WO2000064065A1 - Recepteur et procede d'acquisition synchrone - Google Patents
Recepteur et procede d'acquisition synchrone Download PDFInfo
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- WO2000064065A1 WO2000064065A1 PCT/JP2000/002334 JP0002334W WO0064065A1 WO 2000064065 A1 WO2000064065 A1 WO 2000064065A1 JP 0002334 W JP0002334 W JP 0002334W WO 0064065 A1 WO0064065 A1 WO 0064065A1
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- peak
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- correlation
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- 238000000034 method Methods 0.000 title claims description 39
- 230000001360 synchronised effect Effects 0.000 title claims description 4
- 238000001514 detection method Methods 0.000 claims abstract description 57
- 238000004364 calculation method Methods 0.000 claims abstract description 44
- 238000004891 communication Methods 0.000 claims description 85
- 230000007480 spreading Effects 0.000 claims description 66
- 238000009792 diffusion process Methods 0.000 abstract 4
- 230000001105 regulatory effect Effects 0.000 abstract 3
- 230000008030 elimination Effects 0.000 abstract 1
- 238000003379 elimination reaction Methods 0.000 abstract 1
- 238000010586 diagram Methods 0.000 description 35
- 230000005684 electric field Effects 0.000 description 30
- 230000008569 process Effects 0.000 description 17
- 230000005540 biological transmission Effects 0.000 description 9
- 238000012935 Averaging Methods 0.000 description 3
- 230000008859 change Effects 0.000 description 3
- LKAPTZKZHMOIRE-KVTDHHQDSA-N (2s,3s,4s,5r)-3,4-dihydroxy-5-(hydroxymethyl)oxolane-2-carbaldehyde Chemical compound OC[C@H]1O[C@H](C=O)[C@@H](O)[C@@H]1O LKAPTZKZHMOIRE-KVTDHHQDSA-N 0.000 description 1
- 241000282693 Cercopithecidae Species 0.000 description 1
- 230000001174 ascending effect Effects 0.000 description 1
- 238000005311 autocorrelation function Methods 0.000 description 1
- LKAPTZKZHMOIRE-UHFFFAOYSA-N chitose Natural products OCC1OC(C=O)C(O)C1O LKAPTZKZHMOIRE-UHFFFAOYSA-N 0.000 description 1
- 230000001934 delay Effects 0.000 description 1
- 230000003111 delayed effect Effects 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 230000002452 interceptive effect Effects 0.000 description 1
- 230000007704 transition Effects 0.000 description 1
Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/707—Spread spectrum techniques using direct sequence modulation
- H04B1/7073—Synchronisation aspects
- H04B1/7085—Synchronisation aspects using a code tracking loop, e.g. a delay-locked loop
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/707—Spread spectrum techniques using direct sequence modulation
- H04B1/7073—Synchronisation aspects
- H04B1/7075—Synchronisation aspects with code phase acquisition
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/707—Spread spectrum techniques using direct sequence modulation
- H04B1/7097—Interference-related aspects
- H04B1/711—Interference-related aspects the interference being multi-path interference
- H04B1/7113—Determination of path profile
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W88/00—Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
- H04W88/08—Access point devices
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/707—Spread spectrum techniques using direct sequence modulation
- H04B1/7097—Interference-related aspects
- H04B1/711—Interference-related aspects the interference being multi-path interference
- H04B1/7115—Constructive combining of multi-path signals, i.e. RAKE receivers
- H04B1/7117—Selection, re-selection, allocation or re-allocation of paths to fingers, e.g. timing offset control of allocated fingers
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B2201/00—Indexing scheme relating to details of transmission systems not covered by a single group of H04B3/00 - H04B13/00
- H04B2201/69—Orthogonal indexing scheme relating to spread spectrum techniques in general
- H04B2201/707—Orthogonal indexing scheme relating to spread spectrum techniques in general relating to direct sequence modulation
- H04B2201/70702—Intercell-related aspects
Definitions
- the present invention relates to a receiving apparatus, and more particularly to a receiving apparatus for performing communication of a code division multiple access (hereinafter, referred to as “CDMA”) method and a synchronization acquisition method.
- CDMA code division multiple access
- the receiving apparatus can perform demodulation by despreading the signal that has been spread and transmitted with the spreading code in the transmitting apparatus in phase with the transmitting apparatus. Therefore, before performing data communication, it is necessary to detect the timing at which the known spread code should be applied to the received signal in order to synchronize the data demodulation.
- the received signal is multiplied by shifting the phase with a known spread code, and it is detected how far the phase is shifted to obtain a cross-correlation. This process is called synchronization acquisition.
- synchronization acquisition may be performed for a plurality of transmission devices. A conventional receiving device that performs such synchronization acquisition will be described with reference to FIG.
- FIG. 1 is a block diagram showing a configuration of a conventional CDMA receiving apparatus.
- a signal transmitted from each transmitting station is received via an antenna 1301, and then output to a radio receiving unit 1302.
- radio receiving section 1302 the signal received via antenna 1301 is converted to a received baseband signal. This received baseband signal is output to correlation calculating section 133.
- the received baseband signal is despread using the same known spreading code as that used for the spreading processing in the transmitting station, and the correlation value is calculated. Is calculated.
- the correlation calculation unit 133 a matched-filled evening sliding correlator or the like is conventionally known.
- the correlation value calculated by the correlation calculation section 133 is output to the delay profile creation section 134.
- the delay profile creation unit 1344 in order to suppress a noise component included in the correlation value output from the correlation calculation unit 1303, an averaging process is performed on the correlation value, so that the delay A profile is created.
- the created delay profile is output to the peak detecting section 135.
- the peak detection section 135 detects the maximum value of the averaged correlation value (hereinafter referred to as “peak correlation value”) in the delay profile output from the delay profile creation section 1304. Also, the phase of the detected peak correlation value in the delay profile (hereinafter referred to as “peak phase”) is output to the demodulation control unit 1306. By performing a despreading process on the received signal in accordance with the peak phase, a signal transmitted from each transmitting station can be demodulated.
- the demodulation control section 1306 stores the peak phase output from the peak detection section 135. Further, a timing signal for demodulating a signal transmitted from each transmitting station is output to baseband demodulation section 1307.
- the baseband demodulation unit 1307 performs despreading processing on the reception baseband signal output from the wireless reception unit 1302 based on the timing signal output from the demodulation control unit 1306. As a result, demodulated data corresponding to each transmitting station can be obtained.
- the correlation value calculated by the correlation calculator using the known spreading code includes the effect of the self-correlation component of the spreading code.
- the peak phase corresponding to each transmitting station is not accurately detected due to various factors as described below.
- first transmitting station the transmitting station that provides the strongest received electric field strength by the receiving device
- second transmitting station the transmitting station whose received electric field strength obtained from the first transmitting station is weak.
- the received electric field strength of the signal from the second transmitting station is weaker than the received electric field strength of the signal from the first transmitting station.
- the original peak correlation value of the station may be smaller than the autocorrelation component in the signal from the first transmitting station.
- the autocorrelation component may be detected as the peak correlation value of the second transmitting station. As a result, the peak phase of the second transmitting station may not be detected accurately.
- the first transmitting station when detecting the peak phase corresponding to a certain transmitting station (for example, the first transmitting station), if the received electric field strength of the signal from the first transmitting station changes during the creation of the delay profile, the first transmitting station
- the autocorrelation component in the signal from the station or another transmitting station may be larger than the original peak correlation value of the first transmitting station.
- another erroneous peak phase may be detected as the peak phase of the first transmitting station.
- the correlation value when calculating the correlation value, there may be a case where the peak correlation value of the second transmitting station and the odd correlation component in the signal from the first transmitting station, that is, the negative autocorrelation component, coincide with each other. is there. In this case, the correlation value as a whole at this timing is observed as a small value, and another erroneous peak phase may be detected as the peak phase of the second transmitting station.
- the original peak phase may not be accurately detected as the peak phase corresponding to each transmitting station. Will be less accurate.
- An object of the present invention is to provide a receiving apparatus capable of accurately detecting an original peak phase corresponding to each transmitting station with a small amount of calculation without being affected by an autocorrelation component of a spreading code included in a correlation value. It is.
- the purpose of this is to calculate the autocorrelation component of the communication partner in the delay profile using the autocorrelation value of the known spreading code calculated in advance, and consider the calculated autocorrelation component to determine the peak of the communication partner to be demodulated. Achieved by detecting the phase.
- FIG. 1 is a block diagram showing a configuration of a conventional CDMA receiving apparatus
- FIG. 2 is a block diagram showing a configuration of a receiving apparatus according to the first embodiment of the present invention
- FIG. FIG. 1 is a schematic diagram showing an example of a delay profile created by the delay profile creation unit 105 of the receiving apparatus according to 1;
- FIG. 3B is a schematic diagram showing a spread code autocorrelation value stored by correlation storage section 108 in the receiving apparatus according to the first embodiment
- FIG. 3C is a schematic diagram showing a spread code autocorrelation value phase-adjusted by the correlation phase adjustment unit 107 of the receiving apparatus according to the first embodiment
- FIG. 3D is a schematic diagram showing a spread code autocorrelation value whose amplitude has been adjusted by weighting section 109 in the receiving apparatus according to the first embodiment
- FIG. 3E is a schematic diagram showing a delay profile in which the auto-correlation component of the first transmitting station has been removed by the correlation removing unit 110 in the receiving apparatus according to the first embodiment;
- FIG. 4 is a flowchart showing a receiving processing operation of the receiving apparatus according to the first embodiment
- FIG. 5 is a block diagram illustrating a configuration of a receiving device according to the second embodiment of the present invention
- FIG. 6 is a schematic diagram illustrating an example of a delay profile created by the receiving device according to the second embodiment
- FIG. 7 is a flowchart showing the reception processing operation of the receiving apparatus according to the second embodiment
- FIG. 8 is a block diagram showing a configuration of a receiving apparatus according to a third embodiment of the present invention
- FIG. 9A is an example of a delay profile created by a delay profile creating unit in the receiving apparatus according to the third embodiment.
- FIG. 9B is a schematic diagram showing the contents of the spreading code autocorrelation value stored by the pseudo peak phase storage unit in the receiving apparatus according to the third embodiment.
- FIG. 9C is a schematic diagram showing a method for calculating a pseudo peak phase by the pseudo peak phase adjustment unit in the receiving apparatus according to the third embodiment.
- FIG. 10 is a flowchart showing a reception processing operation of the receiving apparatus according to the third embodiment.
- FIG. 11 is a block diagram showing a configuration of a receiving apparatus according to a fourth embodiment of the present invention.
- FIG. 128 is a schematic diagram showing an example of the delay profile created by the delay profile creation unit 105 in the receiving apparatus according to the fourth embodiment;
- FIG. 12C is a schematic diagram showing a method of calculating a candidate peak phase by the candidate peak phase calculation unit 1002 in the receiving apparatus according to the fourth embodiment
- FIG. 13 is a flowchart showing the reception processing operation of the receiving apparatus according to the fourth embodiment.
- a first component for detecting the peak phase of the predetermined transmitting station by removing the correlation component of the other transmitting station that affects the detection of the peak correlation value of the predetermined transmitting station from the delay profile. Affects the detection of the peak correlation value of a given transmitting station.
- the second mode for detecting the peak phase of the predetermined transmitting station in consideration of the phase of the correlation component of the predetermined transmitting station or another transmitting station.
- FIG. 2 is a block diagram showing a configuration of the receiving device according to the first embodiment of the present invention.
- radio reception section 102 converts a signal received via antenna 101 into a reception baseband signal, and converts the reception baseband signal into correlation calculation section 103 and baseband demodulation section 111. And output to 2.
- the signal received via the antenna 101 is a signal obtained by multiplexing signals transmitted from a plurality of transmitting stations in the same frequency band.
- the correlation calculator 103 multiplies the received baseband signal output from the radio receiver 102 by shifting the phase of the received baseband signal by a known spreading code, and calculates a correlation value of each phase.
- a known spreading code is the same spreading code used at the time of spreading processing in each transmitting station.
- the delay profile creation unit 105 suppresses the noise component included in the correlation value sent from the correlation value calculation unit 103 or the correlation removal unit 110 via the selection unit 104 to suppress the noise component. After averaging the values, a delay profile is created and output to the peak detector 106.
- the peak detector 106 detects the maximum value of the averaged correlation values (hereinafter referred to as “peak correlation value”) in the delay profile sent via the selector 104, and detects the detected peak correlation. Detects the phase (hereinafter referred to as “peak phase”) in the value delay profile. Note that the baseband demodulation unit 112 described later performs despreading processing on the received baseband signal in accordance with the peak phase detected as described above, so that the signal transmitted from each transmitting station can be obtained. Return Can be adjusted. Further, peak detecting section 106 outputs the detected peak phase to correlation phase adjusting section 107 and demodulation control section 111, and outputs the detected peak correlation value to weighting section 109.
- peak correlation value the maximum value of the averaged correlation values
- the correlation storage unit 108 stores the spreading code autocorrelation in advance, and outputs the stored spreading code autocorrelation value to the correlation phase adjustment unit 107.
- the spread code autocorrelation value is obtained by calculating the correlation value for each phase by shifting the phase of the known spread code and multiplying it by a known spread code.
- the correlation phase adjustment unit 107 adjusts the phase of the spread code autocorrelation value sent from the correlation storage unit 108 using the peak phase sent from the peak detection unit 106,
- the spreading code autocorrelation value is output to weighting section 109.
- the weighting section 109 uses the peak correlation value sent from the peak detection section 106 to calculate the amplitude of the correlation value in the phase-adjusted spread code autocorrelation value sent from the correlation phase adjustment section 107. It adjusts and outputs the spread code autocorrelation value after the amplitude adjustment to correlation removal section 110.
- the correlation removing unit 110 subtracts the correlation value sent from the correlation calculating unit 103 from the amplitude-adjusted spread code autocorrelation value sent from the weighting unit 109 and outputs the subtraction result. I do.
- the demodulation control unit 111 stores the peak phase sent from the peak detection unit 106, and sends a timing signal for demodulating the signal transmitted from each transmitting station to the baseband demodulation unit 112. Output.
- the baseband demodulation unit 112 performs a despreading process on the reception baseband signal transmitted from the wireless reception unit 102 based on the timing signal transmitted from the demodulation control unit 111.
- the demodulated data corresponding to each transmitting station is output.
- the original peak correlation value of the transmitting station having a weak received electric field strength has the largest correlation value, and therefore, it is necessary to correspond to the transmitting station.
- the original correlation value peak and peak phase can be detected.
- FIG. 3 is a schematic diagram illustrating processing for a correlation value from a correlation calculating unit in the receiving apparatus according to the first embodiment of the present invention.
- the following description will be given by taking as an example a case where a peak phase corresponding to the second transmitting station whose received electric field strength is weaker than that of the first transmitting station is described. Can also be detected for the peak phase corresponding to.
- a signal transmitted from each transmitting station is received via an antenna 101, and then output to a radio receiving unit 102.
- radio receiving section 102 the signal received via antenna 101 is converted to a received baseband signal.
- This received baseband signal is output to correlation calculating section 103.
- Correlation calculation section 103 despreads the received baseband signal using the same known spreading code as that used for spreading processing at the transmitting station, and calculates a correlation value for each phase. Is done.
- the correlation value from the correlation calculator 103 or the correlation remover 110 is input to the delay profile generator 105 by the selector 110.
- the correlation value calculated by the correlation calculation unit 103 is input to the delay profile creation unit 105 by the selection unit 110.
- the delay profile creation unit 105 an averaging process is performed on the correlation value in order to suppress a noise component included in the correlation value output from the correlation calculation unit 103, so that the delay profile Is created.
- the created delay port file is output to the peak detector 106.
- FIG. 3A is a schematic diagram illustrating an example of a delay profile created by delay profile creating section 105 of the receiving apparatus according to the first embodiment of the present invention. As shown in Fig. 3A, there is an averaged correlation value for each phase. Here, it is assumed that the original peak correlation values corresponding to each of the first transmitting station and the second transmitting station appear in the phase as shown in FIG. 3A.
- the peak detection unit 106 detects a correlation value corresponding to the maximum value of the first transmitting station as a peak correlation value, and the phase of the peak correlation value is set to the peak value. Detected as phase.
- the peak phase corresponding to the first transmitting station is output to correlation phase adjustment section 107 and demodulation control section 111.
- the peak correlation value corresponding to the first transmitting station is output to weighting section 109.
- FIG. 3B is a schematic diagram showing spreading code autocorrelation values stored in correlation storage section 108 in the receiving apparatus according to the first embodiment of the present invention.
- the spreading code autocorrelation value is a set of correlation values for each phase obtained by multiplying a known spreading code by the same spreading code while shifting the phase. That is, a delay profile obtained by performing despreading processing on a received signal including only a signal from a certain transmitting station using the above known spreading code is represented by each of the above spreading code autocorrelation values. This is equivalent to the one obtained by changing the amplitude and phase of the correlation value.
- FIG. 3C is a schematic diagram showing a spread code autocorrelation value whose phase has been adjusted by the correlation phase adjustment unit 107 of the receiving apparatus according to the first embodiment of the present invention. That is, the phase of the spreading code autocorrelation value shown in FIG. 3B is such that the phase of the maximum value of the correlation value in the spreading code autocorrelation value matches the peak phase corresponding to the first transmitting station shown in FIG. 3A. So that it is adjusted.
- the spreading code autocorrelation value shown in FIG. 3B becomes as shown in FIG. 3C. Since the autocorrelation function is repeated in a cycle in which the spreading code is used, the phase of the spreading code autocorrelation value is adjusted by circulating in the direction of the arrow shown in FIG. 3C. The phase-adjusted spread code autocorrelation value is output to weighting section 109.
- the spread code autocorrelation value after the phase adjustment sent from the correlation phase adjustment unit 107 is the peak correlation value corresponding to the first transmitting station sent from the peak detection unit 106.
- the amplitude is adjusted by using this.
- the amplitude adjustment at this time will be described with reference to FIG. 3D.
- FIG. 3D is a schematic diagram showing a spreading code self-correlation value whose amplitude has been adjusted by weighting section 109 in the receiving apparatus according to Embodiment 1 of the present invention.
- amplitude adjustment is performed so that the maximum value of the correlation value in the spreading code autocorrelation value becomes equal to the peak correlation value from the peak detection unit 106 corresponding to the first transmitting station.
- the amplitude of the correlation value other than the maximum value in the spread code autocorrelation value is adjusted based on the ratio of the maximum value to the peak correlation value corresponding to the first transmitting station. That is, the correlation values other than the maximum value are reduced or expanded only by the rate at which the maximum value is reduced or expanded.
- the spreading code autocorrelation value after the phase adjustment shown in FIG. 3C is as shown in FIG. 3D.
- the spreading code auto-correlation value obtained in this way can be said to be a pseudo-creation of the auto-correlation component of the first transmitting station, which is included in the delay profile created by the delay profile creating unit 105.
- the autocorrelation component of the first transmitting station is obtained when the received signal from only the first transmitting station is subjected to despreading processing using the above-mentioned known spreading code. Is the correlation value.
- the spread code autocorrelation value after the amplitude adjustment is output to correlation removal section 110.
- the correlation removing unit 110 subtracts the correlation value sent from the correlation calculating unit and the spread code autocorrelation value after amplitude adjustment sent from the weighting unit. That is, the spread code autocorrelation value after the amplitude adjustment is subtracted from the correlation value sent from the correlation calculation unit.
- the detected auto-correlation component of the signal from the transmitting station that is, the signal from the first transmitting station, can be removed. The subtraction result at this time will be described with reference to FIG. 3E.
- FIG. 3E is a schematic diagram showing a delay profile in which the auto-correlation component of the first transmitting station has been removed by the correlation removing unit 110 in the receiving apparatus according to the first embodiment of the present invention.
- the peak correlation value of the second transmitting station is the maximum value. That is, when detecting the peak correlation value of the second transmitting station, the detection of the autocorrelation component of the first transmitting station by mistake is prevented.
- the selection unit 110 sends the first transmission station to the delay profile creation unit 105 by using the correlation removal unit 110 instead of the correlation value calculated by the correlation calculation unit 103.
- the correlation value from which the autocorrelation component has been removed is output.
- the peak correlation value and the peak phase corresponding to the second transmitting station are accurately detected by the peak detection unit 106, and the above-described processing is performed using them, thereby obtaining the correlation calculation unit 1 0
- the auto-correlation component of the second transmitting station is removed in addition to the station.
- a peak correlation value and a peak phase corresponding to a predetermined transmitting station are detected.
- the demodulation controller 111 stores the detected peak phase corresponding to each transmitting station. As described above, after all the peak correlation values and the peak phases corresponding to the predetermined transmitting station are detected, the demodulation control unit 111 sends the baseband demodulation unit 112 from each transmitting station. An evening signal for demodulating the transmitted signal is output. The baseband demodulation unit 112 responds to each transmitting station by performing despreading processing on the baseband signal received from the wireless reception unit 102 based on the timing signal from the demodulation control unit 111. Yes Demodulated data is obtained.
- FIG. 4 is a flowchart showing a reception processing operation of the receiving apparatus according to the first embodiment of the present invention.
- a signal received via an antenna 101 is converted into a reception baseband signal by a radio reception unit 102. Further, the correlation between the received baseband signal and the known spread code is obtained by the correlation calculator 103. In ST 302, the correlation value calculated by correlation calculation section 102 is transmitted to delay profile creation section 105 by selection section 104.
- the delay profile creation unit 105 creates a delay profile. Thereafter, the peak detection unit 106 detects a peak correlation value and a peak phase in the delay profile. The detected peak phase is stored in the demodulation control unit 111.
- ST 304 it is confirmed whether the peak correlation values and the peak phases corresponding to all the transmitting stations to be detected have been detected.
- the number of transmitting stations to be detected may be given by the number of stations, or may be given by a threshold of a reception level value such as a peak correlation value. Peak correlation values for all transmitting stations and If a peak phase has been detected, the process proceeds to ST 308; conversely, if a peak phase has not been detected, the process proceeds to ST 305.
- the spread code autocorrelation value output from correlation storage section 108 is adjusted in phase by correlation phase adjustment section 107 in accordance with the detected peak phase.
- the phase-adjusted spreading code autocorrelation value is amplitude-adjusted by weighting section 109 in accordance with the amplitude of the detected peak correlation value.
- the detected auto-correlation component of the transmitting station is removed from the correlation value calculated by correlation calculating section 103 by correlation removing section 110.
- the selecting section 104 sends the correlation value from the correlation removing section 110 instead of the correlation value from the correlation calculating section 103 to the delay profile creating section 105. Thereafter, the process returns to ST303, and the above-described process is repeated.
- a timing signal for demodulating a signal transmitted from each transmitting station is output from demodulation control section 111 to baseband demodulation section 112.
- the baseband demodulation unit 112 performs despreading processing on the reception baseband signal from the radio reception unit 102 based on the timing signal from the demodulation control unit 111, thereby making each transmission possible. Demodulated data corresponding to the station is obtained.
- the correlation value calculated by the correlation calculator 103 is generated by creating a correlation value in a pseudo manner and removing the pseudo-created correlation value from the correlation value calculated by the correlation calculator 103.
- the autocorrelation component of the first transmitting station is removed from the value.
- the original peak correlation value corresponding to the second transmitting station becomes the maximum as the correlation value
- the peak detector 106 detects the peak correlation value. Therefore, the peak correlation value and the peak phase corresponding to the second transmitting station are accurately detected.
- a pseudo-peak having a magnitude greater than or equal to the original peak correlation value of each transmitting station in the created delay profile due to a change in the received electric field strength of the signal from each transmitting station, etc. is present, even if a pseudo peak is erroneously detected as the peak correlation value of the transmitting station, the peak phase of the transmitting station is detected by taking into account the phase of the pseudo peak.
- FIG. 5 is a block diagram showing a configuration of the receiving apparatus according to the second embodiment of the present invention.
- the configurations of the antenna 101, the radio receiving unit 102, the correlation calculating unit 103, the delay profile creating unit 105, and the peak detecting unit 106 are the same as those described above. Since it is the same as that in the embodiment 1 (FIG. 2), detailed description is omitted.
- the pseudo peak phase storage unit 402 stores the pseudo code corresponding to a pseudo peak having a particularly large value (hereinafter referred to as “pseudo peak phase”) in the spread code autocorrelation value in the first embodiment.
- the phase difference between the peak phase and the original peak correlation value is stored.
- the spreading code autocorrelation value itself is the one stored by the correlation storage unit 108 in the first embodiment. Is similar to
- the pseudo peak phase storage unit 402 sets, for example, a predetermined threshold value, and sets a pseudo peak having a correlation value equal to or larger than the threshold value in the spread code autocorrelation value to the original value.
- the phase difference between the peak correlation value and is stored as a pseudo peak phase.
- the pseudo peak phase storage unit 402 may store a predetermined number of pseudo peak phases in the order of the correlation values in the spread code autocorrelation value in descending order. .
- the pseudo peak phase storage section 402 outputs the stored pseudo peak phase to the peak phase adjustment section 401.
- the peak phase adjustment unit 401 calculates the peak phase assumed as the original peak phase ( Hereinafter, this is referred to as “candidate peak phase.” That is, the peak phase adjustment unit 401 sets the original peak phase as a candidate peak phase assuming that the peak phase from the peak detection unit 106 is a pseudo peak having a relatively large correlation value. calculate. Also, the peak phase adjustment unit 401 outputs the calculated candidate peak phase to the demodulation control unit 403.
- a method of calculating the candidate peak phase will be described with reference to FIG. FIG.
- FIG. 6 is a schematic diagram illustrating an example of a delay profile created by the receiving device according to the second embodiment of the present invention.
- a pseudo peak having a larger correlation value than the original peak correlation value corresponding to a certain transmitting station exists.
- the phase difference between the pseudo peak shown in FIG. 6 and the original peak correlation value is sent from the pseudo peak phase storage unit 402 to the peak phase adjustment unit 401 as a pseudo peak phase.
- the pseudo peak phase is + 2chhip.
- the peak detection unit 106 calculates not the original peak correlation value but the original peak phase when this pseudo peak is detected as the candidate peak phase as the peak correlation value. .
- the peak phase adjustment unit 401 outputs the calculated candidate peak phase to the demodulation control unit 403. Needless to say, the peak phase adjustment unit 401 calculates a candidate peak phase for each pseudo peak sent from the pseudo peak phase storage unit 402 and outputs the candidate peak phase to the demodulation control unit 400. .
- the demodulation controller 403 stores the peak phase from the peak detector 106 and the candidate peak phase from the peak phase adjuster 401. Based on the peak phase from the peak detection unit 106, the demodulation control unit 4003 first converts a timing signal for demodulating a signal transmitted from the transmitting station corresponding to the peak phase into a baseband demodulation unit. Output to 404.
- the demodulation control unit 403 determines that the peak phase is a pseudo peak. Then, a timing signal based on the candidate peak phase is output to baseband demodulation section 404. Further, when the same decision as above is received from the baseband demodulation section 404, the demodulation control section 403 outputs a timing signal based on another candidate peak phase to the baseband demodulation section 404. I do.
- the baseband demodulation unit 404 performs despreading processing on the received baseband signal sent from the wireless reception unit 102 based on the timing signal sent from the demodulation control unit 403, Outputs demodulated data corresponding to each transmitting station. At this time, the baseband demodulation unit 404 determines whether the demodulation result is correct or not, and outputs the determination result to the demodulation control unit 403.
- FIG. 7 is a flowchart showing a reception processing operation of the receiving apparatus according to the second embodiment of the present invention.
- the signal received via antenna 101 is The signal is converted into a baseband signal by the receiving unit 102. Further, the correlation between the received baseband signal and the known spread code is obtained by the correlation calculator 103. In addition, a delay profile is created by the delay profile creation unit 105. In ST 602, peak detector 106 detects a peak phase in the delay profile. The detected peak phase is stored in the demodulation controller 403.
- the candidate peak phase is calculated by the peak phase adjustment unit 401 using the pseudo peak phase sent from the pseudo peak phase storage unit 402.
- the demodulation control section 403 outputs a timing signal based on the peak phase from the peak detection section 106 to the baseband demodulation section 404.
- baseband demodulation section 404 the reception baseband signal sent from radio reception section 102 is demodulated based on the timing signal sent from demodulation control section 402. Thereafter, the demodulation result is output from baseband demodulation section 404 to demodulation control section 403.
- the demodulation control section 403 determines the demodulation result from the baseband demodulation section 404. If the demodulation result is correct, the process shifts to ST 607. Conversely, if the demodulation result is incorrect, the process shifts to ST 606.
- the timing signal is output again from demodulation control section 403 to baseband demodulation section 404.
- the timing signal at this time is obtained based on the candidate peak phase sent from the peak phase adjustment unit 401.
- the baseband demodulation unit 205 demodulates the received baseband signal based on the timing signal obtained at the candidate peak phase. After demodulation, the demodulation result is output from baseband demodulation section 205 to demodulation control section 403. Thereafter, the processing returns to ST 604.
- the demodulation control unit 403 determines that the peak phase corresponding to the transmitting station to be demodulated by the baseband demodulation unit 404 has been correctly detected. Is done. Therefore, the demodulation process for the received baseband signal is continued by the baseband demodulation unit 404.
- a pseudo electric field having a magnitude equal to or greater than the original peak correlation value of a certain transmitting station is caused by a change in the received electric field strength of a signal from the transmitting station.
- the phase difference between the pseudo peak having a certain magnitude of correlation value and the original peak correlation value is stored based on the pre-stored spreading code autocorrelation value.
- the pseudo peak phase storage unit 402 in the present embodiment has a spreading code Since only the phase of the pseudo peak in the autocorrelation value is stored, the required amount of memory can be reduced in the present embodiment as compared with the first embodiment.
- the receiving apparatus even when the received electric field strength of a signal from each transmitting station varies, the correlation of another transmitting station having a strong received electric field strength, which affects the detection of the peak correlation value of a predetermined transmitting station. It is intended to accurately detect the peak phase of the transmitting station in consideration of the phase of the component.
- the receiving apparatus according to the third embodiment will be described with reference to FIG.
- FIG. 8 is a block diagram showing a configuration of the receiving apparatus according to the third embodiment of the present invention.
- the antenna 101, the radio receiving unit 102, the correlation calculating unit 103, the delay profile creating unit 105, the demodulation control unit 111, and the baseband demodulating unit 112 The configuration of the first embodiment is described in the first embodiment (FIG. 2).
- the pseudo peak phase storage section 402 is the same as that in the above-described second embodiment (FIG. 5), and thus detailed description is omitted.
- the peak detection unit 701 detects the peak phase in the delay profile sent from the delay profile creation unit 105 and outputs the peak phase to the pseudo peak phase adjustment unit 702 and the demodulation control unit 111. However, the peak detection unit 7101 does not re-detect the peak phase detected by the previous processing. That is, the peak detecting unit 701 detects a signal excluding the detected peak phase sent from the pseudo peak phase adjusting unit 72.
- the quasi-peak phase adjuster 702 uses the peak phase detected by the peak detector 701 and the quasi-peak from the quasi-peak phase storage unit 402 to correspond to the peak phase detected above.
- the pseudo peak of the transmitting station to be calculated is calculated.
- a method of calculating a pseudo peak by the pseudo peak phase adjustment unit 720 will be described with reference to FIG.
- FIG. 9A is a schematic diagram showing an example of the delay profile created by the delay profile creation unit 105 in the receiving device according to the third embodiment of the present invention.
- FIG. 9B is a schematic diagram showing the contents of the spreading code autocorrelation values stored in pseudo peak phase storage section 402 in the receiving apparatus according to the third embodiment of the present invention.
- FIG. 9C is a schematic diagram showing a method for calculating the phase of a pseudo peak by the pseudo peak phase adjustment unit 720 in the receiving apparatus according to the third embodiment of the present invention.
- the delay profile as shown in FIG. 9A is created by the delay profile creation unit 105, after the peak correlation value in the phase of A corresponding to the first transmitting station is detected as the peak correlation value, Normally, a peak correlation value at the phase of C corresponding to the second transmitting station is detected.
- the original peak correlation value of the second transmitting station is: The auto-correlation component in the signal from the first transmitting station, that is, smaller than the pseudo peak in the phase B shown in FIG. 9A. For this reason, after the peak correlation value corresponding to the first transmitting station is detected, a pseudo peak in the phase B is detected.
- pseudo peak phase storage section 402 outputs the pseudo peak phase in the spread code autocorrelation value to pseudo peak phase adjustment section 720. I do.
- FIG. 9B shows an example in which the pseudo peak phase of the pseudo peak shown in FIG. 9A is calculated as 2chhip.
- the pseudo-peak phase adjustment unit 720 uses the peak correlation value detected by the peak detection unit 71 and the pseudo-peak phase from the pseudo-peak phase storage unit 402 to perform the first transmission in the delay profile. Calculate the phase of the autocorrelation component (pseudo peak) in the signal from the station. For example, when the peak phase of the first transmitting station shown in FIG. 9A is detected as 25 chips by the peak detecting unit 701, the phase of the pseudo peak shown in FIG. As shown in 9C, it is calculated as 25 + 2 chips.
- the correlation value in the phase of the pseudo peak calculated as described above is not detected, and then the peak phase of the second transmitting station is detected. Will be done.
- the above is the method of calculating the pseudo peak by the pseudo peak phase adjustment unit 720.
- the quasi-peak phase adjustment unit 702 outputs the peak phase detected by the peak detection unit 701 and the calculated quasi-peak phase to the peak detection unit 701. As a result, from the next peak detection, the peak detection unit 7101 does not detect the detected peak correlation value of the transmitting station and the pseudo peak in the signal from this transmitting station as the peak correlation value.
- FIG. 10 shows a reception processing operation of the receiving apparatus according to the third embodiment of the present invention. It is a flowchart which shows a work.
- a signal received via antenna 101 is converted to a baseband signal by radio reception section 102. Further, the correlation between the received base spanned signal and the known spread code is obtained by the correlation calculator 103. In addition, a delay profile is created by the delay profile creation unit 105.
- the peak phase in the delay profile is detected by the peak detecting section 701.
- simple maximum value detection is performed.
- the maximum value excluding the correlation value at that phase is detected.
- the detected peak phase is stored in the demodulation control unit 111.
- ST903 it is confirmed whether peak correlation values and peak phases corresponding to all the transmitting stations to be detected have been detected.
- the number of transmitting stations to be detected may be given by the number of stations, or may be given by a threshold of a reception level value such as a peak correlation value. If the peak correlation values and peak phase forces corresponding to all the transmitting stations have been detected, the process proceeds to ST905, and if not, the process proceeds to ST904. Transition.
- the pseudo peak phase adjuster 7202 calculates a pseudo peak phase in accordance with the detected peak phase. Furthermore, the pseudo-peak phase adjuster 702 outputs the peak phase and the pseudo-peak phase force detected phase to the peak detector 71. Thereafter, the processing returns to ST902.
- a timing signal for demodulating a signal transmitted from each transmitting station is output from demodulation control section 111 to spanned demodulation section 112.
- the baseband demodulation unit 112 reverses the received baseband signal from the wireless reception unit 102 based on the timing signal from the demodulation control unit 111.
- demodulated data corresponding to each transmitting station is obtained.
- the received electric field strength of the signal from the second transmitting station is weaker than the received electric field strength of the signal from the first transmitting station, after detecting the peak phase corresponding to the first transmitting station, By calculating the phase at which the autocorrelation value in the signal from the first transmitting station increases, and detecting the peak phase corresponding to the second transmitting station, the calculated phase is excluded and the second phase is detected.
- the original peak correlation value of the transmitting station is accurately detected even if it is small.
- pseudo peak phase storage section 402 in the present embodiment is
- the overall phase in this phase is Even if the correlation value becomes smaller, the original peak phase of the transmitting station can be detected in consideration of the phase of the odd correlation component of the other transmitting station.
- An odd correlation component having a large value is included in the correlation component of a certain transmitting station.
- the phase of the related component and the peak phase of the predetermined transmitting station match, the correlation value of the predetermined transmitting station at this phase in the delay port file becomes small, and thus the predetermined transmission is performed. Station peak phase may not be detected accurately.
- the phase of the odd correlation component in the spreading code autocorrelation value is stored, and the phase of the odd correlation component is adjusted in accordance with the peak phase of the detected transmitting station.
- the phase of the odd correlation component of the detected transmitting station is set to the peak of the predetermined transmitting station. Is detected as the phase.
- FIG. 11 is a block diagram showing a configuration of the receiving apparatus according to the fourth embodiment of the present invention. Note that in FIG. 11, the antenna 101, the radio receiving unit 102, the correlation calculating unit 103, the delay profile creating unit 105, the demodulation control unit 111, and the baseband demodulating unit 112 The configuration is the same as that in the first embodiment (FIG. 2), and a detailed description thereof will be omitted.
- the peak detector 1001 receives the candidate peak phase described later from the candidate peak phase calculator 1002, and detects the peak phase in the delay profile sent from the delay profile generator 105. Then, the signal is output to the pseudo peak phase calculation unit 1002 and the demodulation control unit 111. Further, if the correlation value at the input candidate peak phase has a certain magnitude even if the correlation value at the input candidate peak phase does not always reach the maximum in the correlation value of the delay profile, the peak detection section 1001 Is output as a peak phase to the pseudo peak phase calculation unit 1002 and the demodulation control unit 111.
- the odd correlation phase storage unit 1003 stores the phase of the odd correlation value, that is, the phase of the correlation value having a large negative absolute value, in the spread code autocorrelation value in the above-described first embodiment. To be stored.
- the spreading code autocorrelation value itself is the same as that stored by the correlation storage unit 108 in the first embodiment described above.
- a certain threshold value may be set as the phase of the correlation value to be stored, and the phase of a correlation value having a correlation value equal to or less than the threshold value may be stored.
- the odd correlation phase storage unit 1003 may store a predetermined number of odd correlation phases in ascending order of correlation values in the spread code autocorrelation values. Good.
- the odd correlation phase storage unit 1003 outputs the stored odd correlation phase to the candidate peak phase calculation unit 1002.
- the candidate peak phase calculation unit 1002 calculates a candidate peak phase using the peak phase detected by the peak detection unit 1001 and the odd correlation phase from the odd correlation phase storage unit 1003. Output to the peak detector 1001.
- a method of calculating a candidate peak phase by the candidate peak phase calculation unit 1002 will be described with reference to FIG.
- FIG. 12A is a schematic diagram showing an example of the delay profile created by the delay profile creation unit 105 in the receiving apparatus according to the fourth embodiment of the present invention.
- FIG. 12B is a schematic diagram showing the contents of the spread code autocorrelation values stored in odd correlation phase storage section 103 in the receiving apparatus according to Embodiment 4 of the present invention.
- FIG. 12C is a schematic diagram showing a method for calculating a candidate peak phase by the candidate peak phase calculation unit 1002 in the receiving apparatus according to the fourth embodiment of the present invention.
- the peak correlation value at the phase of A corresponding to the first transmitting station is detected as the peak correlation value. After that, a pseudo peak in the phase B is detected.
- the C corresponding to the second transmitting station There is a possibility that the peak correlation value at the phase of? That is, there is a possibility that the peak correlation value corresponding to the second transmitting station should originally be detected after the peak correlation value in the phase A corresponding to the first transmitting station is detected.
- the odd-correlation phase storage unit 103 has a spread code autocorrelation value having a correlation value equal to or less than the above-described threshold value.
- the phase of the odd correlation value (odd correlation phase) is output to the candidate peak phase calculation unit 1002.
- FIG. 12B shows an example in which the odd correlation phase corresponding to the peak phase of the second base station shown in FIG. 12A is calculated as 3chhip.
- the candidate peak phase calculation unit 1002 overlaps the odd correlation phase from the odd correlation phase storage unit 1003 with the peak phase of a certain transmission station whose reception electric field strength is weaker than that of the first transmission station.
- the candidate peak phase is calculated using the peak correlation value of the first transmitting station detected by the peak detection unit 1001 and the odd correlation phase. For example, if the peak phase of the first transmitting station shown in FIG. 12A is detected as 25 chips by the peak detecting section 1001, the second transmitting station shown in FIG.
- the peak phase, that is, the candidate peak phase is calculated as 25 + 3 chips as shown in FIG. 12C.
- the candidate peak phase calculator 1002 After the peak detector 101 detects the peak phase of the first transmitting station, the candidate peak phase calculator 1002 outputs the candidate peak phase calculated as described above to the peak detector 1001. Then, the peak phase of the second transmitting station is detected by detecting the candidate peak phase as the peak phase.
- the above is the method of calculating the candidate peak phase by the candidate peak phase calculation unit 1002.
- FIG. 13 is a flowchart showing a reception processing operation of the receiving apparatus according to the fourth embodiment of the present invention.
- a signal received via antenna 101 is converted to a baseband signal by radio reception section 102. Further, the correlation between the received baseband signal and the known spread code is obtained by the correlation calculator 103. Further, a delay profile is created by the delay profile creation unit 105.
- the peak detector 401 detects the peak phase in the delay profile. At the first detection, since the detected peak phase is not stored, simple maximum value detection is performed, and the phase of the detected correlation value is stored. At the second and subsequent detections, the detected peak phase is stored, so the maximum value excluding the correlation value at that phase is detected. In the second and subsequent detections, if the correlation value at the candidate peak phase from the candidate peak phase calculation unit 1002 is equal to or greater than the threshold value, the correlation value is detected as the peak phase. The detected peak phase is stored in the demodulation control unit 107.
- the processing shifts to ST125, and conversely, if not detected, the processing returns to ST1205. Move to 1 204.
- the candidate peak phase is calculated by the candidate peak phase calculation unit 1002 by adjusting the odd correlation phase in accordance with the detected peak phase. 0 Output to 1. After this, the process returns to ST122.
- a timing signal for demodulating a signal transmitted from each transmitting station is output from demodulation control section 111 to baseband demodulation section 112.
- the baseband demodulation unit 112 performs despreading processing on the reception baseband signal from the radio reception unit 102 based on the timing signal from the demodulation control unit 111 so that each transmitting station The demodulation data corresponding to You.
- this phase is set as a candidate peak phase, and this candidate peak phase
- this candidate peak phase is detected as the peak phase of the second transmitting station, so that even if the correlation value of the second transmitting station is small, the second transmitting station The peak phase of can be reliably detected.
- the phase of the odd correlation component in the signal from the other transmitting station is calculated using the autocorrelation value calculated in advance using the spreading code of
- the correlation storage unit 108 in the first embodiment needs to store the spreading code autocorrelation value
- the odd correlation phase storage unit 1003 in the present embodiment Since only the phase of the odd correlation value in the code autocorrelation value is stored, the required memory amount can be reduced in the present embodiment as compared with the first embodiment.
- the receiving apparatus of the present invention comprises: a delay profile creating means for creating a delay profile using a correlation value calculated by using a received signal and a known spread code; and an autocorrelation calculating an autocorrelation value of the known spread code.
- a value calculation unit and a demodulation timing detection unit that detects a demodulation timing of a predetermined communication partner from the delay profile using the autocorrelation value are adopted.
- an autocorrelation value of a known spreading code calculated in advance is used.
- the autocorrelation component of the predetermined communication partner can be removed from the delay profile, and the autocorrelation component of the predetermined communication partner in the delay profile can be estimated. Can be accurately detected.
- the demodulation timing detecting means calculates the autocorrelation component of the communication partner from the autocorrelation value based on the peak phase and peak correlation value of the communication partner for which the demodulation timing has been detected in the delay profile.
- a phase detecting means for detecting the peak phase.
- the detected communication partner's self-correlation value is calculated using an autocorrelation value calculated in advance using a known spreading code.
- the demodulation timing detecting means includes: a phase difference storing means for storing a phase difference of the pseudo peak correlation value in the autocorrelation value with respect to the peak correlation value; A candidate peak phase calculating means for calculating a candidate peak phase from the phase difference based on a peak phase of the other party; and a peak phase of the predetermined communication party based on a demodulation result at a demodulation timing based on the candidate peak phase. And a peak phase determining means for determining the following.
- the demodulation timing detecting means includes a phase difference storing means for storing a phase difference of the pseudo peak correlation value in the autocorrelation value with respect to the peak correlation value, and a communication partner having detected the demodulation timing in the delay profile.
- a pseudo-peak phase calculating means for calculating a phase of the pseudo-peak of the communication partner from the phase difference based on a peak phase, and a peak phase of the non-detection-target communication partner from a phase other than the pseudo peak in the delay profile.
- the demodulation timing detection means may include a phase difference storage means for storing a phase difference between an odd correlation value and a peak correlation value in the autocorrelation value, and a communication partner for which the demodulation timing has been detected in the delay port file.
- An odd-correlation phase calculating means for calculating an odd-correlation phase of the communication partner from the phase difference based on a peak phase; andwhere a correlation value at the odd-correlation phase in the delay profile is equal to or greater than a threshold value, And a peak phase detecting means for detecting the odd correlation phase as a peak phase of a communication partner in a non-detection state.
- the peak correlation value of a certain communication partner and the peak correlation value of another communication partner Even when the phase of the odd correlation component having a large correlation value in the signal coincides with that of the signal, the odd correlation component in the signal from the other communication partner is calculated using the autocorrelation value calculated in advance using a known spreading code.
- the peak phase of the communication partner is detected, a phase having a certain correlation value in the calculated phase is detected as a peak phase, thereby obtaining the original phase of the communication partner. Even if the peak correlation value is small, the peak phase of the communication partner can be accurately detected with a small amount of calculation.
- the wireless communication terminal device of the present invention adopts a configuration including a receiving device, and the receiving device creates a delay profile using a correlation value calculated by a received signal and a known spreading code.
- a radio communication terminal device that performs accurate synchronization acquisition by including a receiving device that can accurately detect the peak phase of the communication partner with a small amount of calculation.
- the base station apparatus of the present invention employs a configuration for performing wireless communication with a wireless communication terminal apparatus including a receiving apparatus, and the receiving apparatus delays using a received signal and a correlation value calculated based on a known spreading code.
- Delay profile creation means for creating a profile; autocorrelation value calculation means for calculating an autocorrelation value of the known spread code; and demodulation timing of a predetermined communication partner from the delay profile using the autocorrelation value.
- demodulation timing detecting means for detecting.
- the synchronization acquisition method of the present invention includes a delay profile creating step of creating a delay profile using a correlation value calculated from a received signal and a known spread code, and calculating an autocorrelation value of the known spread code. Calculating an autocorrelation value; An autocorrelation component calculating step of calculating an autocorrelation component of a communication partner whose demodulation timing has been detected using a correlation value; a step of removing the autocorrelation component from the delay profile; and removing the autocorrelation component of the communication partner.
- the detected communication partner's autocorrelation value is calculated using an autocorrelation value calculated in advance using a known spreading code.
- the synchronization acquisition method of the present invention includes a delay profile creating step of creating a delay profile using a correlation value calculated from a received signal and a known spread code, and calculating an autocorrelation value of the known spread code.
- a peak phase detecting step of detecting a peak phase of a predetermined communication partner from the delay profile.
- the peak phase of the predetermined communication partner is considered in consideration of the phase of the correlation component of the predetermined communication partner or another communication partner that affects the detection of the peak correlation value of the predetermined communication partner. Since detection is performed, synchronous capture can be performed accurately with a small amount of computation.
- the receiving apparatus according to the above embodiment is applicable to a wireless communication terminal apparatus and a base station apparatus in a digital wireless communication system.
- the autocorrelation value of the known spreading code calculated in advance is By calculating the auto-correlation component of the transmitting station in the delay profile and detecting the peak phase of the transmitting station to be demodulated in consideration of the calculated auto-correlation component, the original peak corresponding to each transmitting station is obtained.
- the receiving apparatus is applicable to a wireless communication terminal apparatus and a base station apparatus in a digital wireless communication system.
- the present specification is based on Japanese Patent Application No. 11-110180 filed on April 16, 2001. This content is included here. Industrial applicability
- the present invention is suitable for use in the field of CDMA communication.
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- Mobile Radio Communication Systems (AREA)
Description
Claims
Priority Applications (4)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP20000915470 EP1096694A1 (en) | 1999-04-16 | 2000-04-11 | Receiver and synchronous acquisition method |
AU36762/00A AU3676200A (en) | 1999-04-16 | 2000-04-11 | Receiver and synchronous acquisition method |
US09/719,821 US6829291B1 (en) | 1999-04-16 | 2000-04-11 | Receiving apparatus and synchronization capturing method |
KR1020007014244A KR100359544B1 (ko) | 1999-04-16 | 2000-04-11 | 수신 장치 및 동기 포착 방법 |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
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JP11/110180 | 1999-04-16 | ||
JP11018099A JP2000307470A (ja) | 1999-04-16 | 1999-04-16 | 受信装置 |
Publications (1)
Publication Number | Publication Date |
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WO2000064065A1 true WO2000064065A1 (fr) | 2000-10-26 |
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Application Number | Title | Priority Date | Filing Date |
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PCT/JP2000/002334 WO2000064065A1 (fr) | 1999-04-16 | 2000-04-11 | Recepteur et procede d'acquisition synchrone |
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US (1) | US6829291B1 (ja) |
EP (1) | EP1096694A1 (ja) |
JP (1) | JP2000307470A (ja) |
KR (1) | KR100359544B1 (ja) |
CN (1) | CN1131602C (ja) |
AU (1) | AU3676200A (ja) |
WO (1) | WO2000064065A1 (ja) |
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EP1126626A2 (en) * | 2000-02-02 | 2001-08-22 | Nec Corporation | Pattern generation circuit, multi-path detection circuit employing the same and multi-path detection method |
US6921762B2 (en) | 2001-11-16 | 2005-07-26 | Amgen Inc. | Substituted indolizine-like compounds and methods of use |
US7200165B2 (en) * | 2000-12-15 | 2007-04-03 | Nec Electronics Corporation | Cell search method to subtract autocorrelation patterns from a correlation value profile |
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TW463481B (en) * | 1999-04-28 | 2001-11-11 | Fujitsu Ltd | Cell search method, communication synchronization apparatus, portable terminal apparatus, and recording medium |
JP3445221B2 (ja) * | 2000-05-30 | 2003-09-08 | 松下電器産業株式会社 | 無線受信装置および無線受信方法 |
JP2002232327A (ja) * | 2001-02-05 | 2002-08-16 | Nec Corp | 受信装置に用いるパス選択方法および回路 |
US7292621B2 (en) | 2001-05-08 | 2007-11-06 | Siemens Aktiengesellschaft | Method for detecting multipath signals |
JP3880358B2 (ja) * | 2001-10-04 | 2007-02-14 | シャープ株式会社 | Ofdm復調回路及びこれを用いたofdm受信装置 |
GB0200093D0 (en) * | 2002-01-04 | 2002-02-20 | Roke Manor Research | Interference cancellation for location services |
JP3884309B2 (ja) * | 2002-03-14 | 2007-02-21 | 三菱電機株式会社 | スペクトラム拡散用受信装置 |
CN100353677C (zh) | 2002-05-22 | 2007-12-05 | 松下电器产业株式会社 | 接收装置和延迟分布中先头路径的检测方法 |
JP2004320253A (ja) * | 2003-04-14 | 2004-11-11 | Matsushita Electric Ind Co Ltd | 相関値演算回路 |
SE0301823D0 (sv) * | 2003-06-24 | 2003-06-24 | Infineon Technologies Ag | Improved detection |
SE0302233D0 (sv) * | 2003-08-18 | 2003-08-18 | Infineon Technologies Ag | Sliding window |
DE102004059941A1 (de) * | 2004-12-13 | 2006-06-14 | Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. | Vorrichtung und Verfahren zum Bestimmen eines Eintreffzeitpunktes einer Empfangsfolge |
EP2086157B1 (en) * | 2008-01-30 | 2012-09-26 | Nokia Siemens Networks Oy | Method and device for processing data and communication system comprising such device |
US9276511B2 (en) * | 2014-02-04 | 2016-03-01 | Kohler Co. | Field current profile |
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- 2000-04-11 US US09/719,821 patent/US6829291B1/en not_active Expired - Fee Related
- 2000-04-11 WO PCT/JP2000/002334 patent/WO2000064065A1/ja not_active Application Discontinuation
- 2000-04-11 CN CN00800573A patent/CN1131602C/zh not_active Expired - Fee Related
- 2000-04-11 EP EP20000915470 patent/EP1096694A1/en not_active Withdrawn
- 2000-04-11 AU AU36762/00A patent/AU3676200A/en not_active Abandoned
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EP1126626A2 (en) * | 2000-02-02 | 2001-08-22 | Nec Corporation | Pattern generation circuit, multi-path detection circuit employing the same and multi-path detection method |
EP1126626A3 (en) * | 2000-02-02 | 2004-03-03 | Nec Corporation | Pattern generation circuit, multi-path detection circuit employing the same and multi-path detection method |
US6996157B2 (en) | 2000-02-02 | 2006-02-07 | Nec Corporation | Pattern generation circuit, multi-path detection circuit employing the same and multi-path detection method |
US7200165B2 (en) * | 2000-12-15 | 2007-04-03 | Nec Electronics Corporation | Cell search method to subtract autocorrelation patterns from a correlation value profile |
US6921762B2 (en) | 2001-11-16 | 2005-07-26 | Amgen Inc. | Substituted indolizine-like compounds and methods of use |
Also Published As
Publication number | Publication date |
---|---|
KR100359544B1 (ko) | 2002-10-31 |
EP1096694A1 (en) | 2001-05-02 |
US6829291B1 (en) | 2004-12-07 |
JP2000307470A (ja) | 2000-11-02 |
CN1300475A (zh) | 2001-06-20 |
CN1131602C (zh) | 2003-12-17 |
AU3676200A (en) | 2000-11-02 |
KR20010071483A (ko) | 2001-07-28 |
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