制器。 从 而实现了在超级小区场景下, 基站控制器能够获取上行测量结果, 进而实现 对终端设备进行移动性管理以及为终端设备指配扇区。 附图说明 为了更清楚地说明本发明实施例或现有技术中的技术方案, 下面将对实 施例或现有技术描述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他的附图。
图 1为本发明实施例一所提供的信号测量方法的流程图; 图 2为本发明实施例二所提供的信号测量方法的流程图;
图 3为本发明实施例三所提供的信号测量方法的流程图;
图 4为本发明实施例四所提供的信号测量方法的流程图;
图 5为本发明实施例五所提供的信号测量方法的流程图;
图 6为本发明实施例六所提供的信号测量装置的结构示意图;
图 7为本发明实施例七所提供的信号测量装置的结构示意图;
图 8为本发明实施例八所提供的信号测量装置的结构示意图;
图 9为本发明实施例九所提供的信号测量装置的结构示意图;
图 10为本发明实施例十所提供的信号测量装置的结构示意图;
图 11为本发明实施例十一所提供的基站控制器的结构示意图;
图 12为本发明实施例十二所提供的基站的结构示意图。 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他实施例, 都属于本发明保护的范围。
图 1为本发明实施例一所提供的信号测量方法的流程图。 本实施例的方 法适用于在超级小区场景下基站控制器获取待测量扇区的上行测量结果的情 况。 本实施例的方法包括如下步骤:
步骤 110、 基站控制器发送消息通知基站测量终端设备在目标超级小区 下的待测量扇区内的上行信号, 终端设备在目标超级小区的接力层信道上接 收或发送信号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理 信道上的上行信号进行测量, 获得待测量扇区的上行测量结果, 并上报给基 站控制器。
由于超级小区是对现有 GSM扇区进行合并得到的,因此每个超级小区下 可以有多个扇区,例如将现有的 3个 GSM扇区进行合并后的超级小区下有 3 个扇区,将现有的 6个 GSM扇区进行合并后的超级小区下有 6个扇区。接力 层信道可以配置在主 B载频的所有时隙上、 主 B载频的部分时隙上、 所有业 务载频的所有时隙上、 所有业务载频的部分时隙上、 部分业务载频的所有时 隙上或部分业务载频的部分时隙上。其中, 目标超级小区包括至少两个扇区, 至少两个扇区中包含至少一个时频资源相同的物理信道, 接力层信道包括至 少一个时频资源相同的物理信道中的一个或多个。 本步骤是通过基站控制器 发送消息通知基站测量终端设备在目标超级小区下的待测量扇区内的上行信 号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理信道上的上 行信号进行测量, 获得待测量扇区的上行测量结果, 将上行测量结果上报给 基站控制器, 从而使基站控制器获取待测量扇区的上行测量结果。
步骤 120、 基站控制器获取待测量扇区的上行测量结果。
具体的, 基站控制器发送消息通知基站测量终端设备在目标超级小区下 的待测量扇区内的上行信号, 以使得基站根据消息对待测量扇区内接力层信 道对应的物理信道上的上行信号进行测量,获得待测量扇区的上行测量结果, 并把上行测量结果上报给基站控制器, 从而基站控制器能够获取到上行测量 结果。
本实施例提供的信号测量方法, 通过基站控制器发送消息通知基站测量 终端设备在目标超级小区下的待测量扇区内的上行信号, 以使得基站根据消 息对待测量扇区内接力层信道对应的物理信道上的上行信号进行测量, 获得 待测量扇区的上行测量结果, 并把上行测量结果上报给基站控制器。 从而实 现了在超级小区场景下, 基站控制器能够获取上行测量结果, 进而实现对终 端设备进行移动性管理以及为终端设备指配扇区。
本实施例以上述实施例一为基础, 进一步进行了优化, 图 2为本发明实 施例二所提供的信号测量方法的流程图。 参照图 2, 本实施例的方法可以包 括:
步骤 210、 获取终端设备上报的各个超级小区的下行信号测量结果。 步骤 220、 根据各个超级小区的下行信号测量结果, 在各个超级小区中 确定目标超级小区。
目标超级小区可以为终端设备所在的服务超级小区的邻超级小区, 或者 为终端设备所在的服务超级小区。 如何确定目标超级小区是基站控制器获取 的终端设备上报的各个超级小区的下行信号测量结果确定的, 当确定终端设 备所在的服务超级小区为目标超级小区时, 则触发超级小区内扇区切换; 当 确定邻超级小区为目标超级小区时, 则触发超级小区间的扇区切换。 步骤 230、 将终端设备切换到接力层信道上。
步骤 240、 基站控制器发送消息通知基站测量终端设备在目标超级小区 下的待测量扇区内的上行信号, 终端设备在接力层信道上接收或发送信号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理信道上的上行信 号进行测量, 获得待测量扇区的上行测量结果, 并上报给基站控制器。
待测量扇区可以通过基站控制器根据扇区的负荷、 告警状态或者优先级 进行选择, 或者通过向基站发送消息, 以通知基站确定哪些扇区为待测量扇 区。 待测量扇区可以为目标超级小区下的每个扇区, 也可以为目标超级小区 下的部分扇区。
步骤 250、 基站控制器获取待测量扇区的上行测量结果。
步骤 260、 根据待测量扇区的上行测量结果, 为终端设备确定目标扇区。 举例来说, 根据上行测量结果, 为终端设备确定目标扇区可以通过如下 方式实现:
根据上行测量结果, 从对终端设备使用的接力层信道进行上行测量的扇 区中确定优先级最高的扇区为目标扇区。 需要说明的是, 如果当根据测量结 果确定的优先级最高的扇区不能接纳终端设备, 例如确定的优先级最高的扇 区没有多余的资源分配给终端设备时,则确定次优先级高的扇区为目标扇区。
步骤 270、 将终端设备切换到目标扇区。
本实施例提供的信号测量方法, 通过获取终端设备上报的各个超级小区 的下行信号测量结果确定目标超级小区, 将终端设备切换到接力层信道上, 通知基站测量终端设备在目标超级小区下的待测量扇区内的上行信号, 获取 待测量扇区的上行测量结果, 根据上行测量结果, 确定目标扇区, 将终端设 备切换到目标扇区。 从而实现了在超级小区场景下, 基站控制器能够为终端 设备确定目标扇区并将终端设备切换到目标扇区。
本实施例以上述实施例一为基础, 进一步进行了优化, 图 3为本发明实 施例三所提供的信号测量方法的流程图。 本实施例的实施场景为: 为接入到 接力层信道中的 SDCCH上的终端设备指配扇区。参照图 3, 本实施例的方法 可以包括:
步骤 310、 接收终端设备发送的接入请求消息;
步骤 320、 根据接入请求消息, 发送立即指配消息给终端设备, 将终端 设备指配到 SDCCH上, 以使得终端设备在 SDCCH上接收或发送信号。 接力层信道包括独立专用控制信道 SDCCH, 目标超级小区为终端设备所 在的服务超级小区, 本步骤是将终端设备指配到接力层信道中的 SDCCH上。
步骤 330、 基站控制器发送消息通知基站测量终端设备在目标超级小区 下的待测量扇区内的上行信号, 终端设备在接力层信道上接收或发送信号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理信道上的上行信 号进行测量, 获得待测量扇区的上行测量结果, 并上报给基站控制器。
步骤 340、 基站控制器获取待测量扇区的上行测量结果。
步骤 350、 根据待测量扇区的上行测量结果, 为终端设备确定目标扇区。 根据上行测量结果, 从对终端设备使用的接力层信道进行上行测量的扇 区中确定优先级最高的扇区为目标扇区。
步骤 360、 为终端设备在目标扇区中分配信道, 并指配给终端设备。 如果基站控制器未确定到优先级最高的扇区, 则将终端设备先指配到接 力层信道中的业务信道上, 然后根据目标超级小区下的扇区对该业务信道进 行上行测量, 获取扇区对该业务信道进行上行测量的测量结果, 再根据测量 结果确定优先级最高的扇区为目标扇区。
本实施例提供的信号测量方法,通过接收终端设备发送的接入请求消息, 并根据接入请求消息, 发送立即指配消息给终端设备, 将终端设备指配到 SDCCH上, 以使得终端设备在 SDCCH上接收或发送信号, 使得基站能够测 量终端设备在目标超级小区下的待测量扇区内发送的上行信号, 获得上行测 量结果, 根据上行测量结果为为终端设备在目标扇区中分配信道。 从而实现 了在超级小区场景下, 基站控制器能够为终端设备在目标扇区中分配信道, 并把信道指配给终端设备。
本实施例以上述实施例一为基础, 进一步进行了优化, 图 4为本发明实 施例四所提供的信号测量方法的流程图。 本实施例的实施场景为: 为接入到 接力层信道中的 PRACH上的终端设备指配扇区。参照图 4, 本实施例的方法 可以包括:
步骤 410、 接收终端设备在 PRACH上发送的接入请求消息。
接力层信道包括物理随机接入信道 PRACH, 目标超级小区为终端设备所 驻留的超级小区。 步骤 420、 基站控制器发送消息通知基站测量终端设备在目标超级小区 下的待测量扇区内的上行信号, 终端设备在接力层信道上接收或发送信号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理信道上的上行信 号进行测量, 获得待测量扇区的上行测量结果, 并上报给基站控制器。
步骤 430、 基站控制器获取待测量扇区的上行测量结果。
步骤 440、 根据待测量扇区的上行测量结果, 为终端设备确定目标扇区。 根据上行测量结果, 从对终端设备使用的接力层信道进行上行测量的扇 区中确定优先级最高的扇区为目标扇区。
步骤 450、 为终端设备在目标扇区中分配信道, 并指配给终端设备。 如果基站控制器确定到了优先级最高的扇区为目标扇区, 则可以在目标 扇区中为终端设备分配目标扇区的 SDCCH信道或业务信道; 如果基站控制 器未确定到优先级最高的扇区, 则将终端设备立即指配到接力层信道中的业 务信道上或 SDCCH 上, 然后根据目标超级小区下的扇区对该业务信道或 SDCCH进行上行测量,获取扇区对该业务信道或 SDCCH进行上行测量的测 量结果, 再根据测量结果确定优先级最高的扇区为目标扇区。
本实施例提供的信号测量方法, 通过接收终端设备在 PRACH上发送的 接入请求消息, 使得基站能够测量终端设备在目标超级小区下的待测量扇区 内的发送的上行信号, 获得上行测量结果, 根据上行测量结果为为终端设备 在目标扇区中分配信道。 从而实现了在超级小区场景下, 基站控制器能够为 终端设备在目标扇区中分配信道, 并把信道指配给终端设备。
图 5为本发明实施例五所提供的信号测量方法的流程图。 本实施例的方 法适用于在超级小区场景下为终端设备确定目标扇区的情况。 本实施例的方 法包括如下步骤:
步骤 510、 基站接收基站控制器发送的消息。
步骤 520、 基站根据消息对待测量扇区内目标超级小区的接力层信道对 应的物理信道上的上行信号进行测量。
步骤 530、 基站向基站控制器上报基站对上行信号进行测量的上行测量 结果。
其中, 目标超级小区包括至少两个扇区, 至少两个扇区中包含至少一个 时频资源相同的物理信道, 每个接力层信道包括至少一个时频资源相同的物 理信道中的一个或多个。 消息包含接力层信道对应的时频资源的标识信息和 / 或终端设备的标识信息; 或者接力层信道对应的时频资源的标识信息和 /或终 端设备的标识信息, 以及待测量扇区的标识信息。
本实施例提供的信号测量方法, 通过基站接收基站控制器发送的消息, 根据消息对待测量扇区内接力层信道对应的物理信道上的上行信号进行测 量, 并向基站控制器上报对上行信号进行测量的上行测量结果。 从而实现了 在超级小区场景下, 可以向基站控制器上报上行测量结果, 从而使得基站控 制器为终端设备确定目标扇区, 对终端设备进行移动性管理以及为终端设备 指配扇区。
图 6为本发明实施例六所提供的信号测量装置的结构示意图。 本实施例 的装置适用于在超级小区场景下为终端设备确定目标扇区的的情况。 参照图 6, 该信号测量装置包括如下模块: 消息发送模块 610和上行测量结果获取模 块 620。
消息发送模块 610用于基站控制器发送消息通知基站测量终端设备在目 标超级小区下的待测量扇区内的上行信号, 终端设备在接力层信道上接收或 发送信号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理信道 上的上行信号进行测量, 获得待测量扇区的上行测量结果, 并上报给基站控 制器; 上行测量结果获取模块 620用于通过消息发送模块获取待测量扇区的 上行测量结果; 其中, 目标超级小区包括至少两个扇区, 至少两个扇区中包 含至少一个时频资源相同的物理信道, 每个接力层信道包括至少一个时频资 源相同的物理信道中的一个或多个。
本实施例提供的信号测量装置, 可用于执行图 1所示的方法实施例的技 术方案, 其实现原理与技术效果类似, 此处不再赘述。
图 7为本发明实施例七所提供的信号测量装置的结构示意图。 参照图 7, 在上述实施例六的基础上, 该信号测量装置还包括如下模块: 第一接力层信 道处理模块 710、 目标扇区确定模块 720和目标扇区切换模块 730。
第一接力层信道处理模块 710用于在基站控制器发送消息通知基站测量 终端设备在目标超级小区下的待测量扇区内的上行信号之前, 获取终端设备 上报的各个超级小区的下行信号测量结果; 根据各个超级小区的下行信号测 量结果, 在各个超级小区中确定目标超级小区; 将终端设备切换到接力层信 道上。 目标扇区确定模块 720用于在基站控制器获取待测量扇区的上行测量 结果之后, 根据上行测量结果获取模块获取的待测量扇区的上行测量结果, 为终端设备确定目标扇区; 目标扇区切换模块 730用于在为终端设备确定目 标扇区之后, 将终端设备切换到目标扇区确定模块确定的目标扇区。 其中, 目标超级小区为终端设备所在的服务超级小区的邻超级小区, 或者目标超级 小区为终端设备所在的服务超级小区。
本实施例提供的信号测量装置, 可用于执行图 2所示的方法实施例的技 术方案, 其实现原理与技术效果类似, 此处不再赘述。
图 8为本发明实施例八所提供的信号测量装置的结构示意图。 参照图 8, 在上述实施例六的基础上, 该信号测量装置还包括如下模块: 第二接力层信 道处理模块 810和目标扇区指配模块 820。
第二接力层信道处理模块 810用于在基站控制器发送消息通知基站测量 终端设备在目标超级小区下的待测量扇区内的上行信号之前, 接收终端设备 发送的接入请求消息; 根据接入请求消息, 发送立即指配消息给终端设备, 将终端设备指配到 SDCCH上,以使得终端设备在 SDCCH上接收或发送信号。 目标扇区指配模块 820用于在为终端设备确定目标扇区之后, 为终端设备在 目标扇区确定模块确定的目标扇区中分配信道, 并指配给终端设备。
本实施例提供的信号测量装置, 可用于执行图 3所示的方法实施例的技 术方案, 其实现原理与技术效果类似, 此处不再赘述。
图九为本发明实施例九所提供的信号测量装置的结构示意图。 参照图 9, 在上述实施例五的基础上, 该信号测量装置还包括如下模块: 第三接力层信 道处理模块 910和目标扇区指配模块 920。
第三接力层信道处理模块模块 910用于基站控制器发送消息通知基站测 量终端设备在目标超级小区下的待测量扇区内的上行信号之前, 接收终端设 备在 PRACH上发送的接入请求消息; 目标扇区指配模块 920用于在为终端 设备确定目标扇区之后, 为终端设备在目标扇区确定模块确定的目标扇区中 分配信道, 并指配给终端设备。
本实施例提供的信号测量装置, 可用于执行图 4所示的方法实施例的技 术方案, 其实现原理与技术效果类似, 此处不再赘述。
图 10为本发明实施例十所提供的信号测量装置的结构示意图。本实施例 的装置适用于在超级小区场景下为终端设备确定目标扇区的的情况。 参照图
10, 该信号测量装置包括如下模块: 消息接收模块 1010、 上行信号测量模块 1020和上行测量结果上报模块 1030。
消息接收模块 1010用于接收基站控制器发送的消息;上行信号测量模块 1020上行信号测量模块, 用于根据通过消息接收模块接收的消息对待测量扇 区内接力层信道对应的物理信道上的上行信号进行测量; 上行测量结果上报 模块 1030 用于向基站控制器上报通过上行信号测量模块对上行信号进行测 量的上行测量结果; 其中, 目标超级小区包括至少两个扇区, 至少两个扇区 中包含至少一个时频资源相同的物理信道, 接力层信道包括至少一个时频资 源相同的物理信道中的一个或多个。
本实施例提供的信号测量装置, 可用于执行图 5所示的方法实施例的技 术方案, 其实现原理与技术效果类似, 此处不再赘述。
图 11为本发明实施例十一所提供的基站控制器的结构示意图。本实施例 的基站控制器适用于在超级小区场景下为终端设备确定目标扇区的的情况。 参照图 11, 该基站控制器包括: 发送器 1110和处理器 1120。
发送器 1110 用于发送消息通知基站测量终端设备在目标超级小区下的 待测量扇区内的上行信号, 终端设备在目标超级小区的接力层信道上接收或 发送信号, 以使得基站根据消息对待测量扇区内接力层信道对应的物理信道 上的上行信号进行测量, 获得待测量扇区的上行测量结果, 并上报给基站控 制器; 处理器 1120用于通过消息发送模块获取待测量扇区的上行测量结果; 其中, 目标超级小区包括至少两个扇区, 至少两个扇区中包含至少一个时频 资源相同的物理信道, 接力层信道包括至少一个时频资源相同的物理信道中 的一个或多个。
进一步的,处理器 1120还用于在基站控制器获取待测量扇区的上行测量 结果之后, 根据上行测量结果获取模块获取的待测量扇区的上行测量结果, 为终端设备确定目标扇区。
进一步的, 处理器 1120还用于在为终端设备确定目标扇区之后, 将终端 设备切换到目标扇区确定模块确定的目标扇区。
进一步的,处理器 1120还用于在基站控制器发送消息通知基站测量终端 设备在目标超级小区下的待测量扇区内的上行信号之前, 获取终端设备上报 的各个超级小区的下行信号测量结果; 根据各个超级小区的下行信号测量结 果, 在各个超级小区中确定目标超级小区; 将终端设备切换到接力层信道上。
进一步的, 处理器 1120还用于在为终端设备确定目标扇区之后, 为终端 设备在目标扇区确定模块确定的目标扇区中分配信道, 并指配给终端设备。
进一步的,处理器 1120还用于在基站控制器发送消息通知基站测量终端 设备在目标超级小区下的待测量扇区内的上行信号之前, 接收终端设备发送 的接入请求消息; 根据接入请求消息, 发送立即指配消息给终端设备, 将终 端设备指配到 SDCCH上, 以使得终端设备在 SDCCH上接收或发送信号。
进一步的,处理器 1120还用于发送消息通知基站测量终端设备在目标超 级小区下的待测量扇区内的上行信号之前, 接收终端设备在 PRACH上发送 的接入请求消息; 根据 PRACH上发送的接入请求消息, 发送立即指配消息 给终端设备,将终端设备指配到 PRACH上, 以使得终端设备在 PRACH上接 收或发送信号。
进一步的, 处理器 1120还具体用于根据上行测量结果, 从对终端设备使 用的接力层信道进行上行测量的扇区中确定优先级最高的扇区为目标扇区。
本实施例提供的基站控制器, 通过发送消息通知基站测量终端设备在目 标超级小区下的待测量扇区内的上行信号, 以使得基站根据消息对待测量扇 区内接力层信道对应的物理信道上的上行信号进行测量, 获得待测量扇区的 上行测量结果, 并把上行测量结果上报给基站控制器。 从而实现了在超级小 区场景下, 基站控制器能够为终端设备确定目标扇区, 进而实现控制终端设 备进行扇区切换以及为终端设备指配扇区。
图 12为本发明实施例十二所提供的基站的结构示意图。本实施例的基站 适用于在超级小区场景下向基站控制器上报上行测量结果的情况。参照图 12, 该基站包括: 接收器 1210和处理器 1220。
接收器 1210用于接收基站控制器发送的消息; 处理器 1220用于根据通 过消息接收模块接收的所述消息对待测量扇区内接力层信道对应的物理信道 上的上行信号进行测量; 上行测量结果上报模块, 用于向所述基站控制器上 报通过所述上行信号测量模块对所述上行信号进行测量的上行测量结果; 其 中, 目标超级小区包括至少两个扇区, 至少两个扇区中包含至少一个时频资 源相同的物理信道, 接力层信道包括至少一个时频资源相同的物理信道中的 一个或多个。 消息包含接力层信道对应的时频资源的标识信息和 /或终端设备 的标识信息; 或者, 接力层信道对应的时频资源的标识信息和 /或终端设备的 标识信息, 以及待测量扇区的标识信息。
本实施例提供的基站, 通过接收基站控制器发送的消息, 根据消息对待 测量扇区内接力层信道对应的物理信道上的上行信号进行测量, 并向基站控 制器上报对上行信号进行测量的上行测量结果。 从而实现了在超级小区场景 下, 可以向基站控制器能够上报上行测量结果, 从而使得基站控制器为终端 设备确定目标扇区, 对终端设备进行移动性管理以及为终端设备指配扇区。
本领域普通技术人员可以理解: 实现上述各方法实施例的全部或部分步 骤可以通过程序指令相关的硬件来完成。 前述的程序可以存储于一计算机可 读取存储介质中。 该程序在执行时, 执行包括上述各方法实施例的步骤; 而 前述的存储介质包括: ROM、 RAM,磁碟或者光盘等各种可以存储程序代码 的介质。
最后应说明的是: 以上各实施例仅用以说明本发明的技术方案, 而非对 其限制; 尽管参照前述各实施例对本发明进行了详细的说明, 本领域的普通 技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改, 或者对其中部分或者全部技术特征进行等同替换; 而这些修改或者替换, 并 不使相应技术方案的本质脱离本发明各实施例技术方案的范围。

Claims

权利 要 求
1、 一种信号测量方法, 其特征在于, 包括:
基站控制器发送消息通知基站测量终端设备在目标超级小区下的待测量 扇区内的上行信号, 所述终端设备在所述目标超级小区的接力层信道上接收 或发送信号, 以使得所述基站根据所述消息对所述待测量扇区内所述接力层 信道对应的物理信道上的上行信号进行测量, 获得所述待测量扇区的上行测 量结果, 并上报给所述基站控制器;
所述基站控制器获取所述待测量扇区的上行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述接力层信道包括所述至少一个时频 资源相同的物理信道中的一个或多个。
2、 根据权利要求 1所述的方法, 其特征在于, 所述基站控制器获取所述 待测量扇区的上行测量结果之后, 还包括:
根据所述待测量扇区的所述上行测量结果, 为所述终端设备确定目标扇 区。
3、 根据权利要求 2所述的方法, 其特征在于, 在所述为所述终端设备确 定目标扇区之后, 还包括:
将所述终端设备切换到所述目标扇区。
4、 根据权利要求 1-3任一项所述的方法, 其特征在于, 在所述基站控制 器发送消息通知基站测量终端设备在目标超级小区下的待测量扇区内的上行 信号之前, 还包括:
获取所述终端设备上报的各个超级小区的下行信号测量结果;
根据所述各个超级小区的所述下行信号测量结果, 在所述各个超级小区 中确定所述目标超级小区;
将所述终端设备切换到所述接力层信道上。
5、 根据权利要求 1~4中任一项所述的方法, 其特征在于, 所述目标超级 小区为所述终端设备所在的服务超级小区的相邻超级小区;
或者,
所述目标超级小区为所述终端设备所在的服务超级小区。
6、 根据权利要求 2所述的方法, 其特征在于, 在所述为所述终端设备确 定目标扇区之后, 还包括:
为所述终端设备在所述目标扇区中分配信道, 并指配给所述终端设备。
7、 根据权利要求 6所述的方法, 其特征在于, 所述接力层信道包括独立 专用控制信道 SDCCH,所述目标超级小区为所述终端设备所在的服务超级小 区;
在所述基站控制器发送消息通知基站测量终端设备在目标超级小区下的 待测量扇区内的上行信号之前, 还包括:
接收所述终端设备发送的接入请求消息;
根据所述接入请求消息, 发送立即指配消息给所述终端设备, 将所述终 端设备指配到所述 SDCCH上,以使得所述终端设备在所述 SDCCH上接收或 发送信号。
8、 根据权利要求 6所述的方法, 其特征在于, 所述接力层信道包括物理 随机接入信道 PRACH, 所述目标超级小区为所述终端设备所驻留的超级小 区;
在所述基站控制器发送消息通知基站测量终端设备在目标超级小区下的 待测量扇区内的上行信号之前, 还包括:
接收所述终端设备在所述 PRACH上发送的接入请求消息;
9、 根据权利要求 1~8中任一项所述的方法, 其特征在于, 所述根据所述 测量结果, 为所述终端设备确定目标扇区, 包括:
根据所述上行测量结果, 从所述对所述终端设备使用的接力层信道进行 上行测量的扇区中确定优先级最高的扇区为目标扇区。
10、 根据权利要求 1~9中任一项所述的方法, 其特征在于, 所述消息包 含: 所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识信 息; 或者,
所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
11、 一种信号测量方法, 其特征在于, 包括:
基站接收基站控制器发送的消息;
所述基站根据所述消息对待测量扇区内目标超级小区的接力层信道对应 的物理信道上的上行信号进行测量; 所述基站向所述基站控制器上报所述基站对所述上行信号进行测量的上 行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述接力层信道包括所述至少一个时频 资源相同的物理信道中的一个或多个。
12、 根据权利要求 11所述的方法, 其特征在于, 所述消息包含: 所述接 力层信道对应的时频资源的标识信息和 /或所述终端设备的标识信息; 或者, 所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
13、 一种信号测量装置, 其特征在于, 包括:
消息发送模块, 用于基站控制器发送消息通知基站测量终端设备在目标 超级小区下的待测量扇区内的上行信号, 所述终端设备在所述目标超级小区 的接力层信道上接收或发送信号, 以使得所述基站根据所述消息对所述待测 量扇区内所述接力层信道对应的物理信道上的上行信号进行测量, 获得所述 待测量扇区的上行测量结果, 并上报给所述基站控制器;
上行测量结果获取模块, 用于通过所述消息发送模块获取所述待测量扇 区的上行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述每个接力层信道包括所述至少一个 时频资源相同的物理信道中的一个或多个。
14、 根据权利要求 13所述的装置, 其特征在于, 还包括:
目标扇区确定模块, 用于在所述基站控制器获取所述待测量扇区的上行 测量结果之后, 根据所述上行测量结果获取模块获取的所述待测量扇区的所 述上行测量结果, 为所述终端设备确定目标扇区。
15、 根据权利要求 14所述的装置, 其特征在于, 还包括:
目标扇区切换模块, 用于在所述为所述终端设备确定目标扇区之后, 将 所述终端设备切换到所述目标扇区确定模块确定的所述目标扇区。
16、 根据权利要求 13至 15中任一项所述的装置, 其特征在于, 还包括: 第一接力层信道处理模块, 用于在所述基站控制器发送消息通知基站测 量终端设备在目标超级小区下的待测量扇区内的上行信号之前, 获取所述终 端设备上报的各个超级小区的下行信号测量结果;
根据所述各个超级小区的所述下行信号测量结果, 在所述各个超级小区 中确定所述目标超级小区;
将所述终端设备切换到所述接力层信道上。
17、 根据权利要求 13~16中任一项所述的装置, 其特征在于, 所述目标 超级小区为所述终端设备所在的服务超级小区的相邻超级小区;
或者,
所述目标超级小区为所述终端设备所在的服务超级小区。
18、 根据权利要求 14所述的装置, 其特征在于, 还包括:
目标扇区指配模块, 用于在所述为所述终端设备确定目标扇区之后, 为 所述终端设备在所述目标扇区确定模块确定的目标扇区中分配信道, 并指配 给所述终端设备。
19、 根据权利要求 18所述的装置, 其特征在于, 还包括:
所述接力层信道包括独立专用控制信道 SDCCH,所述目标超级小区为所 述终端设备所在的服务超级小区;
第二接力层信道处理模块, 用于在所述基站控制器发送消息通知基站测 量终端设备在目标超级小区下的待测量扇区内的上行信号之前, 接收所述终 端设备发送的接入请求消息;
根据所述接入请求消息, 发送立即指配消息给所述终端设备, 将所述终 端设备指配到所述 SDCCH上,以使得所述终端设备在所述 SDCCH上接收或 发送信号。
20、 根据权利要求 18所述的装置, 其特征在于, 所述接力层信道包括物 理随机接入信道 PRACH,所述目标超级小区为所述终端设备所驻留的超级小 区;
第三接力层信道处理模块模块, 用于所述基站控制器发送消息通知基站 测量终端设备在目标超级小区下的待测量扇区内的上行信号之前, 接收所述 终端设备在所述 PRACH上发送的接入请求消息。
21、 根据权利要求 13~20中任一项所述的装置, 其特征在于, 所述目标 扇区确定模块, 具体用于根据所述上行测量结果, 从所述对所述终端设备使 用的接力层信道进行上行测量的扇区中确定优先级最高的扇区为目标扇区。
22、 根据权利要求 13~21中任一项所述的装置, 其特征在于, 所述消息 包含: 所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息; 或者,
所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
23、 一种信号测量装置, 其特征在于, 包括:
消息接收模块, 用于接收基站控制器发送的消息;
上行信号测量模块, 用于根据通过所述消息接收模块接收的所述消息对 待测量扇区内目标超级小区的接力层信道对应的物理信道上的上行信号进行 上行测量结果上报模块, 用于向所述基站控制器上报通过所述上行信号 测量模块对所述上行信号进行测量的上行测量结果;
其中, 所述目标超级小区包括至少两个扇区, 所述至少两个扇区中包含 至少一个时频资源相同的物理信道, 所述每个接力层信道包括所述至少一个 时频资源相同的物理信道中的一个或多个。
24、 根据权利要求 23所述的装置, 其特征在于, 所述消息包含: 所述接 力层信道对应的时频资源的标识信息和 /或所述终端设备的标识信息; 或者, 所述接力层信道对应的时频资源的标识信息和 /或所述终端设备的标识 信息, 以及所述待测量扇区的标识信息。
PCT/CN2013/078519 2013-06-29 2013-06-29 信号测量方法和装置 WO2014205852A1 (zh)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113892239A (zh) * 2019-06-03 2022-01-04 高通股份有限公司 带内无线中继操作

Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105704762A (zh) * 2014-11-26 2016-06-22 电信科学技术研究院 一种移动通信方法、设备及系统
CN107155200B (zh) * 2016-03-03 2020-07-28 华为技术有限公司 应用于超级小区的通信方法和装置
CN107205246B (zh) * 2016-03-18 2020-07-14 华为技术有限公司 一种用于超级小区间切换的方法和装置
CN111106865B (zh) * 2018-10-25 2021-12-14 华为技术有限公司 基于卫星网络的通信方法、装置及系统

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1268277A (zh) * 1997-06-24 2000-09-27 艾利森电话股份有限公司 蜂窝cdma系统的扇区化
CN101111076A (zh) * 2006-07-19 2008-01-23 日本电气株式会社 移交控制系统、移动通信系统及其移交控制方法
CN102342149A (zh) * 2009-03-02 2012-02-01 日本电气株式会社 移动通信系统的无线基站以及干扰均衡化方法
US20120163185A1 (en) * 2010-10-13 2012-06-28 Danlu Zhang Communicating between user equipment (ue) and independent serving sectors in a wireless communications system

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ATE480117T1 (de) * 2003-09-30 2010-09-15 Ericsson Telefon Ab L M System und verfahren zum melden von messungen in einem kommunikationssystem
US7280828B1 (en) * 2004-05-24 2007-10-09 Cingular Wireless Ii, Llc Service grant for GSM wireless networks based on signal strength

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1268277A (zh) * 1997-06-24 2000-09-27 艾利森电话股份有限公司 蜂窝cdma系统的扇区化
CN101111076A (zh) * 2006-07-19 2008-01-23 日本电气株式会社 移交控制系统、移动通信系统及其移交控制方法
CN102342149A (zh) * 2009-03-02 2012-02-01 日本电气株式会社 移动通信系统的无线基站以及干扰均衡化方法
US20120163185A1 (en) * 2010-10-13 2012-06-28 Danlu Zhang Communicating between user equipment (ue) and independent serving sectors in a wireless communications system

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP2884800A4 *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113892239A (zh) * 2019-06-03 2022-01-04 高通股份有限公司 带内无线中继操作
CN113892239B (zh) * 2019-06-03 2024-02-09 高通股份有限公司 带内无线中继操作

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