WO2016002024A1 - Digital broadcast reception apparatus and channel search method - Google Patents

Digital broadcast reception apparatus and channel search method Download PDF

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Publication number
WO2016002024A1
WO2016002024A1 PCT/JP2014/067658 JP2014067658W WO2016002024A1 WO 2016002024 A1 WO2016002024 A1 WO 2016002024A1 JP 2014067658 W JP2014067658 W JP 2014067658W WO 2016002024 A1 WO2016002024 A1 WO 2016002024A1
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WIPO (PCT)
Prior art keywords
channel
frequency
unit
program information
channels
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PCT/JP2014/067658
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French (fr)
Japanese (ja)
Inventor
村田 聡
良輔 梅野
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三菱電機株式会社
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Application filed by 三菱電機株式会社 filed Critical 三菱電機株式会社
Priority to PCT/JP2014/067658 priority Critical patent/WO2016002024A1/en
Priority to JP2016530743A priority patent/JP6279079B2/en
Publication of WO2016002024A1 publication Critical patent/WO2016002024A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details 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
    • H04B1/06Receivers
    • H04B1/16Circuits

Definitions

  • the present invention relates to a digital broadcast receiving apparatus and a channel search method for searching for a channel on which a broadcast is performed by receiving a digital broadcast wave.
  • Digital broadcasting receivers include ISDB-T (Integrated Services Digital Broadcasting-Terrestrial) and ISDB-Tsb (ISDB-T for Sound Broadcasting) standards for digital television broadcasting and digital radio broadcasting currently being broadcast in Japan and Brazil.
  • DVB-T Digital Video Broadcasting-Terrestrial
  • DVB-T2 Digital Audio Broadcast
  • DAB + Digital Audio Broadcast
  • T-DMB Terestrial-DigitalBroadcasting Terrestr Since when receiving broadcast waves such as al Multimedia Broadcast) and CMMB (China Mobile Multimedia Broadcasting), get you going broadcasting at the frequency of any channel in advance, generally perform channel search.
  • CMMB China Mobile Multimedia Broadcasting
  • the conventional channel search method has a problem that it takes time to determine whether there is a broadcast wave that can be viewed while changing the frequency for each channel.
  • the present invention has been made to solve the above-described problems, and aims to shorten the channel search time.
  • the digital broadcast receiving apparatus includes a receiving unit that receives a digital broadcast wave and outputs a received signal having a bandwidth corresponding to one channel centered on an instructed frequency, and two channels whose bands are adjacent to each other.
  • a channel search instructing unit that instructs the receiving unit to center on the frequency between the two channels and outputs a received signal including a part of each band of the two channels, and a spectrum obtained by Fourier transforming the received signal output by the receiving unit Compare the signal value of the lower frequency and the upper frequency of the spectrum information with the threshold value stored in advance, and the lower frequency signal value exceeds the threshold value. In the case, it is determined that the broadcast wave is included in the lower frequency channel, and if the upper frequency signal value exceeds the threshold, the broadcast wave is transmitted to the upper frequency channel. In which and a and determining the spectrum determination unit are rare.
  • the channel search instructing unit sets the frequency between two adjacent channels in the center, the receiving unit receives a digital broadcast wave, and the channel search instructing unit A received signal having a bandwidth corresponding to one channel centered on the set frequency is output, and a Fourier transform unit performs Fourier transform on the received signal to generate spectrum information. Compare each signal value of the upper frequency with a threshold value that is held in advance, and if the signal value of the lower frequency exceeds the threshold value, a broadcast wave is included in the channel of the lower frequency When the signal value of the upper frequency exceeds the threshold value, it is determined that the broadcast wave is included in the channel of the upper frequency.
  • a received signal including a part of each band of the two channels centering on a frequency between two adjacent channels is Fourier-transformed to obtain a signal value of the lower frequency of the spectrum information. If the threshold value is exceeded, it is determined that the lower frequency channel contains broadcast waves. If the upper frequency signal value exceeds the threshold, the upper frequency channel contains broadcast waves. Therefore, it is possible to search for two channels at the same time, and the time can be shortened as compared with the case where channel search is performed for each channel.
  • FIG. 3 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the first embodiment.
  • 4 is a graph showing a spectrum when receiving center frequencies of 13 and 14 channels in the first embodiment.
  • 4 is a graph showing a spectrum when receiving center frequencies of 15 and 16 channels in the first embodiment.
  • 4 is a graph showing a spectrum when receiving center frequencies of 17 and 18 channels in the first embodiment.
  • It is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 2 of this invention.
  • FIG. 6 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the second embodiment. It is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 3 of this invention.
  • 10 is a diagram for explaining a channel search method of the digital broadcast receiving apparatus according to Embodiment 3.
  • FIG. 10 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the third embodiment.
  • 14 is a graph showing a spectrum when receiving a center frequency with offset of 13 and 14 channels in the third embodiment.
  • 10 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the fourth embodiment.
  • 14 is a graph showing a spectrum when receiving a center frequency with additional bands of 13 and 14 channels in the fourth embodiment.
  • 14 is a graph showing a spectrum when receiving center frequencies with additional bands of 15 and 16 channels in the fourth embodiment.
  • FIG. 1 it is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 1.
  • the digital broadcast receiving apparatus includes a receiving unit 9 that receives a digital broadcast wave oscillated from a broadcasting station and outputs a received signal, a Fourier transform unit 6 that Fourier-transforms the received signal to generate spectrum information, and a spectrum A spectrum determination unit 7 that determines the presence / absence of a broadcast wave from information, and a channel search instruction unit 8 that controls the tuner 2 based on the determination result of the spectrum determination unit 7 to perform channel search.
  • the receiving unit 9 receives a digital broadcast wave and outputs it as an RF signal (Radio Frequency; high frequency signal), and down-converts the RF signal received by the antenna 1 to an IF signal (Intermediate Frequency; intermediate frequency signal).
  • a tuner 2 for converting (frequency conversion) an A / D converter 4 for A / D (Analog / Digital) conversion of an analog IF signal, and an orthogonal demodulator 5 for orthogonally demodulating the digital IF signal into a baseband signal Including.
  • the baseband signal output from the quadrature demodulator 5 is the reception signal described above.
  • the digital broadcast receiving apparatus shown in FIG. 1 is a combination of the receiving unit 9 and the Fourier transform unit 6 of the general configuration example with the spectrum determining unit 7 and the channel search instructing unit 8 that are features of the present invention.
  • the configuration includes the spectrum determination unit 7 and the channel search instruction unit 8, a configuration other than that shown in FIG.
  • the configuration may be such that diversity reception is performed using a plurality of antennas 1, or the Fourier transform unit 6 may be configured to perform fast Fourier transform.
  • the digital broadcast receiver is configured by a CPU (Central Processing Unit) (not shown) or a dedicated circuit.
  • FIG. 2A is a graph showing an example of signal arrangement of broadcast waves, where the horizontal axis represents the frequency (channel; CH) of the broadcast wave, and the vertical axis represents the electric field strength of the broadcast wave. In this example, it is shown that broadcasting is performed on 13, 15, and 16 channels among 13 to 20 channels.
  • FIG. 2B shows the channel search order in the conventional method.
  • the conventional method it is determined whether there is a broadcast wave while changing the channel one channel at a time from the first 13 channels. Therefore, in order to determine the presence / absence of broadcast waves of all channels, it is necessary to perform tuner settings for each channel.
  • each tuner setting generally requires several tens of milliseconds to several hundreds of milliseconds, such as the time until the oscillation frequency of the local oscillator stabilizes and the time until the AGC converges. .
  • FIG. 2 (c) shows a channel search order according to the first embodiment.
  • the upper side of the horizontal axis indicates the search order of 13 to 20 channels, and the lower side of the horizontal axis indicates channels determined to be broadcast as a result of the channel search.
  • step ST1 the channel search instructing unit 8 instructs the tuner 2 on the frequency between the two adjacent channels (hereinafter referred to as the center frequency), and performs tuner setting.
  • Tuner setting refers to changing the oscillation frequency of LO (Local Oscillator) 3 of tuner 2 in order to frequency-convert the RF signal in the band including the center frequency indicated by channel search instruction unit 8 into an IF signal. It is.
  • the center frequency between the first channel and the next channel is set to the oscillation frequency of LO3.
  • LO Local Oscillator
  • the center frequency indicated by the channel search instruction unit 8 in step ST1. Is 476.143 MHz.
  • the tuner 2 receives, for example, an RF signal in a band of 6 MHz in total of 3 MHz on the upper side and 3 MHz on the lower side with the center frequency of 476.143 MHz as the center.
  • FIG. 4 shows the spectrum when receiving the center frequencies of the 13th and 14th channels.
  • the horizontal axis represents frequency (CH), and the vertical axis represents electric field strength.
  • step ST2 the spectrum determination unit 7 compares the threshold value held in advance with the lower frequency f LOW of the spectrum as shown in FIG.
  • the spectrum determination unit 7 determines that “the lower frequency has a signal equal to or higher than the threshold value” (step ST2 “YES”).
  • a lower channel presence flag is set (step ST3).
  • the lower channel refers to 13 channels in this example.
  • the spectrum determination unit 7 determines that “the lower frequency does not have a signal equal to or higher than the threshold value” (step ST2 “NO”), and performs the process of step ST3. Skip to step ST4.
  • step ST4 the spectrum determination unit 7 compares the threshold value with the upper frequency f HIGH of the spectrum as shown in FIG.
  • the spectrum determination unit 7 determines that “the upper frequency has no signal equal to or higher than the threshold value” (step ST4 “NO”), and the upper channel.
  • the process of step ST5 for setting the presence flag is skipped and the process proceeds to step ST6.
  • the spectrum determination unit 7 determines that “the upper frequency signal is greater than or equal to the threshold value” (step ST4 “YES”) and sets the upper channel presence flag. (Step ST5).
  • the upper channel refers to 14 channels in this example.
  • step ST6 the channel search instructing unit 8 confirms whether or not all channels have been searched. If all channels have been searched, the channel search operation is ended (step ST6 “YES”). If a channel that has not been searched remains, the process returns to step ST1 (step ST6 “NO”).
  • step ST1 the channel search instructing unit 8 instructs the tuner 2 to set the next center channel of the channel set in the previous step ST1 and the intermediate frequency between the next channel and perform the tuner setting. . In this example, since the last time was the center frequency of the 13th channel and the 14th channel, the center frequency of the 15th channel and the 16th channel is set as a tuner next time.
  • FIG. 5 shows a spectrum when receiving the center frequencies of the 15th and 16th channels.
  • the center frequency of the 15th and 16th channels is set as a tuner, since there are signals exceeding the threshold values in both the upper frequency f HIGH and the lower frequency f LOW , the spectrum determination unit 7 broadcasts on both the 15th and 16th channels. Is determined to have been performed.
  • FIG. 6 shows a frequency spectrum when receiving the center frequencies of the 17th and 18th channels.
  • the spectrum determination unit 7 broadcasts on both the 17th and 18th channels. Is determined not to be performed.
  • the digital broadcast receiving apparatus receives the digital broadcast wave and outputs a reception signal having a bandwidth corresponding to one channel centered on the instructed frequency.
  • a channel search instructing unit 8 for instructing the receiving unit 9 to center the frequency between two adjacent channels and outputting a reception signal including a part of each band of the two channels;
  • the Fourier transform unit 6 for generating the spectrum information by Fourier transforming the output received signal, and comparing the lower frequency and the upper frequency signal values of the spectrum information with the threshold values stored in advance, the lower frequency If the signal value of the upper frequency exceeds the threshold, it is determined that a broadcast wave is included in the channel of the lower frequency, and if the signal value of the upper frequency exceeds the threshold, the upper frequency And to the configuration and a and determining the spectrum determination unit 7 includes a broadcast wave to the number of channels.
  • the tuner setting time conventionally required for each channel can be reduced to half the time in the first embodiment. At this time, it is not necessary to change the configuration of the apparatus such as increasing the number of tuners or using a tuner having a wide reception band.
  • the channel search method is such that the channel search instructing unit 8 sets the frequency between two adjacent channels in the center, and the receiving unit 9 receives a digital broadcast wave. Then, a received signal having a bandwidth for one channel centered on the frequency set by the channel search instruction unit 8 is output, and the Fourier transform unit 6 performs Fourier transform on the received signal to generate spectrum information, and a spectrum determination unit 7 compares each signal value of the lower frequency and the upper frequency of the spectrum information with a threshold value stored in advance, and if the signal value of the lower frequency exceeds the threshold value, It is determined that the broadcast wave is included in the channel, and it is determined that the broadcast wave is included in the channel of the upper frequency when the signal value of the upper frequency exceeds the threshold value. It was in order. Therefore, it is possible to determine whether a broadcast wave is included in each channel while receiving two channels simultaneously. Therefore, the tuner setting time conventionally required for each channel can be reduced to half the time in the first embodiment.
  • the threshold determination of the upper frequency is performed after the threshold determination of the lower frequency is shown.
  • the threshold determination of the upper frequency may be performed first.
  • FIG. FIG. 7 is a block diagram illustrating a configuration example of the digital broadcast receiving apparatus according to the second embodiment.
  • a transmission path equalization unit 21, an error correction unit 22, a program information acquisition unit 23, and a program information holding unit 24 are added.
  • the transmission path equalization unit 21, the error correction unit 22, and the program information acquisition unit 23 are configured by a CPU or a dedicated circuit, and the program information holding unit 24 is configured by a memory.
  • the transmission path equalization unit 21 equalizes the transmission path using the pilot signal or the like after the Fourier transform from the baseband signal to the spectrum in the Fourier transform unit 6.
  • the error correction unit 22 performs error correction on the signal output from the transmission path equalization unit 21 and outputs a TS (Transport Stream) signal.
  • the program information acquisition unit 23 decodes the TS signal, acquires program information including a program name, a program start time, a program end time, and the like, and outputs the program information to the channel search instruction unit 8a.
  • the channel search instruction unit 8a acquires the program information of the channel determined to be broadcast by the spectrum determination unit 7 from the program information acquisition unit 23, and outputs the program information to the program information holding unit 24 for storage.
  • FIG. 8 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the second embodiment. Steps ST1 to ST6 in FIG. 8 are the same as ST1 to ST6 in FIG.
  • the channel search instruction unit 8a refers to the lower channel presence flag of the spectrum determination unit 7, and when the lower channel presence flag is set (step ST21 "YES"), the tuner 2 is instructed. The setting is changed to the lower channel (step ST22). Thereafter, the spectrum determination unit 7 clears the lower channel presence flag.
  • the center frequency 473.143 MHz of the 13 channel use band is set to the oscillation frequency of LO3, and the frequency 473.143 MHz is the center.
  • An RF signal in a band of 6 MHz in total, 3 MHz on the upper side and 3 MHz on the lower side, can be received.
  • step ST23 the RF signal in the 13-channel band is converted into an IF signal by the tuner 2, A / D converted by the A / D converter 4, orthogonal demodulated by the orthogonal demodulator 5, and Fourier transformed by the Fourier transformer 6.
  • the transmission path equalization section 21 equalizes the transmission path
  • the error correction section 22 corrects the error
  • the program information acquisition section 23 acquires the program information.
  • the 13-channel program information acquired by the program information acquisition unit 23 is output to the channel search instruction unit 8a, and the channel search instruction unit 8a stores the program information in the program information holding unit 24.
  • each unit of the digital broadcast receiving apparatus skips the processes of steps ST22 and ST23 and proceeds to step ST24.
  • step ST24 the channel search instruction unit 8a refers to the upper channel presence flag of the spectrum determination unit 7, and when the upper channel presence flag is set (step ST24 "YES"), instructs the tuner 2 to set the tuner.
  • the channel is changed to the upper channel (step ST25). Thereafter, the spectrum determination unit 7 clears the upper channel flag.
  • step ST26 is the same as the process in step ST23 except that the target channel is different, and thus the description thereof is omitted.
  • step ST24 “NO” When the upper channel presence flag is not set (step ST24 “NO”), each unit of the digital broadcast receiving apparatus skips the processes of steps ST25 and ST26 and proceeds to step ST6.
  • the tuner setting is performed once for simultaneous search of 13 and 14 channels, once for acquisition of program information of 13 channels, .
  • Once for simultaneous search of 16 channels once for acquisition of program information of 15 channels, once for acquisition of program information of 16 channels, once for simultaneous search of 17 and 18 channels, 19 , A total of 7 times is required for simultaneous search of 20 channels. If the number of channels on which broadcasting is performed decreases, the number of tuner settings can be further reduced, and can be reduced to a maximum of half (when broadcasting is not performed on all channels).
  • the channel search instructing unit 8a instructs the receiving unit 9 the center frequency of the channel determined by the spectrum determining unit 7 as containing the broadcast wave, and the band of the channel.
  • the program information acquisition unit 23 is configured to acquire the program information of the channel determined by the spectrum determination unit 7 as containing a broadcast wave. For this reason, the time required for tuner setting and program information acquisition, which was conventionally required for each channel, can be shortened to half the maximum time in the second embodiment. At this time, it is not necessary to change the configuration of the apparatus such as increasing the number of tuners or using a tuner having a wide reception band.
  • the threshold determination for the upper frequency may be performed after the threshold determination for the lower frequency.
  • the threshold determination for the upper frequency may be performed first.
  • the digital broadcast receiving apparatus is applied to the ISDB-T system that is broadcast in the 6 MHz band per channel.
  • the present invention is not limited to this. It may be applied to European DVB-T and DVB-T2 broadcast in 8 MHz band, Chinese DTMB and CMMB broadcast in 8 MHz band, Korean T-DMB system broadcast in 2 MHz band, etc. .
  • FIG. 9 is a block diagram illustrating a configuration example of the digital broadcast receiving apparatus according to the third embodiment.
  • a filter unit 31 is added to the digital broadcast receiving apparatus according to the third embodiment.
  • the filter unit 31 switches the pass band in accordance with an instruction from the channel search instruction unit 8b.
  • FIG. 10A is a graph showing an example of signal arrangement of broadcast waves, where the horizontal axis represents the frequency (CH) of the broadcast wave and the vertical axis represents the electric field strength of the broadcast wave. In this example, it is shown that broadcasting is performed on 13, 15, and 16 channels among 13 to 21 channels.
  • FIG. 10B shows a channel search order according to the third embodiment.
  • FIG. 11 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the third embodiment.
  • the channel search instructing unit 8b instructs the tuner 2 by setting the intermediate frequency between the adjacent two channels as the central frequency, and performs the tuner setting. Is set to a frequency shifted (offset) by about 215 kHz to the lower frequency.
  • the offset value of 215 kHz is a value determined with the intention of receiving the one-segment broadcasting of the ISDB-T system, which is the Japanese terrestrial digital television broadcasting system, in the form of being included in the receiving band 6 MHz of the tuner 2. is there. Specifically, it is a value obtained by further halving 429 kHz which is 1/14 (one segment bandwidth) of 6 MHz. This offset value may be larger than 215 kHz depending on the band and characteristics of the tuner 2.
  • the tuner 2 In the first channel search, the tuner 2 has a band of 6 MHz in total, 3 MHz on the upper side and 3 MHz on the lower side, centering on the frequency offset by 215 kHz from the intermediate frequency 476.143 MHz of the first 13 channels and the next 14 channels.
  • An RF signal is received.
  • FIG. 12 shows the spectrum when receiving the center frequency with offset of the 13th and 14th channels.
  • the horizontal axis represents frequency (CH), and the vertical axis represents electric field strength.
  • the hatched portion in FIG. 12 is the central segment portion of the ISDB-T system.
  • the 13-channel one-segment broadcasting is received by the tuner 2, A / D converted by the A / D converter 4, orthogonally demodulated by the orthogonal demodulator 5, and transmitted by the transmission path equalizer 21.
  • the program information acquisition unit 23 can acquire the 13-channel program information by equalizing the transmission path and correcting the error by the error correction unit 22.
  • Step ST32 is the same process as step ST2 of FIG. In the example of FIG. 12, since the lower frequency f LOW has a signal exceeding the threshold, the spectrum determination unit 7 indicates that “the lower frequency has a signal equal to or higher than the threshold”, that is, there is a broadcast wave of the lower channel. Then, it determines (step ST32 "YES").
  • the channel search instruction unit 8b instructs the filter unit 31 to switch the pass band to the one-seg broadcasting band of the lower channel.
  • the one-segment broadcasting band IF signal output from the filter unit 31 is A / D converted by the A / D converter 4, orthogonally demodulated by the orthogonal demodulator 5, and transmission channel equalized by the transmission channel equalizer 21.
  • the error correction unit 22 corrects the error
  • the program information acquisition unit 23 acquires the program information.
  • the program information of the lower channel acquired by the program information acquisition unit 23 is output to the channel search instruction unit 8b, and the channel search instruction unit 8b stores the program information in the program information holding unit 24.
  • step ST32 “NO” when there is no signal exceeding the threshold value in the lower frequency f LOW (step ST32 “NO”), each unit of the digital broadcast receiving apparatus skips the process of step ST33 and proceeds to step ST34.
  • Step ST34 is the same process as step ST4 of FIG. Since a signal in a band of a little less than half of the upper channel appears in the spectrum, the spectrum determination unit 7 can determine whether or not a broadcast wave exists. On the other hand, since the upper channel does not include a one-segment broadcasting band signal, program information cannot be acquired. In the example of FIG. 12, since there is no signal exceeding the threshold value in the upper frequency f HIGH , the spectrum determination unit 7 determines that “the upper frequency has no signal equal to or higher than the threshold value”, that is, there is no broadcast wave in the upper channel. (Step ST34 “NO”).
  • step ST36 the channel search instructing unit 8b determines that the upper channel is skipped in the next channel search, and when it returns to step ST31 next, the frequency offset by 215 kHz downward from the center frequency of the channels 15 and 16 To the tuner 2. That is, as shown in FIG. 10, after the 13th and 14th channels are searched this time, the 14th channel is skipped in the next search, and the 15th and 16th channels are searched.
  • the channel search instructing unit 8b determines not to skip the upper channel in the next channel search. For example, in FIG. 10, when the 15th and 16th channels are searched this time, since the upper 16 channel broadcast waves exist, the 16th channel is not skipped in the next channel search, and the 16th and 17th channels are searched. Thereafter, program information of 16 channels is acquired and held, and it is determined whether or not a 17-channel broadcast wave exists.
  • the channel search instructing unit 8b repeats the above processing over all channels and searches for all channels (step ST37).
  • the channel search instructing unit 8b instructs the receiving unit 9 to center the frequency obtained by shifting the frequency between the two adjacent channels in the band to the upper or lower frequency.
  • the program information acquisition unit 23 shifts the frequency of the two adjacent channels in the spectrum determination unit 7 by outputting a reception signal including the center segment of the channel on the frequency shifted side of the two channels.
  • the program information is acquired from the received signal corresponding to the central segment of the channel.
  • the filter unit 31 may be provided between the tuner 2 and the A / D conversion unit 4 .
  • the filter unit 31 may be provided between the Fourier transform unit 6 and the transmission path equalization unit 21.
  • FIG. 13 is a block diagram illustrating a configuration example of a digital broadcast receiving apparatus according to the fourth embodiment.
  • the tuner 2 of the third embodiment has a reception band of 6 MHz for one channel, but the tuner 2c of the fourth embodiment has a wide reception band of one channel or more and less than two channels.
  • FIG. 14A is a graph showing an example of signal arrangement of broadcast waves, where the horizontal axis represents the frequency (CH) of the broadcast wave and the vertical axis represents the electric field strength of the broadcast wave. In this example, it is shown that broadcasting is performed on 13, 15, and 16 channels among 13 to 20 channels.
  • FIG. 14B shows the channel search order according to the fourth embodiment.
  • FIG. 15 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the fourth embodiment.
  • the channel search instructing unit 8c instructs the tuner 2c using the intermediate frequency between the two adjacent channels as the center frequency to perform tuner setting.
  • the center frequency 476.143 MHz of the first 13 channels and the next 14 channels is instructed from the channel search instruction unit 8c to the tuner 2c.
  • the reception band of the tuner 2c is, for example, a band 429 kHz wider than 6 MHz.
  • 429 kHz corresponds to the band of one-segment broadcasting, and is a value determined with the intention of simultaneously receiving both the 13-channel and 14-channel one-segment broadcasting. This value may be larger than 429 kHz according to the band and characteristics of the tuner 2c.
  • the tuner 2c receives RF signals in a total band of 6.429 MHz, with the upper side of 3.215 MHz and the lower side of 3.215 MHz centered on the center frequency of 476.143 MHz of the 13th and 14th channels.
  • FIG. 16 shows the spectrum at the time of receiving the center frequency with additional bands of 13 and 14 channels.
  • FIG. 17 shows the spectrum when receiving the center frequency with additional bands of 15 and 16 channels. 16 and 17, the horizontal axis represents frequency (CH), and the vertical axis represents electric field strength.
  • the hatched portions in FIGS. 16 and 17 are ISBD-T one-segment broadcasting bands.
  • the tuner 2c can simultaneously receive an RF signal including one-segment broadcasting of both the upper frequency and the lower frequency and convert it into an IF signal with a single tuner setting.
  • Step ST42 is the same process as step ST2 of FIG. In the example of FIG. 16, since the lower frequency f LOW has a signal exceeding the threshold value, the spectrum determination unit 7 indicates that “the lower frequency has a signal equal to or higher than the threshold value”, that is, there is a broadcast wave of the lower channel. Then, it determines (step ST42 "YES").
  • the channel search instructing unit 8c instructs the filter unit 31 to switch the pass band to the one-seg broadcasting band of the lower channel.
  • the one-segment broadcasting band IF signal output from the filter unit 31 is A / D converted by the A / D converter 4, orthogonally demodulated by the orthogonal demodulator 5, and transmission channel equalized by the transmission channel equalizer 21.
  • the error correction unit 22 corrects the error, and the program information acquisition unit 23 acquires the program information.
  • the program information of the lower channel acquired by the program information acquisition unit 23 is output to the channel search instruction unit 8c, and the channel search instruction unit 8c stores the program information in the program information holding unit 24.
  • step ST42 “NO” when there is no signal exceeding the threshold value in the lower frequency f LOW (step ST42 “NO”), each unit of the digital broadcast receiving apparatus skips the process of step ST43 and proceeds to step ST44.
  • Step ST44 is the same process as step ST4 of FIG. In the example of FIG. 16, since there is no signal exceeding the threshold value in the upper frequency f HIGH , the spectrum determination unit 7 determines that “the upper frequency has no signal equal to or higher than the threshold value”, that is, there is no broadcast wave of the upper channel. (Step ST44 “NO”). In that case, each part of the digital broadcast receiving apparatus skips the process of step ST45 and proceeds to step ST46.
  • the channel search instructing unit 8c instructs the filter unit 31 in the subsequent step ST45 to set the passband to the one segment of the upper channel. Switch to the broadcast band. Further, the channel search instruction unit 8 c stores the program information of the upper channel acquired by the program information acquisition unit 23 in the program information holding unit 24.
  • step ST46 the channel search instructing unit 8c confirms whether or not all channels have been searched. If all channels have been searched, the channel search operation is ended (step ST46 “YES”). If a channel that has not been searched remains, the process returns to step ST41 ("NO" in step ST46).
  • the channel search instructing unit 8c instructs the tuner 2c to specify the next channel of the channel set as the center frequency in the previous step ST41 and the next channel, and performs tuner setting. . In this example, since the last time was the center frequency of the 13th channel and the 14th channel, the center frequency of the 15th channel and the 16th channel is set as a tuner next time.
  • the channel search instructing unit 8c acquires and holds 15-channel program information in step ST43, and then acquires and holds 16-channel program information in step ST45.
  • the channel search instructing unit 8c acquires and holds 15-channel program information in step ST43, and then acquires and holds 16-channel program information in step ST45.
  • the reception unit 9 outputs a reception signal having a bandwidth of 1 channel or more and less than 2 channels centered on the instructed frequency, and the channel search instruction unit 8c Instruct the receiver 9 to center the frequency between two adjacent channels, and output a reception signal including each central segment of the two channels.
  • the program information acquisition unit 23 The program information is acquired from the received signal corresponding to the central segment of the channel determined to contain the. With this configuration, program information can be acquired simultaneously for the upper frequency channel in addition to the lower frequency channel with a single tuner setting, so that channel search can be performed faster than in the third embodiment.
  • the filter unit 31 may be provided between the tuner 2 and the A / D conversion unit 4 .
  • the filter unit 31 may be provided between the Fourier transform unit 6 and the transmission path equalization unit 21.
  • the digital broadcast receiving apparatus Since the digital broadcast receiving apparatus according to the present invention shortens the channel search time, it is suitable for use in a digital broadcast receiving apparatus that is brought into or mounted on a moving body such as a vehicle.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Two-Way Televisions, Distribution Of Moving Picture Or The Like (AREA)
  • Circuits Of Receivers In General (AREA)
  • Channel Selection Circuits, Automatic Tuning Circuits (AREA)
  • Television Receiver Circuits (AREA)

Abstract

A digital broadcast reception apparatus comprises: a reception unit (9) that receives broadcast waves of digital system and that outputs the received signals that are of a channel worth of bandwidth centered on a designated frequency; a channel search instruction unit (8) that instructs the reception unit (9) to center the band on a frequency between two channels adjacent to each other and to output the received signals including partial bands of the two respective channels; a Fourier transformation unit (6) that Fourier-transforms the received signals outputted by the reception unit (9), thereby generating spectrum information; and a spectrum determination unit (7) that, if the signal values of the lower frequencies of the spectrum information exceed a threshold value, determines that the broadcast waves are included in the channel of the lower frequencies and, if the signal values of the upper frequencies exceed the threshold value, determines that the broadcast waves are included in the channel of the upper frequencies.

Description

デジタル放送受信装置およびチャンネルサーチ方法Digital broadcast receiving apparatus and channel search method
 この発明は、デジタル放送波を受信して放送が行われているチャンネルを探索するデジタル放送受信装置およびチャンネルサーチ方法に関するものである。 The present invention relates to a digital broadcast receiving apparatus and a channel search method for searching for a channel on which a broadcast is performed by receiving a digital broadcast wave.
 デジタル放送受信装置は、日本およびブラジルなどで放送中のデジタルテレビ放送およびデジタルラジオ放送の規格ISDB-T(Integrated Services Digital Broadcasting-Terrestrial)およびISDB-Tsb(ISDB-T for Sound Broadcasting)、欧州で放送中のDVB-T(Digital Video Broadcasting-Terrestrial)、DVB-T2、DAB(Digital Audio Broadcast)およびDAB+、韓国で放送中のT-DMB(Terrestrial-Digital Media Broadcasting)、中国で放送中のDTMB(Digital Terrestrial Multimedia Broadcast)およびCMMB(China Mobile Multimedia Broadcasting)などの放送波を受信する際に、どのチャンネルの周波数で放送を行っているかを予め得るため、一般的にチャンネルサーチを行う。 Digital broadcasting receivers include ISDB-T (Integrated Services Digital Broadcasting-Terrestrial) and ISDB-Tsb (ISDB-T for Sound Broadcasting) standards for digital television broadcasting and digital radio broadcasting currently being broadcast in Japan and Brazil. DVB-T (Digital Video Broadcasting-Terrestrial), DVB-T2, DAB (Digital Audio Broadcast) and DAB +, T-DMB (Terrestrial-DigitalBroadcasting) Terrestr Since when receiving broadcast waves such as al Multimedia Broadcast) and CMMB (China Mobile Multimedia Broadcasting), get you going broadcasting at the frequency of any channel in advance, generally perform channel search.
 従来のチャンネルサーチ方法は、1チャンネルごとに周波数を変更しながら視聴可能な放送波が存在するかどうかを判定するため、時間がかかるという課題があった。 The conventional channel search method has a problem that it takes time to determine whether there is a broadcast wave that can be viewed while changing the frequency for each channel.
 そこで、時間を短縮するために、例えば特許文献1,2に記載されたチャンネルサーチ方法では、隣接する2つのチャンネルの放送波を受信し、電界強度が一定のしきい値よりも大きい場合にそれら2つのチャンネルのどちらかに放送波が存在していると判定していた。 Therefore, in order to shorten the time, for example, in the channel search methods described in Patent Documents 1 and 2, when the broadcast waves of two adjacent channels are received and the electric field strength is larger than a certain threshold, they are used. It was determined that there was a broadcast wave on one of the two channels.
特開2001-16075号公報JP 2001-16075 A 特開2007-306458号公報JP 2007-306458 A
 上記特許文献1,2のように電界に基づいて放送波の有無を判定する場合、受信した2つのチャンネルのどちらに放送波が存在しているかを判別することができないという課題があった。そのため、電界強度が一定のしきい値よりも大きい場合、受信装置は改めてそれぞれのチャンネルに対応する周波数に変更して1チャンネルずつ個別にチャンネルサーチを行う必要があり、時間がかかってしまった。 When the presence / absence of a broadcast wave is determined based on the electric field as in Patent Documents 1 and 2, there is a problem that it is impossible to determine which of the two received channels the broadcast wave exists. Therefore, when the electric field strength is larger than a certain threshold value, it is necessary for the receiving apparatus to change the frequency corresponding to each channel again and perform channel search individually for each channel, which takes time.
 この発明は、上記のような課題を解決するためになされたもので、チャンネルサーチの時間を短縮することを目的とする。 The present invention has been made to solve the above-described problems, and aims to shorten the channel search time.
 この発明に係るデジタル放送受信装置は、デジタル方式の放送波を受信して、指示された周波数を中心とした1チャンネル分の帯域幅の受信信号を出力する受信部と、帯域が隣接する2チャンネルの間の周波数を中心にするよう受信部に指示し、当該2チャンネルの各一部の帯域を含む受信信号を出力させるチャンネルサーチ指示部と、受信部が出力した受信信号をフーリエ変換してスペクトラム情報を生成するフーリエ変換部と、スペクトラム情報の下側周波数および上側周波数のそれぞれの信号値を予め保持しているしきい値と比較し、下側周波数の信号値がしきい値を超えている場合は下側周波数のチャンネルに放送波が含まれていると判定し、上側周波数の信号値がしきい値を超えている場合は上側周波数のチャンネルに放送波が含まれていると判定するスペクトラム判定部とを備えるものである。 The digital broadcast receiving apparatus according to the present invention includes a receiving unit that receives a digital broadcast wave and outputs a received signal having a bandwidth corresponding to one channel centered on an instructed frequency, and two channels whose bands are adjacent to each other. A channel search instructing unit that instructs the receiving unit to center on the frequency between the two channels and outputs a received signal including a part of each band of the two channels, and a spectrum obtained by Fourier transforming the received signal output by the receiving unit Compare the signal value of the lower frequency and the upper frequency of the spectrum information with the threshold value stored in advance, and the lower frequency signal value exceeds the threshold value. In the case, it is determined that the broadcast wave is included in the lower frequency channel, and if the upper frequency signal value exceeds the threshold, the broadcast wave is transmitted to the upper frequency channel. In which and a and determining the spectrum determination unit are rare.
 この発明に係るチャンネルサーチ方法は、チャンネルサーチ指示部が、帯域が隣接する2チャンネルの間の周波数を中心に設定し、受信部が、デジタル方式の放送波を受信して、チャンネルサーチ指示部の設定した周波数を中心とした1チャンネル分の帯域幅の受信信号を出力し、フーリエ変換部が、受信信号をフーリエ変換してスペクトラム情報を生成し、スペクトラム判定部が、スペクトラム情報の下側周波数および上側周波数のそれぞれの信号値を予め保持しているしきい値と比較し、下側周波数の信号値がしきい値を超えている場合は下側周波数のチャンネルに放送波が含まれていると判定し、上側周波数の信号値がしきい値を超えている場合は上側周波数のチャンネルに放送波が含まれていると判定するものである。 In the channel search method according to the present invention, the channel search instructing unit sets the frequency between two adjacent channels in the center, the receiving unit receives a digital broadcast wave, and the channel search instructing unit A received signal having a bandwidth corresponding to one channel centered on the set frequency is output, and a Fourier transform unit performs Fourier transform on the received signal to generate spectrum information. Compare each signal value of the upper frequency with a threshold value that is held in advance, and if the signal value of the lower frequency exceeds the threshold value, a broadcast wave is included in the channel of the lower frequency When the signal value of the upper frequency exceeds the threshold value, it is determined that the broadcast wave is included in the channel of the upper frequency.
 この発明によれば、帯域が隣接する2チャンネルの間の周波数を中心として当該2チャンネルの各一部の帯域を含む受信信号を、フーリエ変換し、そのスペクトラム情報の下側周波数の信号値がしきい値を超えている場合は下側周波数のチャンネルに放送波が含まれていると判定し、上側周波数の信号値がしきい値を超えている場合は上側周波数のチャンネルに放送波が含まれていると判定するようにしたので、2チャンネル同時にチャンネルサーチでき、1チャンネルずつチャンネルサーチを行う場合に比べて時間を短縮することができる。 According to the present invention, a received signal including a part of each band of the two channels centering on a frequency between two adjacent channels is Fourier-transformed to obtain a signal value of the lower frequency of the spectrum information. If the threshold value is exceeded, it is determined that the lower frequency channel contains broadcast waves. If the upper frequency signal value exceeds the threshold, the upper frequency channel contains broadcast waves. Therefore, it is possible to search for two channels at the same time, and the time can be shortened as compared with the case where channel search is performed for each channel.
この発明の実施の形態1に係るデジタル放送受信装置の構成例を示すブロック図である。It is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 1 of this invention. 実施の形態1に係るデジタル放送受信装置のチャンネルサーチ方法を説明する図である。6 is a diagram for explaining a channel search method of the digital broadcast receiving apparatus according to Embodiment 1. FIG. 実施の形態1に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。3 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the first embodiment. 実施の形態1において13,14チャンネルの中央周波数受信時のスペクトラムを示すグラフである。4 is a graph showing a spectrum when receiving center frequencies of 13 and 14 channels in the first embodiment. 実施の形態1において15,16チャンネルの中央周波数受信時のスペクトラムを示すグラフである。4 is a graph showing a spectrum when receiving center frequencies of 15 and 16 channels in the first embodiment. 実施の形態1において17,18チャンネルの中央周波数受信時のスペクトラムを示すグラフである。4 is a graph showing a spectrum when receiving center frequencies of 17 and 18 channels in the first embodiment. この発明の実施の形態2に係るデジタル放送受信装置の構成例を示すブロック図である。It is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 2 of this invention. 実施の形態2に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。6 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the second embodiment. この発明の実施の形態3に係るデジタル放送受信装置の構成例を示すブロック図である。It is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 3 of this invention. 実施の形態3に係るデジタル放送受信装置のチャンネルサーチ方法を説明する図である。10 is a diagram for explaining a channel search method of the digital broadcast receiving apparatus according to Embodiment 3. FIG. 実施の形態3に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。10 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the third embodiment. 実施の形態3において13,14チャンネルのオフセット付中央周波数受信時のスペクトラムを示すグラフである。14 is a graph showing a spectrum when receiving a center frequency with offset of 13 and 14 channels in the third embodiment. この発明の実施の形態4に係るデジタル放送受信装置の構成例を示すブロック図である。It is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 4 of this invention. 実施の形態4に係るデジタル放送受信装置のチャンネルサーチ方法を説明する図である。It is a figure explaining the channel search method of the digital broadcast receiver which concerns on Embodiment 4. FIG. 実施の形態4に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。10 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the fourth embodiment. 実施の形態4において13,14チャンネルの付加帯域付中央周波数受信時のスペクトラムを示すグラフである。14 is a graph showing a spectrum when receiving a center frequency with additional bands of 13 and 14 channels in the fourth embodiment. 実施の形態4において15,16チャンネルの付加帯域付中央周波数受信時のスペクトラムを示すグラフである。14 is a graph showing a spectrum when receiving center frequencies with additional bands of 15 and 16 channels in the fourth embodiment.
 以下、この発明をより詳細に説明するために、この発明を実施するための形態について、添付の図面に従って説明する。
実施の形態1.
 図1に示すように、実施の形態1に係るデジタル放送受信装置の構成例を示すブロック図である。デジタル放送受信装置は、放送局から発振されたデジタル方式の放送波を受信して受信信号を出力する受信部9と、受信信号をフーリエ変換してスペクトラム情報を生成するフーリエ変換部6と、スペクトラム情報から放送波の有無を判定するスペクトラム判定部7と、スペクトラム判定部7の判定結果に基づいてチューナ2を制御してチャンネルサーチを行うチャンネルサーチ指示部8とを含む。
Hereinafter, in order to explain the present invention in more detail, modes for carrying out the present invention will be described with reference to the accompanying drawings.
Embodiment 1 FIG.
As shown in FIG. 1, it is a block diagram which shows the structural example of the digital broadcast receiver which concerns on Embodiment 1. FIG. The digital broadcast receiving apparatus includes a receiving unit 9 that receives a digital broadcast wave oscillated from a broadcasting station and outputs a received signal, a Fourier transform unit 6 that Fourier-transforms the received signal to generate spectrum information, and a spectrum A spectrum determination unit 7 that determines the presence / absence of a broadcast wave from information, and a channel search instruction unit 8 that controls the tuner 2 based on the determination result of the spectrum determination unit 7 to perform channel search.
 受信部9は、デジタル方式の放送波を受信してRF信号(Radio Frequency;高周波信号)として出力するアンテナ1と、アンテナ1で受信したRF信号をIF信号(Intermediate Frequency;中間周波数信号)にダウンコンバート(周波数変換)するチューナ2と、アナログIF信号をA/D(Analog/Digital)変換するA/D変換部4と、デジタルIF信号を直交復調してベースバンド信号に変換する直交復調部5とを含む。直交復調部5が出力するベースバンド信号は、上述した受信信号のことである。 The receiving unit 9 receives a digital broadcast wave and outputs it as an RF signal (Radio Frequency; high frequency signal), and down-converts the RF signal received by the antenna 1 to an IF signal (Intermediate Frequency; intermediate frequency signal). A tuner 2 for converting (frequency conversion), an A / D converter 4 for A / D (Analog / Digital) conversion of an analog IF signal, and an orthogonal demodulator 5 for orthogonally demodulating the digital IF signal into a baseband signal Including. The baseband signal output from the quadrature demodulator 5 is the reception signal described above.
 なお、図1に示すデジタル放送受信装置は、一般的な構成例の受信部9およびフーリエ変換部6に対して、この発明の特徴であるスペクトラム判定部7およびチャンネルサーチ指示部8を組み合わせたものであり、スペクトラム判定部7およびチャンネルサーチ指示部8を含む構成であれば図1以外の構成であっても構わない。例えば、複数のアンテナ1を用いてダイバーシティ受信をする構成であったり、フーリエ変換部6が高速フーリエ変換を行う構成であったりしてもよい。また、図1では、放送波のガードインターバルを除去するガードインターバル除去部、放送波との間で時間または周波数の同期を取るためのリサンプル部、シンボルタイミング同期部およびAFC(Auto Frequency Control)部、ならびにチューナ2のAGC(Auto Gain Control)部などの図示を省略している。
 デジタル放送受信装置は、不図示のCPU(Central Processing Unit)または専用の回路によって構成される。
The digital broadcast receiving apparatus shown in FIG. 1 is a combination of the receiving unit 9 and the Fourier transform unit 6 of the general configuration example with the spectrum determining unit 7 and the channel search instructing unit 8 that are features of the present invention. As long as the configuration includes the spectrum determination unit 7 and the channel search instruction unit 8, a configuration other than that shown in FIG. For example, the configuration may be such that diversity reception is performed using a plurality of antennas 1, or the Fourier transform unit 6 may be configured to perform fast Fourier transform. In FIG. 1, a guard interval removing unit for removing a guard interval of a broadcast wave, a resample unit for synchronizing time or frequency with the broadcast wave, a symbol timing synchronizing unit, and an AFC (Auto Frequency Control) unit. Further, illustration of an AGC (Auto Gain Control) portion of the tuner 2 is omitted.
The digital broadcast receiver is configured by a CPU (Central Processing Unit) (not shown) or a dedicated circuit.
 次に、図2を参照して、実施の形態1のチャンネルサーチ方法を説明する。
 図2(a)は、放送波の信号配置の一例を示すグラフであり、横軸は放送波の周波数(チャンネル;CH)、縦軸は放送波の電界強度である。この例では、13~20チャンネルのうち、13,15,16チャンネルで放送が行われていることを示している。
Next, the channel search method according to the first embodiment will be described with reference to FIG.
FIG. 2A is a graph showing an example of signal arrangement of broadcast waves, where the horizontal axis represents the frequency (channel; CH) of the broadcast wave, and the vertical axis represents the electric field strength of the broadcast wave. In this example, it is shown that broadcasting is performed on 13, 15, and 16 channels among 13 to 20 channels.
 図2(b)は、従来方式でのチャンネルサーチの順序を示す。従来方式では、先頭の13チャンネルから順に1チャンネルずつチャンネルを変更しながら、放送波が存在するかどうかを判定する。そのため、全てのチャンネルの放送波の有無を判定するためには、それぞれのチャンネルでチューナ設定を行う必要がある。チューナ設定の詳細は後述するが、チューナ設定ごとに、局部発振器の発振周波数が安定するまでの時間およびAGCが収束するまでの時間など、一般に数十msから数百ms程度の時間が必要となる。 FIG. 2B shows the channel search order in the conventional method. In the conventional method, it is determined whether there is a broadcast wave while changing the channel one channel at a time from the first 13 channels. Therefore, in order to determine the presence / absence of broadcast waves of all channels, it is necessary to perform tuner settings for each channel. Although details of the tuner setting will be described later, each tuner setting generally requires several tens of milliseconds to several hundreds of milliseconds, such as the time until the oscillation frequency of the local oscillator stabilizes and the time until the AGC converges. .
 図2(c)は、実施の形態1によるチャンネルサーチの順序を示す。横軸の上側は13~20チャンネルのサーチ順序を示し、横軸の下側はチャンネルサーチの結果放送が行われていると判定されたチャンネルを示している。 FIG. 2 (c) shows a channel search order according to the first embodiment. The upper side of the horizontal axis indicates the search order of 13 to 20 channels, and the lower side of the horizontal axis indicates channels determined to be broadcast as a result of the channel search.
 図3に示すフローチャートを用いて、デジタル放送受信装置のチャンネルサーチ動作を説明する。
 まずステップST1で、チャンネルサーチ指示部8が、隣接する2チャンネルの間の周波数(以下、中央周波数と呼ぶ)をチューナ2に指示して、チューナ設定を行う。チューナ設定とは、チャンネルサーチ指示部8が指示した中央周波数を含む帯域のRF信号をIF信号に周波数変換するために、チューナ2のLO(Local Oscillator;局部発振器)3の発振周波数を変更することである。チャンネルサーチの初回は、先頭のチャンネルとその次のチャンネルの中間の中央周波数がLO3の発振周波数に設定される。図2(c)において、13チャンネルの利用帯域の中心周波数が473.143MHzで、14チャンネルの利用帯域の中心周波数が479.143MHzの場合は、ステップST1でチャンネルサーチ指示部8が指示する中央周波数は476.143MHzである。チューナ2は、この中央周波数476.143MHzを中心として、例えば上側3MHz、下側3MHzの計6MHzの帯域のRF信号を受信する。
The channel search operation of the digital broadcast receiving apparatus will be described using the flowchart shown in FIG.
First, in step ST1, the channel search instructing unit 8 instructs the tuner 2 on the frequency between the two adjacent channels (hereinafter referred to as the center frequency), and performs tuner setting. Tuner setting refers to changing the oscillation frequency of LO (Local Oscillator) 3 of tuner 2 in order to frequency-convert the RF signal in the band including the center frequency indicated by channel search instruction unit 8 into an IF signal. It is. At the first channel search, the center frequency between the first channel and the next channel is set to the oscillation frequency of LO3. In FIG. 2C, when the center frequency of the 13 channel use band is 473.143 MHz and the center frequency of the 14 channel use band is 479.143 MHz, the center frequency indicated by the channel search instruction unit 8 in step ST1. Is 476.143 MHz. The tuner 2 receives, for example, an RF signal in a band of 6 MHz in total of 3 MHz on the upper side and 3 MHz on the lower side with the center frequency of 476.143 MHz as the center.
 13,14チャンネルをまたぐ帯域のRF信号は、チューナ2でIF信号に変換され、A/D変換部4でA/D変換され、直交復調部5で直交復調され、フーリエ変換部6でフーリエ変換され、スペクトラム判定部7に入力される。図4に、13,14チャンネルの中央周波数受信時のスペクトラムを示す。横軸は周波数(CH)、縦軸は電界強度である。 An RF signal in a band extending over channels 13 and 14 is converted into an IF signal by the tuner 2, A / D converted by the A / D converter 4, orthogonal demodulated by the orthogonal demodulator 5, and Fourier transformed by the Fourier transformer 6. And input to the spectrum determination unit 7. FIG. 4 shows the spectrum when receiving the center frequencies of the 13th and 14th channels. The horizontal axis represents frequency (CH), and the vertical axis represents electric field strength.
 ステップST2では、スペクトラム判定部7が、予め保持しているしきい値を図4に示したようなスペクトラムの下側周波数fLOWと比較する。図4の例では下側周波数fLOWのみしきい値を超える信号が存在するため、スペクトラム判定部7は「下側周波数にしきい値以上の信号あり」と判定し(ステップST2“YES”)、下側チャンネル有りフラグを立てる(ステップST3)。下側チャンネルとは、この例では13チャンネルを指す。
 一方、下側周波数fLOWにしきい値を超える信号がない場合、スペクトラム判定部7は「下側周波数にしきい値以上の信号なし」と判定し(ステップST2“NO”)、ステップST3の処理をスキップしてステップST4へ進む。
In step ST2, the spectrum determination unit 7 compares the threshold value held in advance with the lower frequency f LOW of the spectrum as shown in FIG. In the example of FIG. 4, since there is a signal that exceeds the threshold value only at the lower frequency f LOW , the spectrum determination unit 7 determines that “the lower frequency has a signal equal to or higher than the threshold value” (step ST2 “YES”). A lower channel presence flag is set (step ST3). The lower channel refers to 13 channels in this example.
On the other hand, when there is no signal exceeding the threshold value in the lower frequency f LOW , the spectrum determination unit 7 determines that “the lower frequency does not have a signal equal to or higher than the threshold value” (step ST2 “NO”), and performs the process of step ST3. Skip to step ST4.
 ステップST4では、スペクトラム判定部7が、上記しきい値を図4に示したようなスペクトラムの上側周波数fHIGHと比較する。図4の例では上側周波数fHIGHにはしきい値を超える信号がないため、スペクトラム判定部7は「上側周波数にしきい値以上の信号なし」と判定し(ステップST4“NO”)、上側チャンネル有りフラグを立てるステップST5の処理をスキップしてステップST6へ進む。
 一方、上側周波数fHIGHにしきい値を超える信号が存在する場合、スペクトラム判定部7は「上側周波数にしきい値以上の信号あり」と判定し(ステップST4“YES”)、上側チャンネル有りフラグを立てる(ステップST5)。上側チャンネルとは、この例では14チャンネルを指す。
In step ST4, the spectrum determination unit 7 compares the threshold value with the upper frequency f HIGH of the spectrum as shown in FIG. In the example of FIG. 4, since there is no signal exceeding the threshold value in the upper frequency f HIGH , the spectrum determination unit 7 determines that “the upper frequency has no signal equal to or higher than the threshold value” (step ST4 “NO”), and the upper channel. The process of step ST5 for setting the presence flag is skipped and the process proceeds to step ST6.
On the other hand, if there is a signal exceeding the threshold value in the upper frequency f HIGH , the spectrum determination unit 7 determines that “the upper frequency signal is greater than or equal to the threshold value” (step ST4 “YES”) and sets the upper channel presence flag. (Step ST5). The upper channel refers to 14 channels in this example.
 ステップST6では、チャンネルサーチ指示部8が全てのチャンネルのサーチが終了したか確認し、全てのチャンネルがサーチされた場合はチャンネルサーチ動作を終了する(ステップST6“YES”)。サーチされていないチャンネルが残っている場合はステップST1へ戻る(ステップST6“NO”)。
 次回のステップST1では、チャンネルサーチ指示部8が前回のステップST1でチューナ設定したチャンネルの次のチャンネルと、さらにその次のチャンネルとの中間の中央周波数をチューナ2に指示して、チューナ設定を行う。この例では、前回が13チャンネルと14チャンネルの中央周波数であったため、次回は15チャンネルと16チャンネルの中央周波数がチューナ設定される。
In step ST6, the channel search instructing unit 8 confirms whether or not all channels have been searched. If all channels have been searched, the channel search operation is ended (step ST6 “YES”). If a channel that has not been searched remains, the process returns to step ST1 (step ST6 “NO”).
In the next step ST1, the channel search instructing unit 8 instructs the tuner 2 to set the next center channel of the channel set in the previous step ST1 and the intermediate frequency between the next channel and perform the tuner setting. . In this example, since the last time was the center frequency of the 13th channel and the 14th channel, the center frequency of the 15th channel and the 16th channel is set as a tuner next time.
 ここで、図5に、15,16チャンネルの中央周波数受信時のスペクトラムを示す。15,16チャンネルの中央周波数をチューナ設定した場合は上側周波数fHIGHと下側周波数fLOWの両方にしきい値を超える信号があるため、スペクトラム判定部7は、15チャンネルと16チャンネルの両方で放送が行われていると判定する。 Here, FIG. 5 shows a spectrum when receiving the center frequencies of the 15th and 16th channels. When the center frequency of the 15th and 16th channels is set as a tuner, since there are signals exceeding the threshold values in both the upper frequency f HIGH and the lower frequency f LOW , the spectrum determination unit 7 broadcasts on both the 15th and 16th channels. Is determined to have been performed.
 図6は、17,18チャンネルの中央周波数受信時の周波数スペクトラムを示す。17,18チャンネルの中央周波数をチューナ設定した場合は上側周波数fHIGHと下側周波数fLOWの両方にしきい値を超える信号が無いため、スペクトラム判定部7は、17チャンネルと18チャンネルの両方で放送が行われていないと判定する。 FIG. 6 shows a frequency spectrum when receiving the center frequencies of the 17th and 18th channels. When the center frequency of the 17th and 18th channels is set as a tuner, since there is no signal exceeding the threshold value in both the upper frequency f HIGH and the lower frequency f LOW , the spectrum determination unit 7 broadcasts on both the 17th and 18th channels. Is determined not to be performed.
 以上より、実施の形態1によれば、デジタル放送受信装置は、デジタル方式の放送波を受信して指示された周波数を中心とした1チャンネル分の帯域幅の受信信号を出力する受信部9と、帯域が隣接する2チャンネルの間の周波数を中心にするよう受信部9に指示して当該2チャンネルの各一部の帯域を含む受信信号を出力させるチャンネルサーチ指示部8と、受信部9が出力した受信信号をフーリエ変換してスペクトラム情報を生成するフーリエ変換部6と、スペクトラム情報の下側周波数および上側周波数のそれぞれの信号値を予め保持しているしきい値と比較し、下側周波数の信号値がしきい値を超えている場合は下側周波数のチャンネルに放送波が含まれていると判定し、上側周波数の信号値がしきい値を超えている場合は上側周波数のチャンネルに放送波が含まれていると判定するスペクトラム判定部7とを備える構成にした。このため、2チャンネル同時に受信しながらそれぞれのチャンネルに放送波が含まれているかを判別することができる。従って、従来はチャンネルごとに必要だったチューナ設定の時間を、実施の形態1では半分の時間に短縮することができる。その際、チューナ数を増やす、受信帯域の広いチューナを用いるなどの装置の構成変更が不要である。 As described above, according to the first embodiment, the digital broadcast receiving apparatus receives the digital broadcast wave and outputs a reception signal having a bandwidth corresponding to one channel centered on the instructed frequency. A channel search instructing unit 8 for instructing the receiving unit 9 to center the frequency between two adjacent channels and outputting a reception signal including a part of each band of the two channels; The Fourier transform unit 6 for generating the spectrum information by Fourier transforming the output received signal, and comparing the lower frequency and the upper frequency signal values of the spectrum information with the threshold values stored in advance, the lower frequency If the signal value of the upper frequency exceeds the threshold, it is determined that a broadcast wave is included in the channel of the lower frequency, and if the signal value of the upper frequency exceeds the threshold, the upper frequency And to the configuration and a and determining the spectrum determination unit 7 includes a broadcast wave to the number of channels. Therefore, it is possible to determine whether a broadcast wave is included in each channel while receiving two channels simultaneously. Therefore, the tuner setting time conventionally required for each channel can be reduced to half the time in the first embodiment. At this time, it is not necessary to change the configuration of the apparatus such as increasing the number of tuners or using a tuner having a wide reception band.
 また、実施の形態1によれば、チャンネルサーチ方法は、チャンネルサーチ指示部8が、帯域が隣接する2チャンネルの間の周波数を中心に設定し、受信部9が、デジタル方式の放送波を受信してチャンネルサーチ指示部8の設定した周波数を中心とした1チャンネル分の帯域幅の受信信号を出力し、フーリエ変換部6が、受信信号をフーリエ変換してスペクトラム情報を生成し、スペクトラム判定部7が、スペクトラム情報の下側周波数および上側周波数のそれぞれの信号値を予め保持しているしきい値と比較し、下側周波数の信号値がしきい値を超えている場合は下側周波数のチャンネルに放送波が含まれていると判定し、上側周波数の信号値がしきい値を超えている場合は上側周波数のチャンネルに放送波が含まれていると判定する手順にした。このため、2チャンネル同時に受信しながらそれぞれのチャンネルに放送波が含まれているかを判別することができる。従って、従来はチャンネルごとに必要だったチューナ設定の時間を、実施の形態1では半分の時間に短縮することができる。 Further, according to the first embodiment, the channel search method is such that the channel search instructing unit 8 sets the frequency between two adjacent channels in the center, and the receiving unit 9 receives a digital broadcast wave. Then, a received signal having a bandwidth for one channel centered on the frequency set by the channel search instruction unit 8 is output, and the Fourier transform unit 6 performs Fourier transform on the received signal to generate spectrum information, and a spectrum determination unit 7 compares each signal value of the lower frequency and the upper frequency of the spectrum information with a threshold value stored in advance, and if the signal value of the lower frequency exceeds the threshold value, It is determined that the broadcast wave is included in the channel, and it is determined that the broadcast wave is included in the channel of the upper frequency when the signal value of the upper frequency exceeds the threshold value. It was in order. Therefore, it is possible to determine whether a broadcast wave is included in each channel while receiving two channels simultaneously. Therefore, the tuner setting time conventionally required for each channel can be reduced to half the time in the first embodiment.
 なお、実施の形態1では、下側周波数のしきい値判定の後に上側周波数のしきい値判定を行う例を示したが、上側周波数のしきい値判定を先に行う構成にしてもよい。 In the first embodiment, the example in which the threshold determination of the upper frequency is performed after the threshold determination of the lower frequency is shown. However, the threshold determination of the upper frequency may be performed first.
実施の形態2.
 図7は、実施の形態2に係るデジタル放送受信装置の構成例を示すブロック図である。なお、図7において、図1と同一または相当の部分については同一の符号を付し説明を省略する。実施の形態2に係るデジタル放送受信装置には、伝送路等化部21、誤り訂正部22、番組情報取得部23、および番組情報保持部24が追加されている。伝送路等化部21、誤り訂正部22および番組情報取得部23は、CPUまたは専用の回路で構成され、番組情報保持部24はメモリで構成される。
Embodiment 2. FIG.
FIG. 7 is a block diagram illustrating a configuration example of the digital broadcast receiving apparatus according to the second embodiment. In FIG. 7, the same or corresponding parts as in FIG. In the digital broadcast receiving apparatus according to the second embodiment, a transmission path equalization unit 21, an error correction unit 22, a program information acquisition unit 23, and a program information holding unit 24 are added. The transmission path equalization unit 21, the error correction unit 22, and the program information acquisition unit 23 are configured by a CPU or a dedicated circuit, and the program information holding unit 24 is configured by a memory.
 伝送路等化部21は、フーリエ変換部6においてベースバンド信号からスペクトラムへとフーリエ変換された信号を、パイロット信号などを用いて伝送路等化する。誤り訂正部22は、伝送路等化部21が出力する信号を誤り訂正し、TS(Transport Stream)信号を出力する。番組情報取得部23は、TS信号をデコードして番組名、番組開始時刻、番組終了時刻などを含む番組情報を取得して、チャンネルサーチ指示部8aへ出力する。チャンネルサーチ指示部8aは、スペクトラム判定部7により放送が行われていると判定されたチャンネルの番組情報を番組情報取得部23から取得し、番組情報保持部24へ出力して記憶させる。 The transmission path equalization unit 21 equalizes the transmission path using the pilot signal or the like after the Fourier transform from the baseband signal to the spectrum in the Fourier transform unit 6. The error correction unit 22 performs error correction on the signal output from the transmission path equalization unit 21 and outputs a TS (Transport Stream) signal. The program information acquisition unit 23 decodes the TS signal, acquires program information including a program name, a program start time, a program end time, and the like, and outputs the program information to the channel search instruction unit 8a. The channel search instruction unit 8a acquires the program information of the channel determined to be broadcast by the spectrum determination unit 7 from the program information acquisition unit 23, and outputs the program information to the program information holding unit 24 for storage.
 図8は、実施の形態2に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。図8のステップST1~ST6は、図3のST1~ST6と同じ処理のため説明を省略する。
 ステップST21では、チャンネルサーチ指示部8aがスペクトラム判定部7の下側チャンネル有りフラグを参照し、下側チャンネル有りフラグが立っている場合に(ステップST21“YES”)、チューナ2に指示してチューナ設定を下側チャンネルに変更する(ステップST22)。その後、スペクトラム判定部7が下側チャンネル有りフラグをクリアする。
FIG. 8 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the second embodiment. Steps ST1 to ST6 in FIG. 8 are the same as ST1 to ST6 in FIG.
In step ST21, the channel search instruction unit 8a refers to the lower channel presence flag of the spectrum determination unit 7, and when the lower channel presence flag is set (step ST21 "YES"), the tuner 2 is instructed. The setting is changed to the lower channel (step ST22). Thereafter, the spectrum determination unit 7 clears the lower channel presence flag.
 ここで、下側チャンネルが図2(c)に示す13チャンネルである場合、13チャンネルの利用帯域の中心周波数473.143MHzがLO3の発振周波数に設定され、この周波数473.143MHzを中心として、例えば上側3MHz、下側3MHzの計6MHzの帯域のRF信号が受信可能になる。 Here, when the lower channel is the 13 channel shown in FIG. 2C, the center frequency 473.143 MHz of the 13 channel use band is set to the oscillation frequency of LO3, and the frequency 473.143 MHz is the center. An RF signal in a band of 6 MHz in total, 3 MHz on the upper side and 3 MHz on the lower side, can be received.
 ステップST23では、13チャンネルの帯域のRF信号が、チューナ2でIF信号に変換され、A/D変換部4でA/D変換され、直交復調部5で直交復調され、フーリエ変換部6でフーリエ変換され、伝送路等化部21で伝送路等化され、誤り訂正部22で誤り訂正され、番組情報取得部23で番組情報が取得される。番組情報取得部23が取得した13チャンネルの番組情報はチャンネルサーチ指示部8aへ出力され、チャンネルサーチ指示部8aが番組情報保持部24に記憶させる。 In step ST23, the RF signal in the 13-channel band is converted into an IF signal by the tuner 2, A / D converted by the A / D converter 4, orthogonal demodulated by the orthogonal demodulator 5, and Fourier transformed by the Fourier transformer 6. After being converted, the transmission path equalization section 21 equalizes the transmission path, the error correction section 22 corrects the error, and the program information acquisition section 23 acquires the program information. The 13-channel program information acquired by the program information acquisition unit 23 is output to the channel search instruction unit 8a, and the channel search instruction unit 8a stores the program information in the program information holding unit 24.
 下側チャンネル有りフラグが立っていない場合(ステップST21“NO”)、デジタル放送受信装置の各部はステップST22,ST23の処理をスキップしてステップST24へ進む。 When the lower channel presence flag is not set (step ST21 “NO”), each unit of the digital broadcast receiving apparatus skips the processes of steps ST22 and ST23 and proceeds to step ST24.
 ステップST24では、チャンネルサーチ指示部8aがスペクトラム判定部7の上側チャンネル有りフラグを参照し、上側チャンネル有りフラグが立っている場合に(ステップST24“YES”)、チューナ2に指示してチューナ設定を上側チャンネルに変更する(ステップST25)。その後、スペクトラム判定部7が上側チャンネル有りフラグをクリアする。 In step ST24, the channel search instruction unit 8a refers to the upper channel presence flag of the spectrum determination unit 7, and when the upper channel presence flag is set (step ST24 "YES"), instructs the tuner 2 to set the tuner. The channel is changed to the upper channel (step ST25). Thereafter, the spectrum determination unit 7 clears the upper channel flag.
 ステップST26の処理は、対象となるチャンネルが異なるだけでステップST23の処理と同様であるため説明を省略する。
 上側チャンネル有りフラグが立っていない場合(ステップST24“NO”)、デジタル放送受信装置の各部はステップST25,ST26の処理をスキップしてステップST6へ進む。
The process in step ST26 is the same as the process in step ST23 except that the target channel is different, and thus the description thereof is omitted.
When the upper channel presence flag is not set (step ST24 “NO”), each unit of the digital broadcast receiving apparatus skips the processes of steps ST25 and ST26 and proceeds to step ST6.
 図2(a)に示したように13~20チャンネルのうちの13,15,16チャンネルで放送が行われている場合、図2(b)の従来方式のチャンネルサーチでは、13~20チャンネルの8回分チューナ設定が必要であった。
 これに対して、実施の形態2では図2(c)に示すように、チューナ設定は、13,14チャンネルの同時サーチのために1回、13チャンネルの番組情報取得のために1回、15,16チャンネルの同時サーチのために1回、15チャンネルの番組情報取得のために1回、16チャンネルの番組情報取得のために1回、17,18チャンネルの同時サーチのために1回、19,20チャンネルの同時サーチのために1回の計7回でよい。放送が行われているチャンネル数が少なくなれば、さらにチューナ設定の回数を低減でき、最大で半分(全てのチャンネルで放送が行われていない場合)に低減することが可能になる。
As shown in FIG. 2 (a), when broadcasting is performed on 13, 15 and 16 channels out of 13 to 20 channels, the conventional channel search of FIG. It was necessary to set the tuner for 8 times.
On the other hand, in the second embodiment, as shown in FIG. 2C, the tuner setting is performed once for simultaneous search of 13 and 14 channels, once for acquisition of program information of 13 channels, , Once for simultaneous search of 16 channels, once for acquisition of program information of 15 channels, once for acquisition of program information of 16 channels, once for simultaneous search of 17 and 18 channels, 19 , A total of 7 times is required for simultaneous search of 20 channels. If the number of channels on which broadcasting is performed decreases, the number of tuner settings can be further reduced, and can be reduced to a maximum of half (when broadcasting is not performed on all channels).
 以上より、実施の形態2によれば、チャンネルサーチ指示部8aは、スペクトラム判定部7において放送波が含まれていると判定されたチャンネルの中心周波数を受信部9に指示して当該チャンネルの帯域の受信信号を出力させ、番組情報取得部23は、スペクトラム判定部7において放送波が含まれていると判定されたチャンネルの番組情報を取得するように構成した。このため、従来はチャンネルごとに必要だったチューナ設定および番組情報取得の時間を、実施の形態2では最大で半分の時間に短縮することができる。その際、チューナ数を増やす、受信帯域の広いチューナを用いるなどの装置の構成変更が不要である。 As described above, according to the second embodiment, the channel search instructing unit 8a instructs the receiving unit 9 the center frequency of the channel determined by the spectrum determining unit 7 as containing the broadcast wave, and the band of the channel. The program information acquisition unit 23 is configured to acquire the program information of the channel determined by the spectrum determination unit 7 as containing a broadcast wave. For this reason, the time required for tuner setting and program information acquisition, which was conventionally required for each channel, can be shortened to half the maximum time in the second embodiment. At this time, it is not necessary to change the configuration of the apparatus such as increasing the number of tuners or using a tuner having a wide reception band.
 なお、実施の形態2では、下側周波数のしきい値判定の後に上側周波数のしきい値判定を行う例を示したが、上側周波数のしきい値判定を先に行う構成にしてもよい。
 また、下側周波数の番組情報の取得および保持の後に上側周波数の番組情報の取得および保持を行う例を示したが、上側周波数の番組情報の取得および保持を先に行う構成にしてもよい。
In the second embodiment, the example in which the threshold determination for the upper frequency is performed after the threshold determination for the lower frequency has been described. However, the threshold determination for the upper frequency may be performed first.
Moreover, although the example which acquires and hold | maintains the program information of an upper frequency after acquisition and holding | maintenance of the program information of a lower frequency was shown, you may make it the structure which acquires and hold | maintains the program information of an upper frequency first.
 また、実施の形態1,2では、デジタル放送受信装置を、1チャンネルあたり6MHz帯域で放送されているISDB-T方式に適用した例を示したが、これに限定されるものではなく、7MHz、8MHz帯域で放送されている欧州のDVB-T,DVB-T2、8MHz帯域で放送されている中国のDTMB,CMMB、2MHz帯域で放送されている韓国のT-DMB方式などに適用してもよい。 In the first and second embodiments, the digital broadcast receiving apparatus is applied to the ISDB-T system that is broadcast in the 6 MHz band per channel. However, the present invention is not limited to this. It may be applied to European DVB-T and DVB-T2 broadcast in 8 MHz band, Chinese DTMB and CMMB broadcast in 8 MHz band, Korean T-DMB system broadcast in 2 MHz band, etc. .
実施の形態3.
 図9は、実施の形態3に係るデジタル放送受信装置の構成例を示すブロック図である。なお、図9において、図7と同一または相当の部分については同一の符号を付し説明を省略する。実施の形態3に係るデジタル放送受信装置にはフィルタ部31が追加されている。フィルタ部31は、チャンネルサーチ指示部8bの指示に従って通過帯域を切り替える。
Embodiment 3 FIG.
FIG. 9 is a block diagram illustrating a configuration example of the digital broadcast receiving apparatus according to the third embodiment. In FIG. 9, the same or corresponding parts as in FIG. A filter unit 31 is added to the digital broadcast receiving apparatus according to the third embodiment. The filter unit 31 switches the pass band in accordance with an instruction from the channel search instruction unit 8b.
 図10(a)は、放送波の信号配置の一例を示すグラフであり、横軸は放送波の周波数(CH)、縦軸は放送波の電界強度である。この例では、13~21チャンネルのうち、13,15,16チャンネルで放送が行われていることを示している。
 図10(b)は、実施の形態3によるチャンネルサーチの順序を示す。
FIG. 10A is a graph showing an example of signal arrangement of broadcast waves, where the horizontal axis represents the frequency (CH) of the broadcast wave and the vertical axis represents the electric field strength of the broadcast wave. In this example, it is shown that broadcasting is performed on 13, 15, and 16 channels among 13 to 21 channels.
FIG. 10B shows a channel search order according to the third embodiment.
 図11は、実施の形態3に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。
 ステップST31では、チャンネルサーチ指示部8bが、隣接する2チャンネルの中間の周波数を中央周波数としてチューナ2に指示してチューナ設定を行うが、その中央周波数は上記実施の形態1,2と異なり、中間から下側周波数に215kHz程度ずらした(オフセットした)周波数に設定する。この215kHzというオフセット値は、日本の地上デジタルテレビ放送方式であるISDB-T方式のワンセグ放送がチューナ2の受信帯域6MHzの中に全て含まれる形で受信させようとする意図で決定された値である。具体的には、6MHzの1/14(1セグメント帯域幅)である429kHzを、さらに半分にした値である。
 このオフセット値は、チューナ2の帯域と特性に応じ、215kHzよりさらに大きい値であっても構わない。
FIG. 11 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the third embodiment.
In step ST31, the channel search instructing unit 8b instructs the tuner 2 by setting the intermediate frequency between the adjacent two channels as the central frequency, and performs the tuner setting. Is set to a frequency shifted (offset) by about 215 kHz to the lower frequency. The offset value of 215 kHz is a value determined with the intention of receiving the one-segment broadcasting of the ISDB-T system, which is the Japanese terrestrial digital television broadcasting system, in the form of being included in the receiving band 6 MHz of the tuner 2. is there. Specifically, it is a value obtained by further halving 429 kHz which is 1/14 (one segment bandwidth) of 6 MHz.
This offset value may be larger than 215 kHz depending on the band and characteristics of the tuner 2.
 チャンネルサーチの初回では、チューナ2は、先頭の13チャンネルとその次の14チャンネルの中間周波数476.143MHzから下側に215kHzオフセットした周波数を中心として、上側3MHz、下側3MHzの計6MHzの帯域のRF信号を受信する。
 ここで、図12に、13,14チャンネルのオフセット付中央周波数受信時のスペクトラムを示す。横軸は周波数(CH)、縦軸は電界強度である。図12に斜線で示した部分は、ISDB-T方式の中央セグメント部分である。日本国内では主にこの中央セグメントの1セグメントのみ(ワンセグ放送)を部分受信可能なように運用されており、ワンセグ放送のRF信号から番組情報を取得可能である。従って、図12のスペクトラムにおいても、13チャンネルのワンセグ放送をチューナ2で受信し、A/D変換部4でA/D変換し、直交復調部5で直交復調し、伝送路等化部21で伝送路等化し、誤り訂正部22で誤り訂正することで、番組情報取得部23が13チャンネルの番組情報を取得可能である。
In the first channel search, the tuner 2 has a band of 6 MHz in total, 3 MHz on the upper side and 3 MHz on the lower side, centering on the frequency offset by 215 kHz from the intermediate frequency 476.143 MHz of the first 13 channels and the next 14 channels. An RF signal is received.
Here, FIG. 12 shows the spectrum when receiving the center frequency with offset of the 13th and 14th channels. The horizontal axis represents frequency (CH), and the vertical axis represents electric field strength. The hatched portion in FIG. 12 is the central segment portion of the ISDB-T system. In Japan, only one segment of this central segment (one-segment broadcasting) is operated so that it can be partially received, and program information can be acquired from the RF signal of the one-segment broadcasting. Accordingly, also in the spectrum of FIG. 12, the 13-channel one-segment broadcasting is received by the tuner 2, A / D converted by the A / D converter 4, orthogonally demodulated by the orthogonal demodulator 5, and transmitted by the transmission path equalizer 21. The program information acquisition unit 23 can acquire the 13-channel program information by equalizing the transmission path and correcting the error by the error correction unit 22.
 ステップST32は図3のステップST2と同じ処理である。図12の例では、下側周波数fLOWにはしきい値を超える信号があるため、スペクトラム判定部7は「下側周波数にしきい値以上の信号あり」、つまり下側チャンネルの放送波が存在すると判定する(ステップST32“YES”)。 Step ST32 is the same process as step ST2 of FIG. In the example of FIG. 12, since the lower frequency f LOW has a signal exceeding the threshold, the spectrum determination unit 7 indicates that “the lower frequency has a signal equal to or higher than the threshold”, that is, there is a broadcast wave of the lower channel. Then, it determines (step ST32 "YES").
 ステップST33では、チャンネルサーチ指示部8bがフィルタ部31に指示して、通過帯域を下側チャンネルのワンセグ放送の帯域に切り替える。フィルタ部31が出力するワンセグ放送の帯域のIF信号は、A/D変換部4でA/D変換され、直交復調部5で直交復調され、伝送路等化部21で伝送路等化され、誤り訂正部22で誤り訂正され、番組情報取得部23で番組情報が取得される。番組情報取得部23が取得した下側チャンネルの番組情報はチャンネルサーチ指示部8bに出力され、チャンネルサーチ指示部8bが番組情報保持部24に記憶させる。 In step ST33, the channel search instruction unit 8b instructs the filter unit 31 to switch the pass band to the one-seg broadcasting band of the lower channel. The one-segment broadcasting band IF signal output from the filter unit 31 is A / D converted by the A / D converter 4, orthogonally demodulated by the orthogonal demodulator 5, and transmission channel equalized by the transmission channel equalizer 21. The error correction unit 22 corrects the error, and the program information acquisition unit 23 acquires the program information. The program information of the lower channel acquired by the program information acquisition unit 23 is output to the channel search instruction unit 8b, and the channel search instruction unit 8b stores the program information in the program information holding unit 24.
 一方、下側周波数fLOWにしきい値を超える信号がない場合(ステップST32“NO”)、デジタル放送受信装置の各部はステップST33の処理をスキップしてステップST34へ進む。 On the other hand, when there is no signal exceeding the threshold value in the lower frequency f LOW (step ST32 “NO”), each unit of the digital broadcast receiving apparatus skips the process of step ST33 and proceeds to step ST34.
 ステップST34は図3のステップST4と同じ処理である。上側チャンネルの半分弱の帯域の信号がスペクトラムに表われるため、スペクトラム判定部7において放送波が存在するか否か判定することが可能である。他方、この上側チャンネルにはワンセグ放送の帯域の信号が含まれていないため、番組情報の取得はできない。
 図12の例では、上側周波数fHIGHにはしきい値を超える信号がないため、スペクトラム判定部7は「上側周波数にしきい値以上の信号なし」、つまり上側チャンネルの放送波が存在しないと判定する(ステップST34“NO”)。その場合、ステップST36でチャンネルサーチ指示部8bは、次回のチャンネルサーチでは上側チャンネルをスキップすると判断し、次にステップST31に戻ったときにチャンネル15,16の中央周波数から下側に215kHzオフセットした周波数をチューナ2へ指示する。つまり、図10に示すように、今回13,14チャンネルがサーチされた後、次回のサーチで14チャンネルがスキップされ、15,16チャンネルがサーチされる。
Step ST34 is the same process as step ST4 of FIG. Since a signal in a band of a little less than half of the upper channel appears in the spectrum, the spectrum determination unit 7 can determine whether or not a broadcast wave exists. On the other hand, since the upper channel does not include a one-segment broadcasting band signal, program information cannot be acquired.
In the example of FIG. 12, since there is no signal exceeding the threshold value in the upper frequency f HIGH , the spectrum determination unit 7 determines that “the upper frequency has no signal equal to or higher than the threshold value”, that is, there is no broadcast wave in the upper channel. (Step ST34 “NO”). In that case, in step ST36, the channel search instructing unit 8b determines that the upper channel is skipped in the next channel search, and when it returns to step ST31 next, the frequency offset by 215 kHz downward from the center frequency of the channels 15 and 16 To the tuner 2. That is, as shown in FIG. 10, after the 13th and 14th channels are searched this time, the 14th channel is skipped in the next search, and the 15th and 16th channels are searched.
 一方、上側周波数fHIGHにしきい値を超える信号が存在する場合(ステップST34“YES”)、続くステップST35で、チャンネルサーチ指示部8bが次回のチャンネルサーチで上側チャンネルをスキップしないと判断する。例えば図10において今回15,16チャンネルがサーチされた場合、上側の16チャンネルの放送波が存在するので次回のチャンネルサーチでは16チャンネルがスキップされず、16,17チャンネルがサーチされる。その後、16チャンネルの番組情報が取得および保持されると共に、17チャンネルの放送波が存在するか否か判定される。 On the other hand, if there is a signal exceeding the threshold value in the upper frequency f HIGH (step ST34 “YES”), in the subsequent step ST35, the channel search instructing unit 8b determines not to skip the upper channel in the next channel search. For example, in FIG. 10, when the 15th and 16th channels are searched this time, since the upper 16 channel broadcast waves exist, the 16th channel is not skipped in the next channel search, and the 16th and 17th channels are searched. Thereafter, program information of 16 channels is acquired and held, and it is determined whether or not a 17-channel broadcast wave exists.
 チャンネルサーチ指示部8bは、以上の処理を全チャンネルに渡って繰り返し、全チャンネルのサーチを行う(ステップST37)。 The channel search instructing unit 8b repeats the above processing over all channels and searches for all channels (step ST37).
 以上より、実施の形態3によれば、チャンネルサーチ指示部8bは、帯域が隣接する2チャンネルの間の周波数を上側または下側の周波数へずらした周波数を中心にするよう受信部9に指示して当該2チャンネルのうちの周波数をずらした側のチャンネルの中央セグメントを含む受信信号を出力させ、番組情報取得部23は、スペクトラム判定部7において帯域が隣接する2チャンネルのうちの周波数をずらした側のチャンネルに放送波が含まれていると判定された場合に当該チャンネルの中央セグメントに相当する受信信号から番組情報を取得するように構成した。この構成により、1回のチューナ設定で下側周波数のチャンネルで放送が行われているかどうかの判定だけでなく、そのチャンネルの番組情報の取得まで行うことができる。そのため、上記実施の形態2のようにチャンネルサーチ後にあらためて下側周波数のチューナ設定を行う時間を省略でき、さらに高速にチャンネルサーチできる。 As described above, according to the third embodiment, the channel search instructing unit 8b instructs the receiving unit 9 to center the frequency obtained by shifting the frequency between the two adjacent channels in the band to the upper or lower frequency. The program information acquisition unit 23 shifts the frequency of the two adjacent channels in the spectrum determination unit 7 by outputting a reception signal including the center segment of the channel on the frequency shifted side of the two channels. When it is determined that a broadcast wave is included in the channel on the side, the program information is acquired from the received signal corresponding to the central segment of the channel. With this configuration, it is possible not only to determine whether broadcasting is performed on a lower frequency channel with a single tuner setting, but also to acquire program information on that channel. Therefore, the time for setting the lower frequency tuner again after the channel search as in the second embodiment can be omitted, and the channel search can be performed at a higher speed.
 なお、実施の形態3では、隣接する2チャンネルを同時にチャンネルサーチする際に、チューナ設定を下側周波数にオフセットする例を示したが、上側周波数にオフセットして、上側周波数のチャンネルの中央セグメントを受信する構成にしてもよい。
 また、フィルタ部31をチューナ2とA/D変換部4との間に設けた例を示したが、フーリエ変換部6と伝送路等化部21との間に設けてもよい。
In the third embodiment, the example in which the tuner setting is offset to the lower frequency when performing channel search for two adjacent channels simultaneously has been shown. However, the center segment of the channel of the upper frequency is offset by offsetting to the upper frequency. You may make it the structure which receives.
Further, although the example in which the filter unit 31 is provided between the tuner 2 and the A / D conversion unit 4 has been shown, the filter unit 31 may be provided between the Fourier transform unit 6 and the transmission path equalization unit 21.
実施の形態4.
 図13は、実施の形態4に係るデジタル放送受信装置の構成例を示すブロック図である。なお、図13において、図9と同一または相当の部分については同一の符号を付し説明を省略する。上記実施の形態3のチューナ2は受信帯域が1チャンネル分の6MHzであったが、実施の形態4のチューナ2cは1チャンネル分以上かつ2チャンネル分未満の広い受信帯域を持つ。
Embodiment 4 FIG.
FIG. 13 is a block diagram illustrating a configuration example of a digital broadcast receiving apparatus according to the fourth embodiment. In FIG. 13, parts that are the same as or equivalent to those in FIG. The tuner 2 of the third embodiment has a reception band of 6 MHz for one channel, but the tuner 2c of the fourth embodiment has a wide reception band of one channel or more and less than two channels.
 図14(a)は、放送波の信号配置の一例を示すグラフであり、横軸は放送波の周波数(CH)、縦軸は放送波の電界強度である。この例では、13~20チャンネルのうち、13,15,16チャンネルで放送が行われていることを示している。
 図14(b)は、実施の形態4によるチャンネルサーチの順序を示す。
FIG. 14A is a graph showing an example of signal arrangement of broadcast waves, where the horizontal axis represents the frequency (CH) of the broadcast wave and the vertical axis represents the electric field strength of the broadcast wave. In this example, it is shown that broadcasting is performed on 13, 15, and 16 channels among 13 to 20 channels.
FIG. 14B shows the channel search order according to the fourth embodiment.
 図15は、実施の形態4に係るデジタル放送受信装置のチャンネルサーチ動作を示すフローチャートである。
 ステップST41では、チャンネルサーチ指示部8cが、隣接する2チャンネルの中間の周波数を中央周波数としてチューナ2cに指示してチューナ設定を行う。上記実施の形態1,2と同様に、チャンネルサーチの初回では、先頭の13チャンネルとその次の14チャンネルの中央周波数476.143MHzが、チャンネルサーチ指示部8cからチューナ2cへ指示される。チューナ2cの受信帯域は、例えば、6MHzより429kHz広い帯域とする。429kHzは、ワンセグ放送の帯域分に相当し、13チャンネルと14チャンネルの両方のワンセグ放送を同時に受信させようとする意図で決定された値である。
 この値は、チューナ2cの帯域と特性に応じ、429kHzよりさらに大きい値であっても構わない。
FIG. 15 is a flowchart showing a channel search operation of the digital broadcast receiving apparatus according to the fourth embodiment.
In step ST41, the channel search instructing unit 8c instructs the tuner 2c using the intermediate frequency between the two adjacent channels as the center frequency to perform tuner setting. As in the first and second embodiments, at the first channel search, the center frequency 476.143 MHz of the first 13 channels and the next 14 channels is instructed from the channel search instruction unit 8c to the tuner 2c. The reception band of the tuner 2c is, for example, a band 429 kHz wider than 6 MHz. 429 kHz corresponds to the band of one-segment broadcasting, and is a value determined with the intention of simultaneously receiving both the 13-channel and 14-channel one-segment broadcasting.
This value may be larger than 429 kHz according to the band and characteristics of the tuner 2c.
 チャンネルサーチの初回では、チューナ2cは、13,14チャンネルの中央周波数476.143MHzを中心として、上側3.215MHz、下側3.215MHzの計6.429MHzの帯域のRF信号を受信する。
 ここで、図16に、13,14チャンネルの付加帯域付中央周波数受信時のスペクトラムを示す。図17に、15,16チャンネルの付加帯域付中央周波数受信時のスペクトラムを示す。図16および図17において、横軸は周波数(CH)、縦軸は電界強度である。図16および図17に斜線で示した部分は、ISBD-T方式のワンセグ放送の帯域である。チューナ2cは、図17に示すように、1回のチューナ設定で上側周波数と下側周波数の両方のワンセグ放送を含むRF信号を同時に受信してIF信号に変換することができる。
In the first channel search, the tuner 2c receives RF signals in a total band of 6.429 MHz, with the upper side of 3.215 MHz and the lower side of 3.215 MHz centered on the center frequency of 476.143 MHz of the 13th and 14th channels.
Here, FIG. 16 shows the spectrum at the time of receiving the center frequency with additional bands of 13 and 14 channels. FIG. 17 shows the spectrum when receiving the center frequency with additional bands of 15 and 16 channels. 16 and 17, the horizontal axis represents frequency (CH), and the vertical axis represents electric field strength. The hatched portions in FIGS. 16 and 17 are ISBD-T one-segment broadcasting bands. As shown in FIG. 17, the tuner 2c can simultaneously receive an RF signal including one-segment broadcasting of both the upper frequency and the lower frequency and convert it into an IF signal with a single tuner setting.
 ステップST42は図3のステップST2と同じ処理である。図16の例では、下側周波数fLOWにはしきい値を超える信号があるため、スペクトラム判定部7は「下側周波数にしきい値以上の信号あり」、つまり下側チャンネルの放送波が存在すると判定する(ステップST42“YES”)。 Step ST42 is the same process as step ST2 of FIG. In the example of FIG. 16, since the lower frequency f LOW has a signal exceeding the threshold value, the spectrum determination unit 7 indicates that “the lower frequency has a signal equal to or higher than the threshold value”, that is, there is a broadcast wave of the lower channel. Then, it determines (step ST42 "YES").
 ステップST43では、チャンネルサーチ指示部8cがフィルタ部31に指示して、通過帯域を下側チャンネルのワンセグ放送の帯域に切り替える。フィルタ部31が出力するワンセグ放送の帯域のIF信号は、A/D変換部4でA/D変換され、直交復調部5で直交復調され、伝送路等化部21で伝送路等化され、誤り訂正部22で誤り訂正され、番組情報取得部23で番組情報が取得される。番組情報取得部23が取得した下側チャンネルの番組情報はチャンネルサーチ指示部8cに出力され、チャンネルサーチ指示部8cが番組情報保持部24に記憶させる。 In step ST43, the channel search instructing unit 8c instructs the filter unit 31 to switch the pass band to the one-seg broadcasting band of the lower channel. The one-segment broadcasting band IF signal output from the filter unit 31 is A / D converted by the A / D converter 4, orthogonally demodulated by the orthogonal demodulator 5, and transmission channel equalized by the transmission channel equalizer 21. The error correction unit 22 corrects the error, and the program information acquisition unit 23 acquires the program information. The program information of the lower channel acquired by the program information acquisition unit 23 is output to the channel search instruction unit 8c, and the channel search instruction unit 8c stores the program information in the program information holding unit 24.
 一方、下側周波数fLOWにしきい値を超える信号がない場合(ステップST42“NO”)、デジタル放送受信装置の各部はステップST43の処理をスキップしてステップST44へ進む。 On the other hand, when there is no signal exceeding the threshold value in the lower frequency f LOW (step ST42 “NO”), each unit of the digital broadcast receiving apparatus skips the process of step ST43 and proceeds to step ST44.
 ステップST44は図3のステップST4と同じ処理である。図16の例では、上側周波数fHIGHにはしきい値を超える信号がないため、スペクトラム判定部7は「上側周波数にしきい値以上の信号なし」、つまり上側チャンネルの放送波が存在しないと判定する(ステップST44“NO”)。その場合、デジタル放送受信装置の各部はステップST45の処理をスキップしてステップST46へ進む。 Step ST44 is the same process as step ST4 of FIG. In the example of FIG. 16, since there is no signal exceeding the threshold value in the upper frequency f HIGH , the spectrum determination unit 7 determines that “the upper frequency has no signal equal to or higher than the threshold value”, that is, there is no broadcast wave of the upper channel. (Step ST44 “NO”). In that case, each part of the digital broadcast receiving apparatus skips the process of step ST45 and proceeds to step ST46.
 一方、上側周波数fHIGHにしきい値を超える信号が存在する場合(ステップST44“YES”)、続くステップST45で、チャンネルサーチ指示部8cがフィルタ部31に指示して、通過帯域を上側チャンネルのワンセグ放送の帯域に切り替える。また、チャンネルサーチ指示部8cは、番組情報取得部23が取得した上側チャンネルの番組情報を番組情報保持部24に記憶させる。 On the other hand, if there is a signal exceeding the threshold value in the upper frequency f HIGH (“YES” in step ST44), the channel search instructing unit 8c instructs the filter unit 31 in the subsequent step ST45 to set the passband to the one segment of the upper channel. Switch to the broadcast band. Further, the channel search instruction unit 8 c stores the program information of the upper channel acquired by the program information acquisition unit 23 in the program information holding unit 24.
 ステップST46では、チャンネルサーチ指示部8cが全てのチャンネルのサーチが終了したか確認し、全てのチャンネルがサーチされた場合はチャンネルサーチ動作を終了する(ステップST46“YES”)。サーチされていないチャンネルが残っている場合はステップST41へ戻る(ステップST46“NO”)。
 次回のステップST41では、チャンネルサーチ指示部8cが前回のステップST41で中央周波数に設定したチャンネルの次のチャンネルと、さらにその次のチャンネルとの中央周波数をチューナ2cに指示して、チューナ設定を行う。この例では、前回が13チャンネルと14チャンネルの中央周波数であったため、次回は15チャンネルと16チャンネルの中央周波数がチューナ設定される。
In step ST46, the channel search instructing unit 8c confirms whether or not all channels have been searched. If all channels have been searched, the channel search operation is ended (step ST46 “YES”). If a channel that has not been searched remains, the process returns to step ST41 ("NO" in step ST46).
In the next step ST41, the channel search instructing unit 8c instructs the tuner 2c to specify the next channel of the channel set as the center frequency in the previous step ST41 and the next channel, and performs tuner setting. . In this example, since the last time was the center frequency of the 13th channel and the 14th channel, the center frequency of the 15th channel and the 16th channel is set as a tuner next time.
 15,16チャンネルのサーチ時、図17に示したように、下側周波数fLOWにしきい値以上の信号があり、上側周波数fHIGHにもしきい値以上の信号がある。従って、チャンネルサーチ指示部8cは、ステップST43で15チャンネルの番組情報の取得および保持を行い、次にステップST45で16チャンネルの番組情報の取得および保持を行う。このように、上側、下側の両方のチャンネルに信号がある場合は、1回のチューナ設定で2チャンネル分の番組情報の取得および保持が可能となる。 When searching for 15 and 16 channels, as shown in FIG. 17, there is a signal above the threshold value at the lower frequency f LOW and a signal above the threshold value at the upper frequency f HIGH . Accordingly, the channel search instructing unit 8c acquires and holds 15-channel program information in step ST43, and then acquires and holds 16-channel program information in step ST45. Thus, when there is a signal in both the upper and lower channels, it is possible to acquire and hold program information for two channels with one tuner setting.
 以上より、実施の形態4によれば、受信部9は、指示された周波数を中心とした1チャンネル分以上2チャンネル分未満の帯域幅の受信信号を出力し、チャンネルサーチ指示部8cは、帯域が隣接する2チャンネルの間の周波数を中心にするよう受信部9に指示して当該2チャンネルの各中央セグメントを含む受信信号を出力させ、番組情報取得部23は、スペクトラム判定部7において放送波が含まれていると判定されたチャンネルの中央セグメントに相当する受信信号から番組情報を取得するように構成した。この構成により、1回のチューナ設定で、下側周波数のチャンネルに加え上側周波数のチャンネルも同時に番組情報を取得できるため、上記実施の形態3に比べてさらに高速にチャンネルサーチできる。 As described above, according to the fourth embodiment, the reception unit 9 outputs a reception signal having a bandwidth of 1 channel or more and less than 2 channels centered on the instructed frequency, and the channel search instruction unit 8c Instruct the receiver 9 to center the frequency between two adjacent channels, and output a reception signal including each central segment of the two channels. The program information acquisition unit 23 The program information is acquired from the received signal corresponding to the central segment of the channel determined to contain the. With this configuration, program information can be acquired simultaneously for the upper frequency channel in addition to the lower frequency channel with a single tuner setting, so that channel search can be performed faster than in the third embodiment.
 なお、実施の形態4では、下側周波数のしきい値判定ならびに番組情報の取得および保持の後に、上側周波数のしきい値判定ならびに番組情報の取得および保持を行う例を示したが、上側周波数のしきい値判定ならびに番組情報および保持を先に行う構成にしてもよい。
 また、フィルタ部31をチューナ2とA/D変換部4との間に設けた例を示したが、フーリエ変換部6と伝送路等化部21との間に設けてもよい。
In the fourth embodiment, the example of performing the threshold determination of the upper frequency and the acquisition and holding of the program information after the threshold determination of the lower frequency and the acquisition and holding of the program information has been described. The threshold value determination and program information and retention may be performed first.
Further, although the example in which the filter unit 31 is provided between the tuner 2 and the A / D conversion unit 4 has been shown, the filter unit 31 may be provided between the Fourier transform unit 6 and the transmission path equalization unit 21.
 なお、本発明はその発明の範囲内において、各実施の形態の自由な組み合わせ、各実施の形態の任意の構成要素の変形、または各実施の形態の任意の構成要素の省略が可能である。 In the present invention, within the scope of the invention, free combinations of the respective embodiments, modification of arbitrary components of the respective embodiments, or omission of arbitrary components of the respective embodiments are possible.
 この発明に係るデジタル放送受信装置は、チャンネルサーチの時間を短縮するようにしたので、車両等の移動体に持ち込んだり搭載したりするデジタル放送受信装置などに用いるのに適している。 Since the digital broadcast receiving apparatus according to the present invention shortens the channel search time, it is suitable for use in a digital broadcast receiving apparatus that is brought into or mounted on a moving body such as a vehicle.
 1 アンテナ、2,2c チューナ、3 LO、4 A/D変換部、5 直交復調部、6 フーリエ変換部、7 スペクトラム判定部、8,8a~8c チャンネルサーチ指示部、9 受信部、21 伝送路等化部、22 誤り訂正部、23 番組情報取得部、24 番組情報保持部、31 フィルタ部。 1 antenna, 2, 2c tuner, 3, LO, 4 A / D conversion unit, 5 orthogonal demodulation unit, 6 Fourier transform unit, 7 spectrum determination unit, 8, 8a to 8c channel search instruction unit, 9 reception unit, 21 transmission path Equalization section, 22 error correction section, 23 program information acquisition section, 24 program information holding section, 31 filter section.

Claims (5)

  1.  デジタル方式の放送波を受信して、指示された周波数を中心とした1チャンネル分の帯域幅の受信信号を出力する受信部と、
     帯域が隣接する2チャンネルの間の周波数を中心にするよう前記受信部に指示し、当該2チャンネルの各一部の帯域を含む前記受信信号を出力させるチャンネルサーチ指示部と、
     前記受信部が出力した前記受信信号をフーリエ変換してスペクトラム情報を生成するフーリエ変換部と、
     前記スペクトラム情報の下側周波数および上側周波数のそれぞれの信号値を予め保持しているしきい値と比較し、前記下側周波数の信号値が前記しきい値を超えている場合は前記下側周波数のチャンネルに放送波が含まれていると判定し、前記上側周波数の信号値が前記しきい値を超えている場合は前記上側周波数のチャンネルに放送波が含まれていると判定するスペクトラム判定部とを備えるデジタル放送受信装置。
    A receiving unit that receives a digital broadcast wave and outputs a received signal having a bandwidth of one channel centered on an instructed frequency;
    A channel search instructing unit for instructing the receiving unit to center a frequency between two adjacent channels and outputting the received signal including a part of each band of the two channels;
    A Fourier transform unit that generates spectrum information by Fourier transforming the received signal output by the receiver;
    The signal values of the lower frequency and the upper frequency of the spectrum information are compared with a threshold value stored in advance, and when the signal value of the lower frequency exceeds the threshold value, the lower frequency A spectrum determination unit that determines that a broadcast wave is included in the channel of the upper frequency and determines that a broadcast wave is included in the channel of the upper frequency when the signal value of the upper frequency exceeds the threshold value A digital broadcast receiving apparatus.
  2.  前記受信部が出力した前記受信信号から番組情報を取得する番組情報取得部を備え、
     前記チャンネルサーチ指示部は、前記スペクトラム判定部において放送波が含まれていると判定されたチャンネルの中心周波数を前記受信部に指示し、当該チャンネルの帯域の前記受信信号を出力させ、
     前記番組情報取得部は、前記スペクトラム判定部において放送波が含まれていると判定されたチャンネルの番組情報を取得することを特徴とする請求項1記載のデジタル放送受信装置。
    A program information acquisition unit for acquiring program information from the received signal output by the reception unit;
    The channel search instructing unit instructs the receiving unit to determine a center frequency of a channel determined to contain a broadcast wave in the spectrum determining unit, and causes the reception signal in the band of the channel to be output.
    2. The digital broadcast receiving apparatus according to claim 1, wherein the program information acquisition unit acquires program information of a channel determined by the spectrum determination unit to include a broadcast wave.
  3.  前記受信部が出力した前記受信信号から番組情報を取得する番組情報取得部を備え、
     前記チャンネルサーチ指示部は、帯域が隣接する2チャンネルの間の周波数を上側または下側の周波数へずらした周波数を中心にするよう前記受信部に指示し、当該2チャンネルのうちの周波数をずらした側のチャンネルの中央セグメントを含む前記受信信号を出力させ、
     前記番組情報取得部は、前記スペクトラム判定部において前記帯域が隣接する2チャンネルのうちの周波数をずらした側のチャンネルに放送波が含まれていると判定された場合、当該チャンネルの中央セグメントに相当する前記受信信号から番組情報を取得することを特徴とする請求項1記載のデジタル放送受信装置。
    A program information acquisition unit for acquiring program information from the received signal output by the reception unit;
    The channel search instructing unit instructs the receiving unit to center on a frequency obtained by shifting a frequency between two adjacent channels to an upper or lower frequency, and shifts the frequency of the two channels. Outputting the received signal including the central segment of the side channel;
    The program information acquisition unit corresponds to the center segment of the channel when the spectrum determination unit determines that a broadcast wave is included in the channel on which the frequency is shifted among the two adjacent channels in the band 2. The digital broadcast receiving apparatus according to claim 1, wherein program information is acquired from the received signal.
  4.  前記受信部が出力した前記受信信号から番組情報を取得する番組情報取得部を備え、
     前記受信部は、指示された周波数を中心とした1チャンネル分以上2チャンネル分未満の帯域幅の前記受信信号を出力し、
     前記チャンネルサーチ指示部は、帯域が隣接する2チャンネルの間の周波数を中心にするよう前記受信部に指示し、当該2チャンネルの各中央セグメントを含む受信信号を出力させ、
     前記番組情報取得部は、前記スペクトラム判定部において放送波が含まれていると判定されたチャンネルの中央セグメントに相当する前記受信信号から番組情報を取得することを特徴とする請求項1記載のデジタル放送受信装置。
    A program information acquisition unit for acquiring program information from the received signal output by the reception unit;
    The receiving unit outputs the received signal having a bandwidth of not less than one channel and not more than two channels centered on the instructed frequency;
    The channel search instructing unit instructs the receiving unit to center a frequency between two adjacent channels, and outputs a reception signal including each central segment of the two channels.
    2. The digital information according to claim 1, wherein the program information acquisition unit acquires the program information from the received signal corresponding to a central segment of a channel determined to include a broadcast wave in the spectrum determination unit. Broadcast receiving device.
  5.  デジタル方式の放送波を受信するデジタル放送受信装置のチャンネルサーチ方法において、
     チャンネルサーチ指示部が、帯域が隣接する2チャンネルの間の周波数を中心に設定し、
     受信部が、前記デジタル方式の放送波を受信して、前記チャンネルサーチ指示部の設定した周波数を中心とした1チャンネル分の帯域幅の受信信号を出力し、
     フーリエ変換部が、前記受信信号をフーリエ変換してスペクトラム情報を生成し、
     スペクトラム判定部が、前記スペクトラム情報の下側周波数および上側周波数のそれぞれの信号値を予め保持しているしきい値と比較し、前記下側周波数の信号値が前記しきい値を超えている場合は前記下側周波数のチャンネルに放送波が含まれていると判定し、前記上側周波数の信号値が前記しきい値を超えている場合は前記上側周波数のチャンネルに放送波が含まれていると判定することを特徴とするチャンネルサーチ方法。
    In a channel search method for a digital broadcast receiver that receives a digital broadcast wave,
    The channel search instruction section sets the frequency between two adjacent channels in the center,
    A receiving unit receives the digital broadcast wave and outputs a received signal having a bandwidth for one channel centered on a frequency set by the channel search instruction unit;
    A Fourier transform unit generates spectrum information by Fourier transforming the received signal,
    When the spectrum determination unit compares the signal values of the lower frequency and the upper frequency of the spectrum information with threshold values held in advance, and the signal value of the lower frequency exceeds the threshold value Determines that the lower frequency channel includes a broadcast wave, and if the upper frequency signal value exceeds the threshold, the upper frequency channel includes a broadcast wave. A channel search method characterized by determining.
PCT/JP2014/067658 2014-07-02 2014-07-02 Digital broadcast reception apparatus and channel search method WO2016002024A1 (en)

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