WO2014181481A1 - 通信システム、基地局、端末、及び制御方法 - Google Patents
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- 238000000034 method Methods 0.000 title claims description 61
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- H04W24/00—Supervisory, monitoring or testing arrangements
- H04W24/10—Scheduling measurement reports ; Arrangements for measurement reports
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W4/00—Services specially adapted for wireless communication networks; Facilities therefor
- H04W4/70—Services for machine-to-machine communication [M2M] or machine type communication [MTC]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/54—Allocation or scheduling criteria for wireless resources based on quality criteria
Definitions
- the present invention relates to a communication system, a base station, a terminal, and a control method.
- base station apparatus may be simply referred to as “base station”, and the terminal apparatus may be simply referred to as “terminal”.
- the terminal When performing D2D communication, the terminal performs a process of finding a terminal as a communication partner and a process of measuring the quality of a communication path between the terminals. For example, a technique has been proposed in which a new code capable of uniquely identifying a terminal is introduced so that terminals can discover each other.
- each terminal transmits a terminal identification code while changing resources (frequency and time) for mapping the terminal identification code according to a hopping pattern specified by the base station.
- the terminal cannot receive the terminal identification code transmitted from another terminal during the time when the terminal is transmitting the terminal identification code. For this reason, by changing the resource (frequency and time) for mapping the terminal identification code, the transmission times of the two terminals that have overlapped the transmission time of the terminal identification code at a certain point in time are prevented from overlapping. ing.
- the disclosed technology has been made in view of the above, and an object thereof is to provide a communication system, a base station, a terminal, and a control method capable of efficiently measuring the quality of a communication path between terminals.
- a terminal capable of directly communicating between terminals receives a report regarding a measurement signal from another terminal detected outside the transmission time of the terminal, and relates to a transmission time when the terminal transmits a measurement signal Transmitting first allocation information to the terminal, forming second allocation information using the report on the measurement signal detected by the terminal other than the transmission time indicated by the first allocation information, and forming the The second allocation information is transmitted to the terminal.
- the quality measurement of the communication path between terminals can be made efficient.
- FIG. 1 is a diagram illustrating an example of a communication system according to the first embodiment.
- FIG. 2 is a block diagram illustrating an example of the base station according to the first embodiment.
- FIG. 3 is a block diagram illustrating an example of the first terminal according to the first embodiment.
- FIG. 4 is a block diagram illustrating an example of the second terminal according to the first embodiment.
- FIG. 5 is a flowchart illustrating an example of a processing operation of the base station according to the first embodiment.
- FIG. 6 is a diagram illustrating an example of a processing operation of the communication system according to the first embodiment.
- FIG. 7 is a diagram for explaining an example of formation of a measurement instruction, transmission of a measurement signal based on the measurement instruction, and measurement.
- FIG. 1 is a diagram illustrating an example of a communication system according to the first embodiment.
- FIG. 2 is a block diagram illustrating an example of the base station according to the first embodiment.
- FIG. 3 is a block diagram illustrating an example of the first
- FIG. 8 is a diagram for explaining an example of formation of a measurement instruction, transmission of a measurement signal based on the measurement instruction, and measurement.
- FIG. 9 is a flowchart illustrating an example of a processing operation of the base station according to the second embodiment.
- FIG. 10 is a diagram illustrating an example of a processing operation of the communication system according to the second embodiment.
- FIG. 11 is a diagram illustrating an example of a communication system according to the third embodiment.
- FIG. 12 is a block diagram illustrating an example of the first terminal according to the third embodiment.
- FIG. 13 is a block diagram illustrating an example of the second terminal according to the third embodiment.
- FIG. 14 is a diagram for explaining an example of a processing operation of the communication system according to the third embodiment.
- FIG. 15 is a diagram for explaining an example of the processing operation of the communication system according to the third embodiment.
- FIG. 16 is a block diagram illustrating an example of the first terminal according to the fourth embodiment.
- FIG. 17 is a diagram illustrating an example of a measurement signal according to the fourth embodiment.
- FIG. 18 is a block diagram illustrating an example of the second terminal according to the fourth embodiment.
- FIG. 19 is a diagram illustrating a hardware configuration example of a terminal.
- FIG. 20 is a diagram illustrating a hardware configuration example of the base station.
- FIG. 1 is a diagram illustrating an example of a communication system according to the first embodiment.
- the communication system 1 includes terminals 10-1, 2, 3, 4, terminals 40-1, 2, 3, and a base station 50.
- a cell C50 is defined by a range area of the base station 50 and a first channel frequency.
- the terminals 10-1, 2, 3, and 4 are terminals capable of D2D communication, and the terminals 40-1, 2, and 3 are terminals that do not perform D2D communication.
- the terminals 10-1, 2, 3, and 4 may be collectively referred to as the terminal 10 unless otherwise distinguished.
- the terminals 40-1, 2, 3 may be collectively referred to as the terminal 40.
- the number of the terminal 10, the terminal 40, and the base station 50 which were shown in FIG. 1 is an example, and is not limited to this.
- the base station 50 may be, for example, a macro base station, or a base station, a femto base station, or a small base station using an overhang base station (RRH: Radio Remote Header) in the LTE system. There may be.
- RRH Radio Remote Header
- the terminal 10 transmits cell identification information (for example, PCI: Physical Cell Identification) of the base station 50 and terminal identification information (for example, a wireless network temporary identifier (RNTI: Radio) that is assigned from the base station 50.
- a measurement signal is transmitted based on a transmission time and a “measurement signal” that are uniquely determined based on Network Temporary ID)). That is, in the “first processing section”, the terminal 10 autonomously specifies the transmission time and the measurement signal, and transmits the measurement signal specified at the specified transmission time.
- the “measurement signal” is a signal used to measure the quality measurement of the communication path between terminals between one terminal 10 and another terminal 10.
- the measurement signal may be set based on information other than the PCI or RNTI.
- the measurement signal may be set based on numerical information randomly selected for each terminal.
- the terminal 10 performs a process of detecting a measurement signal transmitted from another terminal 10 at a time other than its own transmission time in the first processing section. Then, the terminal 10 transmits (reports) information related to the measurement signal detected in the first processing interval (that is, a measurement report) to the base station 50. Note that the base station 50 transmits (notifies) the terminal 10 information (that is, a measurement start instruction) regarding the timing at which the terminal 10 starts transmission and detection of the measurement signal, that is, the start timing of the first processing interval. Also good.
- the base station 50 When the base station 50 receives the report of the detection result in the first processing interval from the terminal 10, the base station 50 assigns a transmission pattern of the measurement signal in the “second processing interval” to each terminal 10.
- a transmission pattern of a transmission signal is a pattern defined by a combination of a transmission time and a code sequence used as a measurement signal, for example.
- the base station 50 assigns a transmission pattern so that the terminal 10 corresponding to the inter-terminal communication path that is not measured in the first processing interval transmits the measurement signal. Then, the base station 50 transmits allocation information (that is, a measurement instruction) indicating the transmission pattern of each terminal 10 to each terminal 10.
- the terminal 10 transmits a measurement signal in the “first measurement unit section” in the second processing section based on the allocation information received from the base station 50. Further, the terminal 10 performs a process of detecting a measurement signal transmitted from another terminal 10 at a time other than its own transmission time in the first measurement unit section. Then, the terminal 10 transmits (reports) information related to the measurement signal detected in the first measurement unit section to the base station 50.
- the base station 50 When the base station 50 receives the report of the detection result in the first measurement unit section from the terminal 10, the transmission pattern of the measurement signal in the second measurement unit section in the second processing section is transmitted to each terminal 10. Assign.
- the base station 50 assigns a transmission pattern so that the terminal 10 corresponding to the inter-terminal communication path that is not measured in the first processing interval and the first measurement unit interval transmits the measurement signal. Then, the base station 50 transmits allocation information indicating the transmission pattern of each terminal 10 to each terminal 10. The transmission pattern assignment by the base station 50 and the detection result report by the terminal 10 are performed until the detection of all the inter-terminal communication paths between the terminals 10 in the cell C50 is completed. That is, the second processing section basically includes a plurality of measurement unit sections.
- the base station 50 controls the terminal 40 to transmit the measurement signal in the “third processing interval”. Based on this measurement signal, the terminal 10 detects the interference level.
- the base station 50 controls the transmission of the measurement signal by the terminal 10 based on the allocation information, so that the quality measurement of the inter-terminal communication path between the terminals 10 performing D2D communication can be made efficient.
- FIG. 2 is a block diagram illustrating an example of the base station according to the first embodiment.
- the base station 50 includes a radio unit 51, a reception processing unit 52, a control unit 53, and a transmission processing unit 54.
- the radio unit 51 includes a reception radio unit 55 and a transmission radio unit 68.
- the reception processing unit 52 includes an FFT unit 56, a demodulation unit 57, a decoding unit 58, and a separation unit 59.
- the control unit 53 includes a radio resource control (RRC) unit 60 and a MAC control unit 61.
- the transmission processing unit 54 includes a packet generation unit 62, a MAC scheduling unit 63, an encoding unit 64, a modulation unit 65, a multiplexing unit 66, and an IFFT unit 67.
- the reception radio unit 55 performs predetermined reception radio processing, that is, down-conversion, analog-digital conversion, and the like on the reception signal received via the antenna, and outputs the reception signal after the reception radio processing to the FFT unit 56.
- the FFT unit 56 performs a fast Fourier transform process on the received signal received from the reception radio unit 55 and outputs the received signal after the fast Fourier transform process to the demodulation unit 57.
- the demodulator 57 demodulates the received signal received from the FFT unit 56 and outputs the demodulated received signal to the decoder 58.
- the decoding unit 58 decodes the reception signal received from the demodulation unit 57 and outputs the decoded reception signal to the separation unit 59.
- Separating section 59 extracts control information and received data from the received signal received from decoding section 58, outputs the extracted control information to radio resource control section 60, and outputs the extracted received data to the upper layer function section.
- the control information output to the radio resource control unit 60 may include the above measurement report transmitted from the terminal 10.
- the radio resource control unit 60 forms radio resource control information (that is, RRC (Radio Resource Control) control information), and outputs the formed radio resource control information to the packet generation unit 62.
- RRC Radio Resource Control
- the radio resource control unit 60 forms radio resource control information including the radio network temporary identifier assigned to the terminal 10, and outputs the formed radio resource control information to the packet generation unit 62.
- the radio resource control unit 60 forms the radio resource control information including the measurement start instruction before starting the first processing section, and outputs the formed radio resource control information to the packet generation unit 62.
- the radio resource control unit 60 forms radio resource control information based on the control information received from the separation unit 59, and outputs the formed radio resource control information to the packet generation unit 62. For example, when the radio resource control unit 60 receives a measurement report in the second processing interval, the radio resource control unit 60 identifies an inter-terminal communication path that has not been measured based on the measurement report, and the terminal 10 corresponding to the identified terminal communication path The allocation information (that is, the measurement instruction) for is formed. Then, the radio resource control unit 60 forms radio resource control information including the formed measurement instruction, and outputs the formed radio resource control information to the packet generation unit 62.
- the radio resource control unit 60 determines whether or not quality measurement has been completed for all the inter-terminal communication paths. When it is determined that the processing is completed, that is, when it is determined that the second processing section is ended, a completion notification is output to the MAC control unit 61.
- the MAC control unit 61 allocates resources used for communication between the own station and the terminal 10. This resource is defined by, for example, time and frequency. Then, the MAC control unit 61 outputs individual control information including information on the allocated resource (hereinafter sometimes referred to as “allocated resource”) to the MAC scheduling unit 63 and the multiplexing unit 66.
- the MAC control unit 61 when receiving a completion notification from the radio resource control unit 60, the MAC control unit 61 outputs, to the multiplexing unit 66, individual control information including a measurement signal transmission instruction that instructs the terminal 40 to transmit a measurement signal. .
- the packet generation unit 62 receives transmission data addressed to the terminal 10 or the terminal 40, that is, user data, and radio resource control information addressed to the terminal 10 from the radio resource control unit 60, and receives the received user data and radio resource control information. To generate a transmission packet. Then, the packet generation unit 62 outputs the generated transmission packet to the MAC scheduling unit 63.
- the MAC scheduling unit 63 sends the packet addressed to the terminal 10 or the terminal 40 received from the packet generation unit 62 to the encoding unit 64 at a timing corresponding to the time allocated to the terminal 10 or the terminal 40 by the MAC control unit 61. Output. Note that the MAC scheduling unit 63 may divide the packet into data units having a predetermined data size and output the data units to the encoding unit 64.
- the encoding unit 64 performs an encoding process on the packet received from the MAC scheduling unit 63, and outputs the encoded packet to the modulation unit 65.
- the modulation unit 65 modulates the encoded packet received from the encoding unit 64 and outputs the modulated packet to the multiplexing unit 66.
- the multiplexing unit 66 maps and multiplexes the input signal to a predetermined resource, and outputs the multiplexed signal to the IFFT unit 67.
- the multiplexing unit 66 receives the individual control information from the MAC control unit 61 and maps it to the resource area assigned to the downlink control channel (for example, PDCCH: Physical Downlink Control Channel).
- PDCCH Physical Downlink Control Channel
- the multiplexing unit 66 receives the packet from the modulation unit 65 and maps it to the downlink allocated resource indicated by the individual control information.
- the multiplexing unit 66 also has a common reference signal (CRS) common to the cell C50, a reference signal for channel state measurement (CSI-RS: Channel State Information-Reference Signal), and a synchronization signal (PSS: Primary Synchronization). Signal, SSS: Secondary Synchronization (Signal) is received. Then, the multiplexing unit 66 maps the common reference signal, the channel state measurement reference signal, and the synchronization signal to predetermined resources.
- CRS common reference signal
- CSI-RS Channel State Information-Reference Signal
- PSS Primary Synchronization
- Signal, SSS Secondary Synchronization (Signal) is received. Then, the multiplexing unit 66 maps the common reference signal, the channel state measurement reference signal, and the synchronization signal to predetermined resources.
- the IFFT unit 67 performs an inverse fast Fourier transform process on the multiplexed signal received from the multiplexing unit 66 to form an OFDM (Orthogonal Frequency Division Multiplexing) signal, and outputs the formed OFDM signal to the transmission radio unit 68 To do.
- the IFFT unit 67 may perform a process of adding a CP (Cyclic Prefix) for each symbol.
- the transmission radio unit 68 performs predetermined transmission radio processing on the OFDM signal received from the IFFT unit 67, that is, digital-analog conversion, up-conversion, and the like to form a radio signal, and transmits the formed radio signal via the antenna. .
- FIG. 3 is a block diagram illustrating an example of the first terminal according to the first embodiment.
- the terminal 10 includes a wireless unit 11, a reception processing unit 12, a control unit 13, a data processing unit 14, and a transmission processing unit 15.
- the radio unit 11 includes a reception radio unit 16 and a transmission radio unit 31.
- the reception processing unit 12 includes an FFT unit 17, a demodulation unit 18, a decoding unit 19, and a control channel demodulation unit 20.
- the control unit 13 includes a cell search unit 21, a control information processing unit 22, a measurement signal detection unit 23, and a measurement signal generation unit 24.
- the transmission processing unit 15 includes a multiplexing unit 25, a symbol mapping unit 26, a multiplexing unit 27, an FFT unit 28, a frequency mapping unit 29, and an IFFT unit 30.
- the reception radio unit 16 performs predetermined reception radio processing, that is, down-conversion, analog-digital conversion, and the like on the reception signal received via the antenna, and the received signal after reception radio processing is processed by the FFT unit 17 and the cell search unit 21. Output to.
- the cell search unit 21 specifies a cell ID (for example, PCI: Physical Cell Identification) corresponding to the synchronization signal based on the synchronization signal included in the reception signal after the reception radio processing. That is, the cell search unit 21 specifies the cell ID of the cell C50 in which the own station is located. Then, the cell search unit 21 outputs the specified cell ID to the control information processing unit 22.
- a cell ID for example, PCI: Physical Cell Identification
- the FFT unit 17 performs a fast Fourier transform process on the received signal after the reception radio process, and outputs the received signal after the fast Fourier transform process to the demodulation unit 18, the control channel demodulation unit 20, and the measurement signal detection unit 23. .
- the demodulator 18 receives the resource allocation information from the control channel demodulator 20, demodulates the signal mapped to the resource corresponding to the resource allocation information among the received signals received from the FFT unit 17, and outputs the demodulated received signal Output to the decoding unit 19.
- the decoding unit 19 receives the resource allocation information from the control channel demodulation unit 20, decodes the signal mapped to the resource corresponding to the resource allocation information among the reception signals received from the demodulation unit 18, and outputs the obtained reception data To do.
- the control channel demodulator 20 receives the wireless network temporary identifier from the control information processor 22, and in the portion of the received signal received from the FFT unit 17 that corresponds to the search space of the PDCCH region indicated by the RNTI, Search for. Then, when the resource allocation information destined for the own station is found, the control channel demodulator 20 outputs the resource allocation information to the demodulator 18 and the decoder 19.
- the measurement signal detection unit 23 performs a detection process on the measurement signal transmitted from another terminal 10 or 40 other than the transmission time of the own station, and outputs the detection result to the control information processing unit 22.
- the control information processing unit 22 extracts the RNTI transmitted from the base station 50 from the reception data output from the decoding unit 19, and outputs the extracted RNTI to the control channel demodulation unit 20.
- the control information processing unit 22 specifies the transmission time and measurement signal of the own station based on the PCI of the base station 50 and the wireless network temporary identifier.
- the control information processing unit 22 causes the measurement signal generation unit 24 to generate the specified measurement signal and output the measurement signal at the specified transmission time.
- the control information processing unit 22 forms a measurement report in the first processing section, and outputs the formed measurement report to the multiplexing unit 25. Details of the measurement signal will be described later in detail.
- control information processing unit 22 causes the measurement signal generation unit 24 to generate a measurement signal indicated by the measurement instruction included in the received data, and the transmission time indicated by the measurement instruction. To output a measurement signal.
- control information processing unit 22 forms a measurement report in the second processing section, and outputs the formed measurement report to the multiplexing unit 25. This measurement report is formed for each measurement unit section and transmitted to the base station 50.
- control information processing unit 22 forms a measurement report for the measurement signal of the terminal 40 detected by the measurement signal detection unit 23, and outputs the formed measurement report to the multiplexing unit 25. To do.
- the data processing unit 14 outputs user data to the multiplexing unit 25.
- the multiplexing unit 25 forms a multiplexed signal by mapping user data received from the data processing unit 14 and various types of information received from the control information processing unit 22 to predetermined resources, and outputs the formed multiplexed signal to the symbol mapping unit 26. .
- the symbol mapping unit 26 maps the multiplexed signal received from the multiplexing unit 25 to a symbol, and outputs the obtained modulated signal to the multiplexing unit 27.
- the multiplexing unit 27 multiplexes the modulation signal received from the symbol mapping unit 26 and the pilot signal, and outputs the multiplexed signal to the FFT unit 28.
- the FFT unit 28 performs a fast Fourier transform process on the multiplexed signal received from the multiplexing unit 27 and outputs the multiplexed signal after the fast Fourier transform process to the frequency mapping unit 29.
- the frequency mapping unit 29 maps the multiplexed signal received from the FFT unit 28 to a predetermined frequency, and outputs the obtained transmission signal to the IFFT unit 30.
- the IFFT unit 30 performs an inverse fast Fourier transform process on the transmission signal received from the frequency mapping unit 29 to form an OFDM signal, and outputs the formed OFDM signal to the transmission radio unit 31.
- the transmission radio unit 31 performs predetermined transmission radio processing on the OFDM signal received from the IFFT unit 30, that is, digital-analog conversion, up-conversion, and the like to form a radio signal, and transmits the formed radio signal via the antenna. .
- FIG. 4 is a block diagram illustrating an example of the second terminal according to the first embodiment.
- the terminal 40 includes a wireless unit 41, a reception processing unit 42, a control unit 43, a data processing unit 44, and a transmission processing unit 45.
- the basic configuration of the terminal 40 is the same as that of the terminal 10. That is, the wireless unit 41 corresponds to the wireless unit 11, and the reception processing unit 42 corresponds to the reception processing unit 12.
- the control unit 43 corresponds to the control unit 13, and the data processing unit 44 corresponds to the data processing unit 14.
- the transmission processing unit 45 corresponds to the transmission processing unit 15.
- the terminal 40 since the terminal 40 is a terminal that does not perform D2D communication, the terminal 40 does not execute processing in the first processing section and the second processing section.
- the control unit 43 in the terminal 40 when receiving a measurement signal transmission instruction from the base station 50 in the third processing section, the control unit 43 in the terminal 40 outputs a measurement transmission signal to the transmission processing unit 45 at a transmission time corresponding to the instruction. As a result, a measurement signal is transmitted from the terminal 40. This measurement signal is used to measure the interference level from the terminal 40 to the terminal 10.
- FIG. 5 is a flowchart illustrating an example of a processing operation of the base station according to the first embodiment.
- FIG. 6 is a diagram illustrating an example of a processing operation of the communication system according to the first embodiment.
- the radio resource control unit 60 forms radio resource control information including a measurement start instruction, and transmits the formed radio resource control information to the terminal 10 (step S101).
- the terminal 10 When the terminal 10 receives the radio resource control information including the measurement start instruction, the terminal 10 starts processing in the first processing section. First, the terminal 10 transmits the measurement signal according to the measurement signal transmission rule. For example, the terminal 10, based on the PCI of the cell C 50 and the RNTI assigned to the terminal 10, the ZC (Zadoff-Chu) sequence number and cyclic shift amount, which are measurement signals transmitted by the terminal 10, and the terminal 10 specifies a subframe pattern in which a measurement signal is transmitted.
- This ZC sequence is the same as the ZC sequence used by the terminal 40 as a RACH (Random Access Preamble) preamble. That is, terminal 10 uses a code sequence of the same type as the code sequence used in the RACH preamble as a measurement signal.
- the terminal 10 specifies a transmission subframe pattern corresponding to a bit string including the first bit to the ninth bit of the RNTI.
- the number N of subframes in which any of the terminals 10 transmits measurement signals in the first processing interval is twelve, and the number M of subframes in which one terminal 10 transmits the measurement signals in the first processing interval is When the number is set to 4, the number K of transmission subframe patterns is 495. Therefore, a 9-bit bit string can represent all of the transmission subframe patterns.
- the hatched frame in the first processing interval is a transmission frame including a transmission subframe, and among the ten subframes in each transmission frame, the second subframe is a transmission subframe. It is.
- the terminal 10 transmits the measurement signal with the measurement signal and the transmission subframe specified based on the PCI of the cell C50 and the RNTI assigned to the terminal 10. Further, the terminal 10 detects a measurement signal transmitted from another terminal 10 at a timing at which the terminal 10 does not transmit the measurement signal.
- the terminal 10 transmits (reports) information on the measurement signal detected in the first processing interval to the base station 50 as a measurement report, and the base station 50 receives the measurement report in the first processing interval (step S102). ).
- the terminal 10 autonomously specifies the measurement signal and the transmission subframe based on the PCI of the cell C50 and the RNTI assigned to the terminal 10, and specifies the specified measurement. Signal is transmitted in a transmission subframe. Thereby, the process which allocates the signal for a measurement and a transmission sub-frame with respect to the terminal 10 by the base station 50 is omissible.
- the ZC sequence used by the terminal 10 is determined by PCI, it is possible to prevent the same ZC sequence from being used between adjacent cells.
- the terminal 10 can specify the ZC sequence transmitted by the other terminal 10 located in the cell C50 based on the PCI of the cell C50. Thereby, the process in which the base station 50 notifies the terminal 10 of the detection target ZC sequence can be omitted.
- the radio resource control unit 60 when receiving the measurement report of the first processing section from the terminal 10, the radio resource control unit 60 identifies the inter-terminal communication path that has not been measured based on the measurement report, and identifies the identified inter-terminal communication. Allocation information (that is, a measurement instruction) for the terminal 10 corresponding to the road is formed (step S103).
- the radio resource control unit 60 transmits a measurement instruction to the terminal 10 corresponding to the measurement instruction (step S104).
- This measurement instruction is a measurement instruction for the first measurement unit section.
- the control information processing unit 22 causes the measurement signal generation unit 24 to generate a measurement signal indicated by the measurement instruction and indicates the measurement instruction in the first measurement unit section.
- the measurement signal is transmitted at the transmission time.
- the measurement signal detection unit 23 performs a detection process on the measurement signal transmitted from the other terminal 10 or the terminal 40 in addition to the transmission time of the own station in the first measurement unit section, and the detection result Is output to the control information processing unit 22. Then, the control information processing unit 22 forms a measurement report in the first measurement unit section, and transmits the formed measurement report to the base station 50.
- wireless resource control part 60 receives the measurement report about the 1st measurement unit area (step S105).
- the radio resource control unit 60 determines whether or not the measurement for all the inter-terminal communication paths between the terminals 10 in the cell C50 has been completed (step S106).
- the radio resource control unit 60 forms a measurement instruction in the second measurement unit section (Step S103).
- the radio resource control unit 60 assigns a transmission pattern so that the terminal 10 corresponding to the inter-terminal communication path that is not measured in the first processing section and the first measurement unit section transmits the measurement signal.
- the transmission pattern assignment by the base station 50 and the detection result report by the terminal 10 are performed until the detection of all the inter-terminal communication paths between the terminals 10 in the cell C50 is completed. That is, the processing from step S103 to step S106 is repeated until the detection of all the inter-terminal communication paths between the terminals 10 in the cell C50 is completed.
- FIGS. 7 and 8 are diagrams for explaining an example of formation of a measurement instruction, transmission of a measurement signal based on the measurement instruction, and measurement.
- the base station 50 forms a measurement instruction to cause the UE 1-3 to transmit a measurement signal in the first measurement unit section (described as the first time in the figure). Then, the base station 50 transmits a measurement instruction to the UE1-3. Then, as shown in FIG. 8, the UE 1-3 that has received the measurement instruction transmits a measurement signal in the first measurement unit section (described as the first time in the figure), and the UE 4-6 receives the UE 1-3 The measurement signal transmitted from is detected.
- the UE 4-6 transmits a measurement report in the first measurement unit section to the base station 50.
- the measurable links that is, measurable inter-terminal communication paths
- the measurable links are E 1,4 , E 1,5 , E 1,6 , E 2,4 , E 2,5 , E 2,6 , E 3,4 , E 3,5 and E 3,6 .
- E 1 , 4 means an inter-terminal communication path between UE1 and UE4.
- the base station 50 forms a measurement instruction that causes the UEs 1 and 4 to transmit a measurement signal in the second measurement unit section (described as the second time in the figure). Then, the base station 50 transmits a measurement instruction to the UEs 1 and 4. Then, as shown in FIG. 8, the UEs 1 and 4 that have received the measurement instruction transmit measurement signals in the second measurement unit section (described as the second time in the figure), and the UEs 2, 3, 5, and 6 , The measurement signals transmitted from the UE1 and UE4 are detected. Then, the UEs 2, 3, 5, and 6 transmit the measurement report in the second measurement unit section to the base station 50.
- new measurable links in the second measurement unit section that is, measurable inter-terminal communication paths
- the base station 50 forms a measurement instruction for causing the UEs 2 and 5 to transmit a measurement signal in the third measurement unit section (described as the third time in the figure). Then, the base station 50 transmits a measurement instruction to the UEs 2 and 5. Then, as shown in FIG. 8, the UEs 2 and 5 that have received the measurement instruction transmit measurement signals in the third measurement unit section (denoted as the third time in the figure), and the UEs 3 and 6 receive the UEs 2 and 5. The measurement signal transmitted from is detected. Then, the UEs 2 and 5 transmit the measurement report in the second measurement unit section to the base station 50.
- two new measurable links that is, measurable inter-terminal communication paths
- E 2,3 and E 5,6 two new measurable links in the third measurement unit section.
- the third processing section starts. That is, in the base station 50, the MAC control unit 61 transmits individual control information including a measurement signal transmission instruction that instructs the terminal 40 to transmit a measurement signal (step S107).
- the control unit 43 in the terminal 40 causes the measurement transmission signal to be transmitted at the transmission time corresponding to the instruction.
- the control information processing unit 22 forms a measurement report on the measurement signal of the terminal 40 detected by the measurement signal detection unit 23 in the third processing section, and the formed measurement report is sent to the base station 50. Send (report).
- the base station 50 receives the measurement report in the third processing section transmitted from the terminal 10 (step S108).
- the base station 50 may notify the terminal 10 of the measurement period T1, the measurement duration T2, and the measurement cycle T3 in FIG.
- the base station 50 may determine T1, T2, and T3 based on, for example, the number of terminals 10, inter-cell cooperation results, and the like. Thereby, the terminal 10 can autonomously repeat the set from the first processing section to the third processing section.
- T2 does not need to be specified because it may change.
- the measurement period T1 is a unit section for performing measurement and reporting in the second processing section.
- the measurement duration T2 is a period from the first processing section to the third processing section.
- the measurement cycle T3 is a cycle in which the set from the first processing section to the third processing section is repeated.
- the transmission processing unit 15 performs cell identification information (that is, PCI) of the base station 50 and terminal identification information allocated from the base station 50 according to control by the control unit 13.
- a measurement signal that is uniquely determined based on (that is, RNTI) is transmitted in the first processing interval.
- the measurement signal detection unit 23 detects a measurement signal transmitted from another terminal 10 other than the transmission time of the terminal 10 in the first processing section.
- the transmission processing unit 15 reports information about the measurement signal detected by the measurement signal detection unit 23 to the base station 50.
- the terminal 10 can autonomously identify the measurement signal and the transmission subframe, and transmit the identified measurement signal in the transmission subframe. Thereby, the process which allocates the signal for a measurement and a transmission sub-frame with respect to the terminal 10 by the base station 50 can be abbreviate
- the measurement signal transmitted from the terminal 10 can be determined by the cell identification information by the configuration of the terminal 10, it is possible to prevent the same measurement signal from being used between adjacent cells.
- the configuration of the terminal 10 enables the terminal 10 to specify a measurement signal transmitted by another terminal 10 located in the same cell. Thereby, the process in which the base station 50 notifies the terminal 10 of the measurement signal to be detected can be omitted, and the load on the base station 50 can be reduced and the signaling can be reduced.
- information related to the measurement signal detected in the first processing section can be reported to the base station 50, so that the time until the second processing section is completed can be shortened.
- the reception processing unit 12 receives the allocation information (that is, the transmission instruction) transmitted from the base station 50. Then, in the first measurement unit interval of the second processing interval, the measurement signal detector 23 detects the measurement signal transmitted by another terminal 10 other than the transmission time indicated by the received allocation information. Then, the transmission processing unit 15 reports information about the measurement signal detected by the measurement signal detection unit 23 to the base station 50.
- the allocation information that is, the transmission instruction
- the configuration of the terminal 10 can report the measurement result in the first measurement unit section to the base station 50.
- the reception processing unit 52 receives a report regarding a measurement signal from another terminal 10 detected by the terminal 10 in the first measurement unit section of the second processing section. Then, the control unit 53 forms allocation information (that is, a measurement instruction) in the second measurement unit section based on the received report, and causes the transmission processing unit 54 to transmit the allocation information.
- allocation information that is, a measurement instruction
- the configuration of the base station 50 makes it possible to appropriately control the terminal 10 that transmits the measurement signal and the terminal 10 that detects the measurement signal in the second measurement unit section. As a result, the quality measurement of the communication path between terminals can be made efficient.
- control unit 53 causes the transmission processing unit 54 to transmit an instruction to cause the terminal 40 to transmit a measurement signal in the third processing section.
- the measurement signal transmitted by the terminal 40 is the same type as the measurement signal transmitted by the terminal 10.
- the terminal 10 can measure the interference level of the terminal 40.
- the base station 50 determines the interference level that the signal transmitted from the terminal 10 gives to the signal transmitted from the terminal 40. Can be measured.
- Example 2 In the first embodiment, a first processing period in which the terminal 10 transmits and measures a measurement signal is provided.
- the second embodiment is an embodiment in which the first processing section is not provided. Since the basic configurations of the base station and the terminal according to the second embodiment are basically the same as the base station 50 and the terminals 10 and 40 according to the first embodiment, they will be described with reference to FIGS.
- FIG. 9 is a flowchart illustrating an example of the processing operation of the base station according to the second embodiment.
- FIG. 10 is a diagram illustrating an example of a processing operation of the communication system according to the second embodiment.
- the radio resource control unit 60 forms allocation information (that is, a measurement instruction) for the terminal 10 in the first measurement unit period (step S201).
- the radio resource control unit 60 transmits a measurement instruction to the terminal 10 corresponding to the measurement instruction (step S202).
- the control information processing unit 22 causes the measurement signal generation unit 24 to generate a measurement signal indicated by the measurement instruction and indicates the measurement instruction in the first measurement unit section.
- the measurement signal is transmitted at the transmission time.
- the frame hatched in the second processing interval is a transmission frame including a transmission subframe
- the second subframe is a transmission subframe among the ten subframes in each transmission frame. It is.
- the measurement signal generation unit 24 performs a detection process on the measurement signal transmitted from the other terminal 10 or the terminal 40 in addition to the transmission time of the own station in the first measurement unit section, and the detection result Is output to the control information processing unit 22. Then, the control information processing unit 22 forms a measurement report in the first measurement unit section, and transmits the formed measurement report to the base station 50.
- wireless resource control part 60 receives the measurement report about the 1st measurement unit area (step S203).
- the radio resource control unit 60 determines whether or not the measurement for all the inter-terminal communication paths between the terminals 10 in the cell C50 has been completed (step S204).
- the radio resource control unit 60 forms a measurement instruction in the second measurement unit section (Step S201).
- the radio resource control unit 60 assigns a transmission pattern so that the terminal 10 corresponding to the inter-terminal communication path that is not measured in the first processing section and the first measurement unit section transmits the measurement signal.
- the transmission pattern assignment by the base station 50 and the detection result report by the terminal 10 are performed until the detection of all the inter-terminal communication paths between the terminals 10 in the cell C50 is completed. That is, the processing from step S201 to step S204 is repeated until the detection of all the inter-terminal communication paths between the terminals 10 in the cell C50 is completed.
- the third processing section starts. That is, in the base station 50, the MAC control unit 61 transmits individual control information including a measurement signal transmission instruction that instructs the terminal 40 to transmit a measurement signal (step S205).
- the control unit 43 in the terminal 40 causes the measurement transmission signal to be transmitted at the transmission time corresponding to the instruction.
- the control information processing unit 22 forms a measurement report on the measurement signal of the terminal 40 detected by the measurement signal detection unit 23 in the third processing section, and the formed measurement report is sent to the base station 50. Send (report).
- the base station 50 receives the measurement report in the third processing section transmitted from the terminal 10 (step S206).
- the reception processing unit 12 in the terminal 10 receives the allocation information (that is, the transmission instruction) transmitted from the base station 50. Then, in the first measurement unit interval of the second processing interval, the measurement signal detector 23 detects the measurement signal transmitted by another terminal 10 other than the transmission time indicated by the received allocation information. Then, the transmission processing unit 15 reports information about the measurement signal detected by the measurement signal detection unit 23 to the base station 50.
- the allocation information that is, the transmission instruction
- the configuration of the terminal 10 can report the measurement result in the first measurement unit section to the base station 50.
- the reception processing unit 52 receives a report regarding a measurement signal from another terminal 10 detected by the terminal 10 in the first measurement unit section of the second processing section. Then, the control unit 53 forms allocation information (that is, a measurement instruction) in the second measurement unit section based on the received report, and causes the transmission processing unit 54 to transmit the allocation information.
- allocation information that is, a measurement instruction
- the configuration of the base station 50 makes it possible to appropriately control the terminal 10 that transmits the measurement signal and the terminal 10 that detects the measurement signal in the second measurement unit section. As a result, the quality measurement of the communication path between terminals can be made efficient.
- control unit 53 causes the transmission processing unit 54 to transmit an instruction to cause the terminal 40 to transmit a measurement signal in the third processing section.
- the measurement signal transmitted by the terminal 40 is the same type as the measurement signal transmitted by the terminal 10.
- the terminal 10 can measure the interference level of the terminal 40.
- the base station 50 determines the interference level that the signal transmitted from the terminal 10 gives to the signal transmitted from the terminal 40. Can be measured.
- the terminal 10 receives the measurement signal based on the instruction from the base station 50 or the cell identification information of the base station 50 and the terminal identification information to which the terminal 10 is assigned from the base station 50. Is sending.
- the measurement signal is transmitted based on a random number generated randomly by the terminal itself. That is, in the first and second embodiments, it is assumed that the terminal 10 exists within the cell range of the base station 50. On the other hand, in Example 3, the terminal may exist within the cell of the base station cell or may exist outside the cell.
- synchronization is established between terminals. For example, based on a synchronization signal transmitted by one terminal, another terminal establishes synchronization with the one terminal.
- FIG. 11 is a diagram illustrating an example of a communication system according to the third embodiment.
- the communication system 2 includes a terminal 70 and a terminal 100.
- the terminal 70 and the terminal 100 are terminals having the same basic configuration.
- the terminal 70 starts a process of finding a terminal existing in the vicinity, that is, a “first terminal” that transmits a measurement signal. 1 terminal ”, and the terminal 100 is a“ second terminal ”that receives the measurement terminal. Therefore, the terminal 100 may operate as the first terminal and the terminal 70 may operate as the second terminal.
- FIG. 11 only two terminals 70 and 100 are shown, but the number of terminals included in the communication system 2 is not limited to this. Each terminal included in the communication system 2 can operate as both the first terminal and the second terminal.
- the terminal 70 specifies “information on the measurement signal” that is uniquely determined based on a random value randomly determined by the terminal 70 itself. That is, the random number value and the “information about the measurement signal” are associated with each other according to a predetermined rule. For example, the terminal 70 specifies at least identification information of a sequence used as a measurement signal (for example, a sequence number of a ZC sequence) as “information about the measurement signal”. Further, the “information regarding the measurement signal” may include the cyclic shift amount of the above-described series. Further, the terminal 70 may specify a “transmission time” that is uniquely determined based on a random value that is randomly determined by the terminal 70 itself. Instead of a random value, a unique identifier for each terminal (for example, IMEI (International Mobile Equipment Identifier) or USIM (Universal Subscriber Identification Module) unique IMSI (International Mobile Subscriber Identity)) is used. Also good.
- IMEI International Mobile Equipment Identifier
- USIM Universal Subscriber Identification Module
- the terminal 70 transmits a measurement signal corresponding to the specified “information about the measurement signal”.
- area A ⁇ b> 70 indicates a range where a signal transmitted from the terminal 70 reaches at a predetermined power value or more.
- the measurement signal transmitted from the terminal 70 reaches the terminal 100.
- the terminal 100 receives the measurement signal transmitted from the terminal 70. Then, terminal 100 calculates a value associated with the received measurement signal. That is, the terminal 100 tries to calculate the above random number value backward. Then, the terminal 100 transmits a response signal for the received measurement signal, including the calculated value and the identification information of the terminal 100.
- the terminal 70 receives the response signal transmitted from the terminal 100.
- the terminal 70 can recognize that the response signal is a signal addressed to the terminal 70 when the random number value determined by the terminal 70 itself matches the value included in the response signal. . That is, the above random number value is used as “destination information”.
- the terminal 70 transmits “detailed service information” of the terminal 70 together with the identification information of the terminal 100.
- the “detailed service information” of the terminal 70 includes at least the physical identifier (that is, the physical device ID) of the terminal 70.
- the physical device ID is, for example, an IP address.
- the “detailed service information” of the terminal 70 may include a service type identifier (that is, a service type ID).
- the service type ID is, for example, an application ID that identifies an application to be executed.
- the terminal 100 receives the “detailed service information” and the identification information of the terminal 100 transmitted from the terminal 70.
- the terminal 100 can recognize that the detailed service information is transmitted to the terminal 100 by receiving the identification information of the terminal 100 together with the detailed service information transmitted from the terminal 70. That is, the identification information of the terminal 100 is used as the destination information.
- the physical identifier of the terminal 70 (that is, the identification information of the terminal 70) included in the detailed service information is used as transmission source information.
- the terminal 100 determines whether to recognize the terminal 70 as a communication partner based on the detailed service information of the terminal 70. For example, when the service type identifier is included in the detailed service information of the terminal 70, the terminal 100 determines whether or not the terminal 100 itself can execute an application corresponding to the service type identifier. It is determined whether or not 70 is recognized as a communication partner.
- the terminal 100 When the terminal 100 recognizes the terminal 70 as a communication partner, the terminal 100 transmits the “detailed service information” of the terminal 100 together with the identification information of the terminal 70.
- the “detailed service information” of the terminal 100 includes at least a physical identifier of the terminal 100 (that is, identification information of the terminal 100).
- the physical device ID is, for example, an IP address.
- the “detailed service information” of the terminal 100 may include a service type identifier (that is, a service type ID).
- the service type ID is, for example, an application ID that identifies an application to be executed.
- the terminal 70 determines whether to recognize the terminal 100 as a communication partner based on the detailed service information of the terminal 100. For example, when the service type identifier is included in the detailed service information of the terminal 100, the terminal 70 determines whether or not the terminal 70 itself can execute an application corresponding to the service type identifier. It is determined whether or not 100 is recognized as a communication partner.
- the terminal 70 When the terminal 70 recognizes the terminal 100 as a communication partner, the terminal 70 transmits the identification information of the terminal 100, “resource allocation information”, and a data signal to the terminal 100.
- the resource allocation information transmitted from the terminal 70 indicates a resource to which the data signal transmitted from the terminal 70 is mapped. Therefore, when receiving the resource allocation information addressed to the terminal 100, the terminal 100 extracts a data signal mapped to the resource indicated by the resource allocation information from the received signal.
- the terminal 100 transmits the identification information of the terminal 70, “resource allocation information”, and a data signal to the terminal 70.
- the resource allocation information transmitted from the terminal 100 indicates a resource to which a data signal transmitted from the terminal 100 is mapped. Therefore, when receiving resource allocation information addressed to the terminal 70, the terminal 70 extracts a data signal mapped to the resource indicated by the resource allocation information from the received signal.
- the terminal 70 and the terminal 100 can start D2D communication without going through the base station.
- the measurement signal corresponding to the random value randomly determined by the terminal 70 is transmitted, it is possible to reduce the possibility that the measurement signal of the terminal 70 overlaps the measurement signal of another terminal 70.
- the terminal 70 can efficiently discover terminals existing around the terminal 70, and can efficiently perform quality measurement of the communication path between the terminal 70 and the discovered terminal.
- FIG. 12 is a block diagram illustrating an example of the first terminal according to the third embodiment.
- the terminal 70 includes a control unit 71, a data processing unit 72, a transmission processing unit 73, a radio unit 74, and a reception processing unit 75.
- the control unit 71 includes a control information processing unit 76, a measurement signal generation unit 77, a carrier sense unit 78, and a response signal detection unit 79.
- the transmission processing unit 73 includes a multiplexing unit 80, a symbol mapping unit 81, a multiplexing unit 82, an FFT unit 83, a frequency mapping unit 84, and an IFFT unit 85.
- the radio unit 74 includes a transmission radio unit 86 and a reception radio unit 87.
- the reception processing unit 75 includes an FFT unit 88, an equalization unit 89, an IFFT unit 90, a control channel demodulation unit 91, a demodulation unit 92, and a decoding unit 93.
- the control information processing unit 76 randomly determines a random value, and specifies the transmission time and measurement signal of the terminal 70 based on the determined random value.
- the control information processing unit 76 causes the measurement signal generation unit 77 to generate the specified measurement signal and output the measurement signal at the specified transmission time.
- the control information processing unit 76 displays the detailed service information of the terminal 70, The information is output to the multiplexing unit 80 together with the identification information of the terminal 100 included in the response signal. If the response signal includes radio resource information, the detailed service information of the terminal 70 may be mapped to the resource indicated by the radio resource information and transmitted together with the identification information of the terminal 100. When the response signal does not include radio resource information, the detailed service information of the terminal 70 is transmitted at a timing when the detected power value in the carrier sense unit 78 is equal to or lower than a predetermined value, that is, transmitted by a terminal other than the terminal 70.
- the detailed information of the terminal 70 may be transmitted by a CSMA / CA (Carrier Sense Multiple Access / Collision Avoidance) method.
- the detailed service information of the terminal 70 includes at least the physical identifier (that is, the physical device ID) of the terminal 70.
- the “detailed service information” of the terminal 70 may include a service type identifier (that is, a service type ID).
- the detailed service information of the terminal 70 may include information on radio resources used for transmitting the detailed service information by the terminal 100 and information on the transmission power of the terminal 70.
- the control information processing unit 76 communicates the terminal 100 when the response signal detection unit 79 detects the detailed service information of the terminal 100 addressed to the terminal 70 transmitted from the terminal 100 according to the transmitted detailed service information. Decide whether to accept as an opponent. If the terminal 100 is recognized as a communication partner, the control information processing unit 76 outputs the identification information and resource allocation information of the terminal 100 to the multiplexing unit 80. Details of the measurement signal will be described later in detail.
- the carrier sense unit 78 performs carrier sense processing based on the reception signal output from the reception wireless unit 87. That is, the carrier sense unit 78 measures the received power of the received signal and outputs the measurement result to the control information processing unit 76.
- the response signal detection unit 79 receives the reception data output from the decoding unit 93 and detects the response signal and detailed service information transmitted from the terminal 100 to the terminal 70. Then, the response signal detection unit 79 outputs the detected response signal and detailed service information to the control information processing unit 76. When the value included in the response signal matches the random value determined by the control information processing unit 76, the response signal detection unit 79 recognizes that the response signal is addressed to the terminal 70. When the identification information of the terminal 70 is received together with the detailed service information, the response signal detection unit 79 recognizes that the detailed service information is addressed to the terminal 70.
- the data processing unit 72 outputs the user data to the multiplexing unit 80.
- the multiplexing unit 80 forms a multiplexed signal by mapping user data received from the data processing unit 72 and various types of information received from the control information processing unit 76 to predetermined resources, and outputs the formed multiplexed signal to the symbol mapping unit 81. .
- the symbol mapping unit 81 maps the multiplexed signal received from the multiplexing unit 80 to a symbol, and outputs the obtained modulated signal to the multiplexing unit 82.
- the multiplexing unit 82 multiplexes the modulation signal received from the symbol mapping unit 81, the measurement signal received from the measurement signal generation unit 77, the pilot signal, and the synchronization signal, and outputs the multiplexed signal to the FFT unit 83.
- the FFT unit 83 performs a fast Fourier transform process on the multiplexed signal received from the multiplexing unit 82, and outputs the multiplexed signal after the fast Fourier transform process to the frequency mapping unit 84.
- the frequency mapping unit 84 maps the multiplexed signal received from the FFT unit 83 to a predetermined frequency and outputs the obtained transmission signal to the IFFT unit 85.
- the IFFT unit 85 performs an inverse fast Fourier transform process on the transmission signal received from the frequency mapping unit 84 to form an OFDM signal, and outputs the formed OFDM signal to the transmission radio unit 86.
- the transmission radio unit 86 performs predetermined transmission radio processing on the OFDM signal received from the IFFT unit 85, that is, digital-analog conversion, up-conversion, and the like to form a radio signal, and transmits the formed radio signal via the antenna. .
- the reception radio unit 87 performs predetermined reception radio processing, that is, down-conversion, analog-digital conversion, and the like on the reception signal received via the antenna, and the received signal after reception radio processing is subjected to FFT unit 88 and carrier sense unit 78. Output to.
- the FFT unit 88 performs a fast Fourier transform process on the received signal after the reception radio process, and outputs the received signal after the fast Fourier transform process to the equalization unit 89.
- the equalization unit 89 performs frequency equalization processing on the received signal after the fast Fourier transform processing received from the FFT unit 88, and outputs the received signal after frequency equalization processing to the IFFT unit 90.
- the IFFT unit 90 performs an inverse fast Fourier transform process on the received signal after the frequency equalization process received from the equalization unit 89, and the received signal after the inverse fast Fourier transform process is subjected to a control channel demodulation unit 91 and a demodulation unit 92. Output to.
- the demodulator 92 receives the resource allocation information from the control channel demodulator 91, demodulates the signal mapped to the resource corresponding to the resource allocation information among the received signals received from the IFFT unit 90, and receives the demodulated received signal.
- the data is output to the decoding unit 93.
- the decoding unit 93 receives the resource allocation information from the control channel demodulation unit 91, decodes the signal mapped to the resource corresponding to the resource allocation information among the reception signals received from the demodulation unit 92, and outputs the obtained reception data To do.
- the control channel demodulator 91 searches for control information addressed to the terminal 70 in the received signal received from the IFFT unit 90. Then, when the resource allocation information addressed to the terminal 70 is found, the control channel demodulation unit 91 outputs the resource allocation information to the demodulation unit 92 and the decoding unit 93.
- FIG. 13 is a block diagram illustrating an example of the second terminal according to the third embodiment.
- the terminal 100 includes a wireless unit 101, a control unit 102, a data processing unit 103, a transmission processing unit 104, and a reception processing unit 105.
- the control unit 102 includes a measurement signal detection unit 106, a control information processing unit 107, a carrier sense unit 108, and a response signal detection unit 109.
- the transmission processing unit 104 includes a multiplexing unit 110, a symbol mapping unit 111, a multiplexing unit 112, an FFT unit 113, a frequency mapping unit 114, and an IFFT unit 115.
- the radio unit 101 includes a transmission radio unit 116 and a reception radio unit 117. Further, the reception processing unit 105 includes an FFT unit 118, an equalization unit 119, an IFFT unit 120, a control channel demodulation unit 121, a demodulation unit 122, and a decoding unit 123.
- the measurement signal detection unit 106 detects the measurement signal from the reception signals received from the reception radio unit 117.
- the measurement signal detection unit 106 detects, for example, measurement signal identification information and a cyclic shift amount. Then, the measurement signal detection unit 106 outputs the detection result to the control information processing unit 107.
- the control information processing unit 107 calculates a value corresponding to the detected measurement signal based on the detection result received from the measurement signal detection unit 106. That is, the control information processing unit 107 attempts to calculate the random number value backward. Then, the control information processing unit 107 outputs the response signal for the received measurement signal to the multiplexing unit 110, including the calculated value and the identification information of the terminal 100.
- the response signal may be transmitted when a predetermined time elapses from the timing when the measurement signal is received. Alternatively, the response signal may be transmitted at a timing when the detected power value at the carrier sense unit 108 is equal to or less than a predetermined value, that is, at a timing when transmission by a terminal other than the terminal 100 is not performed. That is, the response signal may be transmitted by a CSMA / CA (Carrier Sense Multiple Access / Collision Avoidance) method.
- CSMA / CA Carrier Sense Multiple Access / Collision Avoidance
- the control information processing unit 107 detects the terminal 70 as a communication partner. Decide whether or not to accept.
- the control information processing unit 107 outputs the identification information of the terminal 70 and the detailed service information of the terminal 100 to the multiplexing unit 110.
- the detailed service information of the terminal 100 includes radio resource information
- the detailed service information of the terminal 100 may be mapped to the resource indicated by the radio resource information and transmitted together with the identification information of the terminal 70.
- the detailed service information of the terminal 100 is the timing at which the detected power value at the carrier sense unit 108 is equal to or lower than a predetermined value
- the detailed service information of the terminal 100 includes at least the physical identifier of the terminal 100 (that is, the physical device ID).
- the “detailed service information” of the terminal 100 may include a service type identifier (that is, a service type ID).
- the detailed service information of the terminal 100 may include information on radio resources used for transmission of the detailed service information by the terminal 70 and information on the transmission power of the terminal 100.
- control information processing unit 107 receives the resource allocation information and data from the terminal 70, the control information processing unit 107 outputs the identification information and resource allocation information of the terminal 70 to the multiplexing unit 110.
- the carrier sense unit 108 performs carrier sense processing based on the reception signal output from the reception radio unit 117. That is, the carrier sense unit 108 measures the received power of the received signal and outputs the measurement result to the control information processing unit 107.
- the response signal detection unit 109 receives the reception data output from the decoding unit 123, and detects the detailed service information transmitted from the terminal 70 to the terminal 100. Then, the response signal detection unit 109 outputs the detected detailed service information to the control information processing unit 107. When the identification information of the terminal 100 is received together with the detailed service information, the response signal detection unit 109 recognizes that the detailed service information is addressed to the terminal 100.
- the data processing unit 103 outputs the user data to the multiplexing unit 110.
- the multiplexing unit 110 forms a multiplexed signal by mapping user data received from the data processing unit 103 and various types of information received from the control information processing unit 107 to predetermined resources, and outputs the formed multiplexed signal to the symbol mapping unit 111. .
- the symbol mapping unit 111 maps the multiplexed signal received from the multiplexing unit 110 to a symbol, and outputs the obtained modulated signal to the multiplexing unit 112.
- the multiplexing unit 112 multiplexes the modulation signal received from the symbol mapping unit 111, the pilot signal, and the synchronization signal, and outputs the multiplexed signal to the FFT unit 113.
- the FFT unit 113 performs a fast Fourier transform process on the multiplexed signal received from the multiplexing unit 112, and outputs the multiplexed signal after the fast Fourier transform process to the frequency mapping unit 114.
- the frequency mapping unit 114 maps the multiplexed signal received from the FFT unit 113 to a predetermined frequency, and outputs the obtained transmission signal to the IFFT unit 115.
- the IFFT unit 115 performs an inverse fast Fourier transform process on the transmission signal received from the frequency mapping unit 114 to form an OFDM signal, and outputs the formed OFDM signal to the transmission radio unit 116.
- Transmission radio section 116 performs predetermined transmission radio processing, that is, digital-analog conversion, up-conversion, etc., on the OFDM signal received from IFFT section 115 to form a radio signal, and transmits the formed radio signal via an antenna. .
- the reception radio unit 117 performs predetermined reception radio processing, that is, down-conversion, analog-digital conversion, etc., on the received signal received via the antenna, and the received signal after the reception radio processing is processed by the FFT unit 118 and the measurement signal detection.
- the FFT unit 118 performs a fast Fourier transform process on the received signal after the reception radio process, and outputs the received signal after the fast Fourier transform process to the equalization unit 119.
- the equalization unit 119 performs frequency equalization processing on the received signal after the fast Fourier transform processing received from the FFT unit 118, and outputs the received signal after frequency equalization processing to the IFFT unit 120.
- the IFFT unit 120 performs inverse fast Fourier transform processing on the received signal after frequency equalization processing received from the equalization unit 119, and the received signal after inverse fast Fourier transform processing is subjected to control channel demodulation unit 121 and demodulation unit 122. Output to.
- Demodulator 122 receives the resource allocation information from control channel demodulator 121, demodulates the signal mapped to the resource corresponding to the resource allocation information among the received signals received from IFFT unit 120, and receives the demodulated received signal. The data is output to the decoding unit 123.
- the decoding unit 123 receives resource allocation information from the control channel demodulation unit 121, decodes a signal mapped to a resource corresponding to the resource allocation information among received signals received from the demodulation unit 122, and outputs the obtained reception data To do.
- the control channel demodulation unit 121 searches for control information addressed to the terminal 100 in the received signal received from the IFFT unit 120. Then, when resource allocation information addressed to terminal 100 is found, control channel demodulation section 121 outputs the resource allocation information to demodulation section 122 and decoding section 123.
- FIG. 14 is a diagram for explaining an example of a processing operation of the communication system according to the third embodiment.
- the control information processing unit 76 determines a random value at random (step S301). For example, the control information processing unit 76 determines the random value X1 and the random value X2.
- the random value X1 is 12 bits, for example. Then, 9 bits out of 12 bits of the random number value X1 correspond to any sequence number of 839 ZC sequences, and the remaining 3 bits correspond to any of the 8 cyclic shift amounts.
- the random value X2 is 9 bits and corresponds to one of the transmission subframe patterns.
- the terminal 70 generates a measurement signal corresponding to the random value X1 (step S302), and transmits the generated measurement signal according to the transmission subframe pattern (step S303).
- the measurement signal may be transmitted on a channel for the measurement signal.
- the measurement signal detection unit 106 detects the measurement signal transmitted from the terminal 70. This detection process may be executed on the channel for the measurement signal.
- the control information processing unit 107 calculates a value corresponding to the detected measurement signal based on the detection result received from the measurement signal detection unit 106. That is, the control information processing unit 107 attempts to calculate the random number value X1 backward.
- the control information processing unit 107 generates a response signal for the received measurement signal, including the calculated value and the identification information of the terminal 100 (step S304), and transmits the generated response signal to the transmission processing unit 104. (Step S305).
- This response signal may be transmitted on the channel for the above measurement signal or may be transmitted on another channel.
- the response signal detection unit 79 detects the response signal transmitted from the terminal 100 to the terminal 70. This detection process may be executed on the channel for the measurement signal, or may be executed on the other channel. Then, the control information processing unit 76 causes the transmission processing unit 73 to transmit the detailed service information of the terminal 70 together with the identification information of the terminal 100 included in the response signal (step S306).
- the response signal detection unit 109 detects the detailed service information transmitted from the terminal 70 to the terminal 100.
- the control information processing unit 107 causes the transmission processing unit 104 to transmit the identification information of the terminal 70 and the detailed service information of the terminal 100 (Step S307).
- the control information processing unit 76 determines whether the terminal 100 is a communication partner (step S308). When the terminal 100 is determined as the communication partner, the control information processing unit 76 causes the transmission processing unit 73 to transmit the identification information and resource allocation information of the terminal 100 (step S309).
- the control information processing unit 107 when receiving the resource allocation information and data from the terminal 70, the control information processing unit 107 causes the transmission processing unit 104 to transmit the identification information and resource allocation information of the terminal 70 (step S310).
- FIG. 15 is a diagram for explaining an example of a processing operation of the communication system according to the third embodiment.
- FIG. 15 shows a processing operation in the case where the same measurement signal is transmitted from a plurality of terminals 70 at the same time.
- the terminal 100 receives the measurement signals generated and transmitted at the same time in the terminals 70-1 and 70-2 (steps S301-1, 2, S302-1, 2, and S303). -1, 2).
- control information processing unit 107 includes a value calculated based on the detected measurement signal and the identification information of the terminal 100, and generates a response signal for the detected measurement signal (step S304), and the generated response The signal is transmitted to the transmission processing unit 104 (step S305).
- the response signal detector 79 detects the response signal transmitted from the terminal 100 to the terminals 70-1 and 70-2. Then, the control information processing unit 76 causes the transmission processing unit 73 to transmit the detailed service information of the terminals 70-1 and 70-2 together with the identification information of the terminal 100 included in the response signal (steps S306-1, 2).
- the control information processing unit 107 determines a communication partner from the terminals 70-1 and 70-2 (step S401). Here, it is assumed that terminal 70-1 is selected as the communication partner.
- the control information processing unit 107 causes the transmission processing unit 104 to transmit the identification information of the terminal 70-1 determined as the communication partner and the detailed service information of the terminal 100 (step S307).
- the detailed service information of the terminal 100 is transmitted together with the terminal 70-1, but is not transmitted together with the terminal 70-2. Therefore, the terminal 70-2 does not transmit the detailed service information addressed to the terminal 70-2. Can be recognized.
- the control information processing unit 76 determines whether the terminal 100 is a communication partner (step S308). When the terminal 100 is determined as the communication partner, the control information processing unit 76 causes the transmission processing unit 73 to transmit the identification information and resource allocation information of the terminal 100 (step S309).
- control information processing unit 107 when receiving the resource allocation information and data from the terminal 70-1, the control information processing unit 107 causes the transmission processing unit 104 to transmit the identification information and resource allocation information of the terminal 70-1 (step S310).
- the control unit 71 allows the terminal 70 itself to randomly determine a random value or an identifier value uniquely assigned to the terminal 70 (for example, IMEI or The information regarding the measurement signal that is uniquely determined based on the IMSI) is specified. Then, the transmission processing unit 73 transmits the measurement signal specified by the control unit 71.
- the terminal 70 With the configuration of the terminal 70, a measurement signal corresponding to a random value randomly determined by the terminal 70 or an identifier value uniquely assigned to the terminal 70 is transmitted. The possibility of overlapping with the measurement signals of other terminals 70 can be reduced. As a result, the terminal 70 can efficiently discover terminals existing around the terminal 70, and can efficiently perform quality measurement of the communication path between the terminal 70 and the discovered terminal.
- control part 71 specifies the identification information of the series used as a signal for a measurement at least as information regarding the signal for a measurement.
- control unit 71 specifies the identification information of the sequence used as the measurement signal, the cyclic shift amount of the sequence, and the subframe pattern in which the measurement signal is transmitted as the information about the measurement signal.
- the reception processing unit 75 receives the value calculated from the measurement signal transmitted from the terminal 100 according to the transmitted measurement signal and received by the terminal 100 and the identification information of the terminal 100. A response signal including is received. Then, when the response signal is received by the reception processing unit 75, the transmission processing unit 73 transmits detailed service information including at least the physical identifier of the terminal 70 together with the identification information of the terminal 100.
- the measurement signal detection unit 106 detects the measurement signal transmitted from the terminal 100, and the control information processing unit 107 is associated with the measurement signal detected by the measurement signal detection unit 106. Calculate the value. Then, the transmission processing unit 104 transmits a response signal including the value calculated by the control information processing unit 107 and the identification information of the terminal 100 and corresponding to the measurement signal detected by the measurement signal detection unit 106.
- the terminal 70 can determine whether the response signal is addressed to the terminal 70 based on the random number value.
- the reception processing unit 105 receives the detailed service information transmitted from the terminal 70 as a response to the response signal and including the physical identifier of the terminal 70. Then, the transmission processing unit 104 transmits the detailed service information of the terminal 100 together with the physical identifier of the terminal 70.
- Example 4 The third embodiment is based on the premise that synchronization is established between terminals. On the other hand, Example 4 presupposes that the synchronization is not established between terminals. That is, in Example 4, one terminal and the other terminals are asynchronous.
- FIG. 16 is a block diagram illustrating an example of the first terminal according to the fourth embodiment.
- the terminal 170 includes a control information processing unit 176 and a measurement signal generation unit 177.
- the control information processing unit 176 determines a random value at random, and specifies the measurement signal of the terminal 70 itself based on the determined random value. Then, the control information processing unit 176 causes the measurement signal generation unit 177 to generate the specified measurement signal and to output the measurement signal at a time when terminals other than the terminal 170 are not transmitting. That is, the measurement signal is transmitted by an asynchronous CSMA / CA procedure. The measurement signal is transmitted on a channel preset in the measurement signal.
- the control information processing unit 176 determines the random value X1 without determining the random value X2. That is, in the fourth embodiment, since asynchronous is assumed, a transmission subframe pattern is not used.
- the random value X1 of the fourth embodiment is 10 bits, for example. Then, 8 bits out of 10 bits of the random value X1 correspond to one of the sequence numbers of 419 ZC sequences, and the remaining 2 bits correspond to one of the four cyclic shift amounts.
- the measurement signal generation unit 177 generates a measurement signal corresponding to the random value X1 determined by the control information processing unit 176. Specifically, the measurement signal generation unit 177 first converts the sequence number sequence corresponding to the random value X1 (here, in particular, a sequence having a length half the “sequence basic length”) to the random value X1. A first sequence shifted by the corresponding cyclic shift amount is generated. Then, the measurement signal generation unit 177 generates a second sequence obtained by time-reversing the first sequence. Then, the measurement signal generation unit 177 generates a measurement signal by connecting the first sequence and the second sequence.
- FIG. 17 is a diagram illustrating an example of a measurement signal according to the fourth embodiment. In FIG.
- the sequence basic length indicates the length of the measurement signal to be transmitted.
- the sequence corresponding to the random value X1 in the third embodiment has the same length as the sequence basic length.
- NCS indicates a cyclic shift amount.
- CP indicates a cyclic prefix.
- the control information processing unit 176 displays the detailed service information of the terminal 170, The information is output to multiplexing section 80 together with the identification information of terminal 200 included in the response signal.
- the detailed service information of the terminal 70 is transmitted at a timing when the detected power value in the carrier sense unit 78 is equal to or less than a predetermined value, that is, at a timing when transmission by a terminal other than the terminal 170 is not performed. That is, the detailed information of the terminal 170 is transmitted by an asynchronous CSMA / CA procedure.
- the detailed service information of the terminal 170 includes at least the physical identifier of the terminal 170 (that is, the physical device ID).
- the “detailed service information” of the terminal 170 may include a service type identifier (that is, a service type ID).
- the detailed service information of the terminal 170 may include information on radio resources used for transmitting the detailed service information by the terminal 200 and information on the transmission power of the terminal 170.
- the response signal may be transmitted on a channel preset in the measurement signal, or may be transmitted on another channel. Therefore, the detection process of the response signal may be performed on the channel on which the response signal is to be transmitted.
- control information processing unit 176 When the response signal detection unit 79 detects the detailed service information of the terminal 200 addressed to the terminal 170 transmitted from the terminal 200 according to the transmitted detailed service information, the control information processing unit 176 communicates with the terminal 200. Decide whether to accept as an opponent. If terminal 200 is recognized as a communication partner, control information processing unit 176 outputs identification information and resource allocation information of terminal 200 to multiplexing unit 80.
- the random value X1 of the fourth embodiment may be 9 bits, for example.
- the random value X1 corresponds to any of 839 sequences having a sequence reference length. That is, in this modification, the sequence used as the measurement signal is not cyclically shifted.
- FIG. 18 is a block diagram illustrating an example of the second terminal according to the fourth embodiment.
- the terminal 200 includes a control information processing unit 207.
- the control information processing unit 207 calculates a value corresponding to the detected measurement signal based on the detection result received from the measurement signal detection unit 106. That is, the control information processing unit 207 attempts to calculate the above random number value backward.
- Control information processing section 207 outputs the response signal for the received measurement signal, including the calculated value and the identification information of terminal 200, to multiplexing section 110.
- the response signal is transmitted at a timing at which the detected power value at carrier sense section 108 is equal to or lower than a predetermined value, that is, at a timing at which transmission by a terminal other than terminal 200 is not performed. That is, the response signal is transmitted by an asynchronous CSMA / CA procedure. Note that the response signal may be transmitted on a channel preset in the above measurement signal or may be transmitted on another channel.
- the control information processing unit 207 causes the terminal 170 to communicate with the communication partner. Decide whether or not to accept.
- the control information processing unit 207 outputs the identification information of the terminal 170 and the detailed service information of the terminal 200 to the multiplexing unit 110.
- the detailed service information of the terminal 200 is transmitted by an asynchronous CSMA / CA procedure. Note that the detailed service information of the terminal 200 includes at least the physical identifier (that is, the physical device ID) of the terminal 200.
- the “detailed service information” of the terminal 200 may include a service type identifier (that is, a service type ID). Further, the detailed service information of the terminal 200 may include information on radio resources used for transmitting the detailed service information by the terminal 170 and information on the transmission power of the terminal 200.
- control information processing unit 207 receives the resource allocation information and data from the terminal 170, the control information processing unit 207 outputs the identification information and resource allocation information of the terminal 170 to the multiplexing unit 110.
- the transmission processing unit 73 in the terminal 170 transmits the measurement signal specified by the control unit 71.
- This measurement signal includes a first sequence used as a measurement signal and a second sequence in which the first sequence is time-reversed.
- the configuration of the terminal 170 can improve the measurement signal identification performance (that is, the cross-correlation characteristics) even when synchronization is not established between the terminals.
- each component of each part illustrated in the first and second embodiments does not necessarily need to be physically configured as illustrated.
- the specific form of distribution / integration of each unit is not limited to the one shown in the figure, and all or a part thereof may be functionally or physically distributed / integrated in arbitrary units according to various loads and usage conditions. Can be configured.
- each device is all or any part of it on a CPU (Central Processing Unit) (or a micro computer such as MPU (Micro Processing Unit) or MCU (Micro Controller Unit)). You may make it perform.
- CPU Central Processing Unit
- MPU Micro Processing Unit
- MCU Micro Controller Unit
- Various processing functions may be executed entirely or arbitrarily on a program that is analyzed and executed by a CPU (or a microcomputer such as an MPU or MCU) or hardware based on wired logic. .
- the base stations and terminals according to the first to fourth embodiments can be realized by, for example, the following hardware configuration.
- FIG. 19 is a diagram illustrating a hardware configuration example of the terminal.
- the terminal 300 includes an RF (Radio Frequency) circuit 301, a processor 302, and a memory 303.
- RF Radio Frequency
- Each of the terminal 10, the terminal 40, the terminal 70, the terminal 100, the terminal 170, and the terminal 200 has a hardware configuration as shown in FIG.
- Examples of the processor 302 include a CPU (Central Processing Unit), a DSP (Digital Signal Processor), and an FPGA (Field Programmable Gate Array).
- Examples of the memory 303 include a RAM (Random Access Memory) such as SDRAM (Synchronous Dynamic Random Access Memory), a ROM (Read Only Memory), a flash memory, and the like.
- the various processing functions performed in the terminals of the first to fourth embodiments may be realized by executing programs stored in various memories such as a nonvolatile storage medium by a processor included in the amplification device. That is, it is executed by the reception processing units 12, 42, 75, 105, the control units 13, 43, 71, 102, the data processing units 14, 44, 72, 103, and the transmission processing units 15, 45, 73, 104.
- a program corresponding to each process to be performed may be recorded in the memory 303, and each program may be executed by the processor 302. Also, executed by the reception processing units 12, 42, 75, 105, the control units 13, 43, 71, 102, the data processing units 14, 44, 72, 103, and the transmission processing units 15, 45, 73, 104.
- Each process to be performed may be shared and executed by a plurality of processors such as a baseband CPU and an application CPU.
- the wireless units 11, 41, 74, and 101 are realized by the RF circuit 301.
- FIG. 20 is a diagram illustrating a hardware configuration example of the base station.
- the base station 400 includes an RF circuit 401, a processor 402, a memory 403, and a network IF (Inter Face) 404.
- the processor 402 include a CPU, a DSP, and an FPGA.
- the memory 403 include RAM such as SDRAM, ROM, flash memory, and the like.
- the various processing functions performed in the base stations of the first and second embodiments may be realized by executing programs stored in various memories such as a nonvolatile storage medium by a processor included in the amplification device. That is, a program corresponding to each process executed by the reception processing unit 52, the control unit 53, and the transmission processing unit 54 may be recorded in the memory 403, and each program may be executed by the processor 402.
- the wireless unit 51 is realized by the RF circuit 401.
- the base station 400 is an integrated apparatus, it is not limited to this.
- the base station 400 may be configured by two separate devices, a wireless device and a control device.
- the RF circuit 401 is disposed in the wireless device, and the processor 402, the memory 403, and the network IF 404 are disposed in the control device.
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Abstract
Description
[通信システムの概要]
図1は、実施例1の通信システムの一例を示す図である。図1において、通信システム1は、端末10-1,2,3,4と、端末40-1,2,3と、基地局50とを有する。図1において、セルC50は、基地局50の射程エリアと第1のチャネル周波数によって規定される。端末10-1,2,3,4は、D2D通信が可能な端末であり、端末40-1,2,3は、D2D通信を行わない端末である。以下では、端末10-1,2,3,4を特に区別しない場合には、総称して、端末10と呼ぶことがある。また、端末40-1,2,3を特に区別しない場合には、総称して、端末40と呼ぶことがある。また、図1に示した端末10と、端末40と、基地局50との数は一例であり、これに限定されるものではない。また、基地局50は、例えば、マクロ基地局であってもよいし、LTEシステムにおける、張出基地局(RRH:Radio Remote Header)を用いた基地局、フェムト基地局、又は、小型基地局であってもよい。
図2は、実施例1の基地局の一例を示すブロック図である。図2において、基地局50は、無線部51と、受信処理部52と、制御部53と、送信処理部54とを有する。また、無線部51は、受信無線部55と、送信無線部68とを有する。また、受信処理部52は、FFT部56と、復調部57と、復号部58と、分離部59とを有する。また、制御部53は、無線リソース制御(RRC:Radio Resource Control)部60と、MAC制御部61とを有する。また、送信処理部54は、パケット生成部62と、MACスケジューリング部63と、符号化部64と、変調部65と、多重部66と、IFFT部67とを有する。
図3は、実施例1の第1の端末の一例を示すブロック図である。図3において、端末10は、無線部11と、受信処理部12と、制御部13と、データ処理部14と、送信処理部15とを有する。無線部11は、受信無線部16と、送信無線部31とを有する。また、受信処理部12は、FFT部17と、復調部18と、復号部19と、制御チャネル復調部20とを有する。また、制御部13は、セルサーチ部21と、制御情報処理部22と、測定用信号検出部23と、測定用信号生成部24とを有する。また、送信処理部15は、多重部25と、シンボルマッピング部26と、多重部27と、FFT部28と、周波数マッピング部29と、IFFT部30とを有する。
図4は、実施例1の第2の端末の一例を示すブロック図である。図4において、端末40は、無線部41と、受信処理部42と、制御部43と、データ処理部44と、送信処理部45とを有する。端末40の基本構成は、端末10と同じである。すなわち、無線部41は、無線部11に対応し、受信処理部42は、受信処理部12に対応する。また、制御部43は、制御部13に対応し、データ処理部44は、データ処理部14に対応する。また、送信処理部45は、送信処理部15に対応する。
以上の構成を有する通信システム1の処理動作の一例について説明する。図5は、実施例1の基地局の処理動作の一例を示すフローチャートである。図6は、実施例1の通信システムの処理動作の一例を示す図である。
基地局50において無線リソース制御部60は、測定開始指示を含めた無線リソース制御情報を形成し、形成した無線リソース制御情報を端末10へ送信する(ステップS101)。
基地局50において無線リソース制御部60は、第1処理区間の測定報告を端末10から受け取ると、その測定報告に基づいて、未だ測定されていない端末間通信路を特定し、特定した端末間通信路に対応する端末10に対する割り当て情報(つまり、測定指示)を形成する(ステップS103)。
一方、完了したと判断した場合(ステップS106肯定)、第3処理区間が開始する。すなわち、基地局50においてMAC制御部61は、端末40に対して測定用信号の送信を命じる測定用信号送信指示を含む個別制御情報を送信する(ステップS107)。
実施例1では、端末10が測定用信号の送信及び測定を行う第1処理期間が設けられている。これに対して、実施例2は、第1処理区間を設けない実施例である。実施例2の基地局及び端末の基本構成は、実施例1の基地局50及び端末10,40と基本的に同じであるので、図2,3,4を用いて説明する。
基地局50において無線リソース制御部60は、第1の測定単位期間における端末10に対する割り当て情報(つまり、測定指示)を形成する(ステップS201)。
一方、完了したと判断した場合(ステップS204肯定)、第3処理区間が開始する。すなわち、基地局50においてMAC制御部61は、端末40に対して測定用信号の送信を命じる測定用信号送信指示を含む個別制御情報を送信する(ステップS205)。
実施例1及び実施例2では、端末10は、基地局50からの指示、又は、基地局50のセル識別情報及び端末10が基地局50から割り当てられた端末識別情報に基づいて、測定用信号を送信している。これに対して、実施例3では、端末が端末自身でランダムに発生させた乱数に基づいて、測定用信号を送信する。すなわち、実施例1及び実施例2では、端末10が基地局50のセルの圏内に存在することを前提としている。これに対して、実施例3では、端末が、基地局のセルの圏内に存在していてもよいし、圏外に存在していてもよい。また、実施例3では、端末間で同期が確立されていることを前提としている。例えば、1つの端末が送信した同期信号に基づいて、他の端末がその1つの端末との間の同期を確立する。
図11は、実施例3の通信システムの一例を示す図である。図11において、通信システム2は、端末70と、端末100とを有する。端末70と端末100とは同じ基本構成を有する端末であるが、ここでは、端末70を、周辺に存在する端末を見つける処理を始める「第1の端末」、つまり測定用信号を送信する「第1の端末」とし、端末100を、その測定用端末を受信する「第2の端末」としている。従って、端末100が第1の端末として動作し、端末70が第2の端末として動作する場合もある。なお、図11では、2つの端末70及び端末100のみを示しているが、通信システム2に含まれる端末の数はこれに限定されるものではない。通信システム2に含まれる各端末は、上記の第1の端末及び第2の端末のいずれとしても動作することができる。
図12は、実施例3の第1の端末の一例を示すブロック図である。図12において、端末70は、制御部71と、データ処理部72と、送信処理部73と、無線部74と、受信処理部75とを有する。また、制御部71は、制御情報処理部76と、測定用信号生成部77と、キャリアセンス部78と、応答信号検出部79とを有する。また、送信処理部73は、多重部80と、シンボルマッピング部81と、多重部82と、FFT部83と、周波数マッピング部84と、IFFT部85とを有する。また、無線部74は、送信無線部86と、受信無線部87とを有する。また、受信処理部75は、FFT部88と、等化部89と、IFFT部90と、制御チャネル復調部91と、復調部92と、復号部93とを有する。
図13は、実施例3の第2の端末の一例を示すブロック図である。図13において、端末100は、無線部101と、制御部102と、データ処理部103と、送信処理部104と、受信処理部105とを有する。また、制御部102は、測定用信号検出部106と、制御情報処理部107と、キャリアセンス部108と、応答信号検出部109とを有する。また、送信処理部104は、多重部110と、シンボルマッピング部111と、多重部112と、FFT部113と、周波数マッピング部114と、IFFT部115とを有する。また、無線部101は、送信無線部116と、受信無線部117とを有する。また、受信処理部105は、FFT部118と、等化部119と、IFFT部120と、制御チャネル復調部121と、復調部122と、復号部123とを有する。
図14は、実施例3の通信システムの処理動作の一例の説明に供する図である。
実施例3は、端末間で同期が確立されていることを前提としている。これに対して、実施例4は、端末間で同期が確立されていないことを前提とする。すなわち、実施例4では、1つの端末と他の端末とは、非同期である。
図16は、実施例4の第1の端末の一例を示すブロック図である。図16において端末170は、制御情報処理部176と、測定用信号生成部177とを有する。
なお、実施例4の乱数値X1は、例えば、9ビットであってもよい。そして、この乱数値X1は、系列基準長を有する839通りの系列のいずれかに対応する。すなわち、この変形例では、測定用信号として用いられる系列は巡回シフトされない。
図18は、実施例4の第2の端末の一例を示すブロック図である。図18において端末200は、制御情報処理部207を有する。
実施例1及び実施例2で図示した各部の各構成要素は、必ずしも物理的に図示の如く構成されていることを要しない。すなわち、各部の分散・統合の具体的形態は図示のものに限られず、その全部又は一部を、各種の負荷や使用状況等に応じて、任意の単位で機能的又は物理的に分散・統合して構成することができる。
10,40,70,100,170,200 端末
11,41,51,74,101 無線部
12,42,52,75,105 受信処理部
13,43,53,71,102 制御部
14,44,72,103 データ処理部
15,45,54,73,104 送信処理部
16,55,87,117 受信無線部
17,28,56,83,88,113,118 FFT部
18,57,92,122 復調部
19,58,93,123 復号部
20,91,121 制御チャネル復調部
21 セルサーチ部
22,76,107,176,207 制御情報処理部
23,106 測定用信号検出部
24,77,177 測定用信号生成部
25,27,66,80,82,110,112 多重部
26,81,111 シンボルマッピング部
29,84,114 周波数マッピング部
30,67,85,90,115,120 IFFT部
31,68,86,116 送信無線部
50 基地局
59 分離部
60 無線リソース制御部
61 MAC制御部
62 パケット生成部
63 MACスケジューリング部
64 符号化部
65 変調部
78,108 キャリアセンス部
79,109 応答信号検出部
89,119 等化部
Claims (16)
- 端末間で直接に通信可能な端末と、前記端末と通信する基地局とを有する通信システムであって、
前記基地局は、
前記端末が前記端末の送信時間以外で検出した他の端末からの測定用信号に関する報告を受信する受信手段と、
前記端末が測定用信号を送信する送信時間に関する第1の割り当て情報を前記端末に送信し、前記第1の割り当て情報が示す送信時間以外に前記端末が検出した測定用信号に関する前記報告を用いて、第2の割り当て情報を形成し、前記形成した第2の割り当て情報を前記端末に送信する制御手段と、
を具備し、
前記端末は、
前記基地局から送信された割り当て情報を受信する受信手段と、
前記受信した割り当て情報が示す送信時間以外で他の端末が送信した測定用信号を検出する検出手段と、
前記受信した割り当て情報が示す送信時間に測定用信号を送信し、前記検出手段で検出した測定用信号に関する報告を前記基地局へ送信する送信手段と、
を具備する、
ことを特徴とする通信システム。 - 端末間で直接に通信可能な端末が前記端末の送信時間以外で検出した他の端末からの測定用信号に関する報告を受信する受信手段と、
前記端末が測定用信号を送信する送信時間に関する第1の割り当て情報を前記端末に送信し、前記第1の割り当て情報が示す送信時間以外に前記端末が検出した測定用信号に関する前記報告を用いて、第2の割り当て情報を形成し、前記形成した第2の割り当て情報を前記端末に送信する制御手段と、
を具備することを特徴とする基地局。 - 前記制御手段は、端末間で直接に通信を行わない他の端末に対して、測定用信号の送信指示を送信する、
ことを特徴とする請求項2に記載の基地局。 - 端末間で直接に通信可能な端末であって、
基地局から送信された割り当て情報を受信する受信手段と、
前記受信した割り当て情報が示す送信時間以外で他の端末が送信した測定用信号を検出する検出手段と、
前記受信した割り当て情報が示す送信時間に測定用信号を送信し、前記検出手段で検出した測定用信号に関する報告を前記基地局へ送信する送信手段と、
を具備することを特徴とする端末。 - 前記送信手段は、前記受信した割り当て情報が示す送信時間で測定用信号を送信する第2の処理区間の前の第1の処理区間において、端末毎に決定される情報に基づいて一義的に定まる送信時間に測定用信号を送信する、
ことを特徴とする請求項4に記載の端末。 - 前記送信手段は、前記受信した割り当て情報が示す送信時間で測定用信号を送信する第2の処理区間の前の第1の処理区間において、端末毎に決定される情報に基づいて一義的に定まる系列を、前記測定用信号として送信する、
ことを特徴とする請求項4に記載の端末。 - 前記端末毎に決定される情報は、前記基地局のセル識別情報及び前記基地局から割り当てられた端末識別情報である、
ことを特徴とする請求項5又は6に記載の端末。 - 前記端末毎に決定される情報は、端末毎にランダムに選択された数値情報である、
ことを特徴とする請求項5又は6に記載の端末。 - 前記検出手段は、端末間で直接に通信を行わない他の端末から送信された測定用信号に基づいて、前記他の端末からの干渉レベルを検出する、
ことを特徴とする請求項4に記載の端末。 - 直接に通信可能な端末間の通信路の品質測定を制御する基地局における制御方法であって、
端末が測定用信号を送信する送信時間に関する第1の割り当て情報を前記端末に送信し、
前記端末が前記端末の送信時間以外で検出した他の端末からの測定用信号に関する報告を受信し、
前記報告を用いて、第2の割り当て情報を形成し、前記形成した第2の割り当て情報を前記端末に送信する、
ことを特徴とする制御方法。 - 端末間で直接に通信可能な端末であって、
前記端末自身がランダムに決定した乱数値、又は、前記端末に対して固有に割り当てられた識別子の値に基づいて一義的に定まる、測定用信号に関する情報を特定する制御手段と、
前記特定した情報に対応する測定用信号を送信する送信手段と、
を具備することを特徴とする端末。 - 前記制御手段は、前記測定用信号に関する情報として、少なくとも前記測定用信号として用いられる系列の識別情報を特定する、
ことを特徴とする請求項11に記載の端末。 - 前記送信手段から送信される測定用信号は、前記系列と前記系列が時間反転された系列とを含む、
ことを特徴とする請求項12に記載の端末。 - 前記送信した測定用信号に対して他の端末から送信され、且つ、前記乱数値及び前記他の端末の識別情報を含む応答信号を受信する受信手段を具備し、
前記送信手段は、前記受信手段で前記応答信号が受信された場合、前記端末自身の物理識別子を少なくとも含む端末詳細情報を前記他の端末の識別情報と共に送信する、
ことを特徴とする請求項11から13のいずれか一項に記載の端末。 - 端末間で直接に通信可能な端末であって、
他の端末から送信された測定用信号を検出する検出手段と、
前記検出した測定用信号に対応づけられた値を算出する制御手段と、
前記算出した値及び前記端末自身の識別情報を含み、且つ、前記検出した測定用信号に対する応答信号を送信する送信手段と、
を具備することを特徴とする端末。 - 前記応答信号に対する応答として前記他の端末から送信され、且つ、前記他の端末の物理識別子を含む第1の端末詳細情報を受信する受信手段を具備し、
前記送信手段は、前記端末自身の第2の端末詳細情報を前記他の端末の物理識別子と共に送信する、
ことを特徴とする請求項15に記載の端末。
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Families Citing this family (10)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US10887035B2 (en) * | 2016-06-01 | 2021-01-05 | Qualcomm Incorporated | Time division multiplexing of synchronization channels |
US11563505B2 (en) | 2016-06-01 | 2023-01-24 | Qualcomm Incorporated | Time division multiplexing of synchronization channels |
US11218236B2 (en) | 2016-06-01 | 2022-01-04 | Qualcomm Incorporated | Time division multiplexing of synchronization channels |
US10498437B2 (en) | 2016-06-01 | 2019-12-03 | Qualcomm Incorporated | Conveying hypotheses through resource selection of synchronization and broadcast channels |
US10615897B2 (en) | 2016-06-01 | 2020-04-07 | Qualcomm Incorporated | Time division multiplexing of synchronization channels |
US10880030B2 (en) | 2016-06-15 | 2020-12-29 | Lg Electronics Inc. | Method for inter-cell interference coordination in wireless communication system, and apparatus therefor |
US11659563B2 (en) | 2017-01-04 | 2023-05-23 | Huawei Technologies Co., Ltd. | System and method for user equipment identifier configuration |
CN108809577B (zh) | 2017-05-05 | 2020-11-06 | 华为技术有限公司 | 发送信息的方法、接收信息的方法、网络设备和终端设备 |
AU2018296096B2 (en) * | 2017-07-06 | 2021-07-01 | Sony Corporation | Communication device and communication method |
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Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2010035068A (ja) * | 2008-07-31 | 2010-02-12 | Hitachi Ltd | 無線ネットワークシステム |
WO2013002206A1 (ja) * | 2011-06-27 | 2013-01-03 | 株式会社エヌ・ティ・ティ・ドコモ | 無線通信方法、無線通信システム及び移動局 |
Family Cites Families (11)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US8493887B2 (en) * | 2008-12-30 | 2013-07-23 | Qualcomm Incorporated | Centralized control of peer discovery pilot transmission |
US9351340B2 (en) * | 2009-04-08 | 2016-05-24 | Nokia Technologies Oy | Apparatus and method for mode selection for device-to-device communications |
US8195088B2 (en) * | 2010-03-04 | 2012-06-05 | The Chamberlain Group, Inc. | Method and apparatus pertaining to wireless communications systems |
US8504052B2 (en) * | 2010-05-06 | 2013-08-06 | Nokia Corporation | Measurements and fast power adjustments in D2D communications |
US9173110B2 (en) * | 2010-10-28 | 2015-10-27 | Lg Electronics Inc. | Method and apparatus for measuring a channel status between terminals in a wireless access system that supports cooperative communication |
US8521886B2 (en) * | 2011-01-19 | 2013-08-27 | Qualcomm Incorporated | Methods and apparatus for determining and/or using a communications mode |
CN103460780B (zh) * | 2011-03-31 | 2017-11-14 | 安华高科技通用Ip(新加坡)公司 | 用于促进设备到设备通信的方法和装置 |
US20130083684A1 (en) | 2011-09-30 | 2013-04-04 | Electronics And Telecommunications Research Institute | Methods of device to device communication |
EP2826155A1 (en) * | 2012-03-15 | 2015-01-21 | Telefonaktiebolaget LM Ericsson (Publ) | Verification in a wireless communication system |
WO2013191518A1 (ko) * | 2012-06-22 | 2013-12-27 | 엘지전자 주식회사 | 기기-대-기기 통신을 위한 스케줄링 방법 및 이를 위한 장치 |
CN102983944A (zh) * | 2012-12-04 | 2013-03-20 | 中国联合网络通信集团有限公司 | 数据传输处理方法、装置和系统 |
-
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Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP2010035068A (ja) * | 2008-07-31 | 2010-02-12 | Hitachi Ltd | 無線ネットワークシステム |
WO2013002206A1 (ja) * | 2011-06-27 | 2013-01-03 | 株式会社エヌ・ティ・ティ・ドコモ | 無線通信方法、無線通信システム及び移動局 |
JP2013034165A (ja) | 2011-06-27 | 2013-02-14 | Ntt Docomo Inc | 無線通信方法、無線通信システム及び移動局 |
Non-Patent Citations (2)
Title |
---|
LTE DIRECT OVERVIEW, 2012, Retrieved from the Internet <URL:http://s3.amazonaws.com/sdieee/205-LTE+Direct+IEEE+VTC+San+Diego.pdf> |
See also references of EP2996437A4 |
Cited By (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP7453548B2 (ja) | 2020-09-23 | 2024-03-21 | 株式会社デンソーウェーブ | 無線監視システム |
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