WO2006101359A1 - Digital broadcasting transmission and reception devices and methods thereof - Google Patents

Digital broadcasting transmission and reception devices and methods thereof Download PDF

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Publication number
WO2006101359A1
WO2006101359A1 PCT/KR2006/001073 KR2006001073W WO2006101359A1 WO 2006101359 A1 WO2006101359 A1 WO 2006101359A1 KR 2006001073 W KR2006001073 W KR 2006001073W WO 2006101359 A1 WO2006101359 A1 WO 2006101359A1
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WO
WIPO (PCT)
Prior art keywords
transport stream
dual transport
stream
robust
digital broadcasting
Prior art date
Application number
PCT/KR2006/001073
Other languages
French (fr)
Inventor
Joon-Soo Kim
Eui-Jun Park
Yong-Deok Chang
Hae-Joo Jeong
Original Assignee
Samsung Electronics Co., Ltd.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from KR1020060021623A external-priority patent/KR100708479B1/en
Application filed by Samsung Electronics Co., Ltd. filed Critical Samsung Electronics Co., Ltd.
Publication of WO2006101359A1 publication Critical patent/WO2006101359A1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/004Arrangements for detecting or preventing errors in the information received by using forward error control
    • H04L1/0041Arrangements at the transmitter end
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/004Arrangements for detecting or preventing errors in the information received by using forward error control
    • H04L1/0056Systems characterized by the type of code used
    • H04L1/0064Concatenated codes
    • H04L1/0065Serial concatenated codes
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/004Arrangements for detecting or preventing errors in the information received by using forward error control
    • H04L1/0056Systems characterized by the type of code used
    • H04L1/007Unequal error protection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/004Arrangements for detecting or preventing errors in the information received by using forward error control
    • H04L1/0056Systems characterized by the type of code used
    • H04L1/0071Use of interleaving
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/20Servers specifically adapted for the distribution of content, e.g. VOD servers; Operations thereof
    • H04N21/23Processing of content or additional data; Elementary server operations; Server middleware
    • H04N21/236Assembling of a multiplex stream, e.g. transport stream, by combining a video stream with other content or additional data, e.g. inserting a URL [Uniform Resource Locator] into a video stream, multiplexing software data into a video stream; Remultiplexing of multiplex streams; Insertion of stuffing bits into the multiplex stream, e.g. to obtain a constant bit-rate; Assembling of a packetised elementary stream
    • H04N21/23611Insertion of stuffing data into a multiplex stream, e.g. to obtain a constant bitrate
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/20Servers specifically adapted for the distribution of content, e.g. VOD servers; Operations thereof
    • H04N21/23Processing of content or additional data; Elementary server operations; Server middleware
    • H04N21/236Assembling of a multiplex stream, e.g. transport stream, by combining a video stream with other content or additional data, e.g. inserting a URL [Uniform Resource Locator] into a video stream, multiplexing software data into a video stream; Remultiplexing of multiplex streams; Insertion of stuffing bits into the multiplex stream, e.g. to obtain a constant bit-rate; Assembling of a packetised elementary stream
    • H04N21/23614Multiplexing of additional data and video streams
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/20Servers specifically adapted for the distribution of content, e.g. VOD servers; Operations thereof
    • H04N21/23Processing of content or additional data; Elementary server operations; Server middleware
    • H04N21/238Interfacing the downstream path of the transmission network, e.g. adapting the transmission rate of a video stream to network bandwidth; Processing of multiplex streams
    • H04N21/2383Channel coding or modulation of digital bit-stream, e.g. QPSK modulation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N21/00Selective content distribution, e.g. interactive television or video on demand [VOD]
    • H04N21/40Client devices specifically adapted for the reception of or interaction with content, e.g. set-top-box [STB]; Operations thereof
    • H04N21/43Processing of content or additional data, e.g. demultiplexing additional data from a digital video stream; Elementary client operations, e.g. monitoring of home network or synchronising decoder's clock; Client middleware
    • H04N21/434Disassembling of a multiplex stream, e.g. demultiplexing audio and video streams, extraction of additional data from a video stream; Remultiplexing of multiplex streams; Extraction or processing of SI; Disassembling of packetised elementary stream
    • H04N21/4348Demultiplexing of additional data and video streams

Definitions

  • Apparatuses and methods consistent with the present invention relate to digital broadcasting transmission and reception, and more particularly to digital broadcasting transmission and reception devices that can provide a sub-channel to transmit and receive robust stream, and methods thereof.
  • ASC Advanced Television System Committee
  • VSB Vestigial Sideband
  • FlG. 1 is a block diagram of a conventional ATSC VSB system
  • FlG. 2 is a view illustrating a frame structure of a conventional ATSC VSB data.
  • FlG. 1 shows the Enhanced VSB (EVSB) system proposed by Philips Electronics, which forms and transmits a dual transport stream by adding robust data into normal data of a conventional ATSC VSB system.
  • EVSB Enhanced VSB
  • a conventional digital broadcasting transmission process will be explained with reference to FlG. 1.
  • a data randomizer 11 randomizes a dual transport stream
  • a Reed- Solomon (RS) encoder 12 adds a parity to the dual transport stream to correct errors
  • an interleaver 13 interleaves the RS encoded data
  • a trellis encoder 14 trellis- encodes the interleaved data.
  • a MUX 15 inserts field sync and segment sync into the error correction coded data to multiplex the data, and a modulator 16 up-converts the data into a signal in an RF channel bandwidth to transmit it.
  • a conventional digital broadcasting reception process will be explained with reference to FlG. 1.
  • a tuner (not shown) down-converts the RF signal into a baseband signal
  • a demodulator 21 detects and demodulates the baseband signal
  • an equalizer 22 compensates for a channel distortion.
  • a Viterbi decoder 230 corrects errors and decodes symbol data
  • a de- interleaver 24 rearranges data distributed by the interleaver 13 of the transmitter
  • an RS decoder 25 corrects errors
  • a de-randomizer 26 de-randomizes the error-corrected data to output MPEG-2 transmission stream.
  • FIG. 2 is a view illustrating a VSB data frame of ATSC VSB system, in which segment field sync and field sync are inserted.
  • one frame comprises two fields, and one field comprises one field sync segment and 312 data segments.
  • one segment corresponds to one MPEG-2 packet, and one segment comprises four symbols for segment sync and 828 data symbols.
  • segment sync and the field sync are used for synchronization and equalization of a digital broadcasting receiver.
  • segment sync and the field sync are already known data between the digital broadcasting transmitter and the digital broadcasting receiver, and are used as reference signals for the digital broadcasting receiver to perform equalization.
  • An aspect of the present invention is to provide digital broadcasting transmission and reception devices that provide a sub-channel in which robust data and a supplementary reference signal will be transmitted so that a reception performance can be improved in a dynamic multi environment, and methods thereof.
  • a digital broadcasting transmission device including a randomizer which randomizes a dual transport stream including a normal stream and a robust stream, a supplementary reference signal inserter which inserts a certain supplementary reference signal into a stuffing region included in the randomized dual transport stream, a Reed-Solomon (RS) encoder which adds a parity into a parity region included in the dual transport stream, a robust processor which configures a new dual transport stream by convolution-encoding the robust stream among the dual transport stream, an interleaver which interleaves the configured dual transport stream, a trellis encoder which trellis-encodes the interleaved dual transport stream, and a modulator which transmits the trellis-encoded dual transport stream.
  • RS Reed-Solomon
  • the digital broadcasting transmission device may further include a compatible parity generator which generates a compatible parity on the basis of the dual transport stream to which the parity is added by the RS encoder and the dual transport stream which is trellis-encoded by the trellis encoder.
  • the trellis encoder may replace a portion of the parity added by the RS encoder, with the compatible parity to perform trellis-encoding of the interleaved dual transport stream.
  • the compatible parity generator may include a packet buffer which receives from the RS encoder the dual transport stream, to which the parity is added, and the interleaved dual transport stream trellis-encoded by the trellis encoder, and temporarily stores the parity-added dual transport stream and the trellis-encoded dual transport stream, and an RS re-encoder which generates the compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream stored in the packet buffer.
  • the robust processor may include a robust interleaver which interleaves the robust stream among the dual transport stream, a robust encoder which performs convolution- encoding for the robust stream, and a processor Mux which multiplexes the convolution-encoded robust stream and the normal stream.
  • the digital broadcasting transmission device may further include a signal controller which generates a control signal to control the robust processor to perform the convolution-encoding for the robust stream.
  • the signal controller may include a bit signal generator which generates a normal bit signal and a robust bit signal, a convolution bit interleaver which performs convolution-interleaving for the generated normal bit signal and robust bit signal, and a trellis interleaver which performs trellis-interleaving for the convolution-interleaved normal bit signal and robust bit signal, and inputs an output signal to the trellis encoder.
  • a digital broadcasting transmission method including operations of randomizing a dual transport stream including a normal stream and a robust stream, inserting a supplementary reference signal into a stuffing region included in the randomized dual transport stream, adding a parity into a parity region included in the dual transport stream, configuring a new dual transport stream by convolution-encoding the robust stream among the dual transport stream, interleaving the configured dual transport stream, trellis-encoding the interleaved dual transport stream, and transmitting the trellis-encoded dual transport stream.
  • the digital broadcasting transmission method may further include operations of generating a compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream.
  • a portion of the parity added by the RS encoder may be replaced with the compatible parity to perform the trellis-encoding.
  • the operation of configuring the new dual transport stream may include operations of interleaving the robust stream among the dual transport stream, performing convolution-encoding for the robust stream, and multiplexing the convolution-encoded robust stream and the normal stream to configure the new dual transport stream.
  • the operation of configuring the dual transport stream may further include an operation of generating a control signal by which the robust stream can be convolution-encoded.
  • the operation of generating the control signal may further include operations of generating a normal bit signal and a robust bit signal, performing convolution-interleaving for the generated normal bit signal and robust bit signal, and performing trellis-interleaving for the convolution-interleaved normal bit signal and robust bit signal.
  • a digital broadcasting reception device including a demodulator which demodulates a dual transport stream including a normal stream and a robust stream, an equalizer which equalizes the demodulated dual transport stream, a robust decoder which Viterbi-decodes the equalized dual transport stream, a de- interleaver which de-interleaves the Viterbi-decoded dual transport stream, a recoverer which recovers the de-interleaved dual transport stream, an RS decoder which RS- decodes the recovered dual transport stream, and a de-randomizer which de- randomizes the RS-decoded dual transport stream.
  • the recoverer may include a robust decoder which performs a convolution decoding for the robust stream among the de-interleaved dual transport stream, and a robust de-interleaver which de-interleaves the convolution-decoded robust stream.
  • the recoverer may pass the normal stream as unchanged among the de-interleaved dual transport stream and perform the convolution decoding for the robust stream.
  • the digital broadcasting reception device may further include a control signal generator which generates a certain control signal to control the recoverer to perform the convolution decoding for the robust stream of the dual transport stream.
  • a digital broadcasting reception method including operations of demodulating a dual transport stream including a normal stream and a robust stream, equalizing the demodulated dual transport stream, Viterbi-decoding the equalized dual transport stream, de-interleaving the Viterbi-decoded dual transport stream, recovering the de-interleaved dual transport stream, RS-decoding the recovered dual transport stream, and de-randomizing the RS-decoded dual transport stream.
  • the operation of recovering may include operations of performing convolution- decoding for the robust stream among the de-interleaved dual transport stream, and de- interleaving the convolution-decoded robust stream.
  • the operation of recovering may pass the normal stream as unchanged among the de-interleaved dual transport stream and perform convolution-decoding for the robust stream.
  • the digital broadcasting reception method may further include an operation of generating a control signal to control the performing of the convolution-decoding for the robust stream of the dual transport stream during the recovering operation.
  • the digital broadcasting transmission and reception devices and method thereof provide a sub-channel in which the robust data and the supplementary reference signal will be transmitted so that the reception performance can be enhanced in a dynamic multi environment. Furthermore, the pattern of continuous data can be used as a reference signal to help the equalizer operation.
  • FIG. 1 is a block diagram of a conventional ATSC VSB system
  • FIG. 2 is a view illustrating a frame structure of conventional ATSC VSB data
  • FIG. 3 is a block diagram of a digital broadcasting transmission device according to an exemplary embodiment of the present invention.
  • FIG. 4 are a view exemplifying an MPEG transport stream
  • FIG. 5 is a view for explaining an exemplary stuff byte formed in an adaptation field
  • FIG. 6 is a view for explaining a dual transport stream structure according to an exemplary embodiment of the present invention.
  • FIG. 7 is a view illustrating an exemplary interleaving result of a dual transport stream
  • FlG. 8 is a block diagram of a robust processor illustrated in FlG. 3;
  • FlG. 9 is a block diagram of a signal controller illustrated in FlG. 3;
  • FlG. 10 is a block diagram of a digital broadcasting reception device according to an exemplary embodiment of the present invention.
  • FlG. 11 is a flowchart for explaining a digital broadcasting transmission method according to an exemplary embodiment of the present invention.
  • FlG. 12 is a flowchart for explaining a digital broadcasting reception method according to an exemplary embodiment of the present invention. Best Mode for Carrying Out the Invention
  • FlG. 3 is a block diagram of a digital broadcasting transmission device according to an exemplary embodiment of the present invention.
  • a digital broadcasting transmission device comprises a randomizer 101, a stuff byte controller 103, a supplementary reference signal inserter 105, an RS encoder 107, a signal controller 109, a robust processor 111, an interleaver 113, a compatible parity generator 115, a trellis encoder 117, a main Mux 119, and a modulator 121.
  • the randomizer 101 randomizes a dual transport stream.
  • the dual transport stream input into the randomizer 101 is formed by multiplexing a normal stream and a robust stream, and includes a stuffing region to insert a supplementary reference signal and a parity region to add a parity.
  • the transport stream will be elucidated with reference to FIG. 4.
  • the stuff byte controller 103 controls the supplementary reference signal inserter
  • a supplementary reference signal hereafter referred to as SRS
  • the supplementary reference signal inserter 105 inserts the SRS into the stuffing region included in the packet of the dual transport stream under the control of the stuff byte controller 103.
  • the SRS will be later elucidated with reference to FIGS. 5 and 6.
  • the RS encoder 107 adds a parity into the parity region included in the packet of the dual transport stream input by the supplementary reference signal inserter 105.
  • the RS encoder 107 is provided in form of concatenated coder that adds the parity into the transport stream to correct errors that may be generated due to the channel feature during the transmission.
  • the signal controller 109 generates a certain control signal to control the robust processor 111 so that only a robust stream is controlled to be convolution-encoded, and transmits the generated control signal to the robust processor 111.
  • the signal controller 109 will be elucidated later with reference to FlG. 7.
  • the robust processor 111 If the dual transport stream RS-encoded by the RS encoder 107 is received, the robust processor 111 passes a normal stream as unchanged among the received dual transport stream, and convolution-encodes only the robust stream so as to configure and output a new dual transport stream. At this time, the robust processor 111 can determine the normal stream and the robust stream by the control signal received from the signal controller 109. The robust processor 111 will be elucidated later with reference to FlG. 8.
  • the interleaver 113 interleaves the dual transport stream input by the robust processor 111.
  • the interleaving process does not refer to altering data but changing their positions within the data frame.
  • the compatible parity generator 115 generates a compatible parity on the basis of the packet of the dual transport stream to which the parity is added by the RS encoder 107 and the packet of the dual transport stream which is trellis-encoded by the trellis encoder 117.
  • the compatible parity generator 115 comprises a packet buffer 115a and an RS re-encoder 115b.
  • the packet buffer 115a receives the packet of the dual transport stream to which the parity is added by the RS encoder 107 and the packet of the dual transport stream which is trellis-encoded by the trellis encoder 117 to temporarily store. Each packet of the dual transport stream stored in the packet buffer 115a is used when the RS re- encoder 115b generates the compatible parity.
  • the RS re-encoder 115b generates the compatible parity on the based of the packet of the dual transport stream stored in the packet buffer 115a and the packet of the dual transport stream which is trellis-encoded by the trellis encoder 117, and transmits the generated compatible parity again to the trellis encoder 117.
  • the trellis encoder 117 trellis-encodes the dual transport stream interleaved by the interleaver 113, and transmits the trellis-encoded dual transport stream to the packet buffer 115a to temporarily store. Then, if the compatible parity is received from the RS re-encoder 115b, the trellis-encoder 117 adds the compatible parity into the interleaved dual transport stream to output it.
  • the main Mux 119 adds segment sync and field sync into the dual transport stream to which the compatible parity is added by the trellis encoder 117 to perform multiplexing.
  • the modulator 121 performs channel modulating regarding the dual transport stream multiplexed by the main Mux 119, and converting the dual transport stream into a signal in an RF channel bandwidth to transmit the signal.
  • the converting the dual transport stream into the signal in the RF channel bandwidth refers to up- converting.
  • FIGS. 4 are a view exemplifying an MPEG transport stream.
  • FIG. 4 shows a general MPEG packet, a normal stream packet including an adaptation field, and a robust stream packet including the adaptation field.
  • the general MPEG packet consists of 1 byte of sync, 3 bytes of header, and 184 bytes of payload.
  • the header of the MPEG packet includes a packet identifier (PID).
  • the normal stream packet has the same structure as the general MPEG packet in that it includes 1 byte of sync and the PID of 3 bytes of header.
  • the adaptation field exists for the use of stuff bytes to adjust the size of packet while packetizing the transport stream, and contains 2 bytes of adaptation field (AF) header and T bytes of stuff byte.
  • the T bytes of stuff byte are a stuffing region in which the SRS will be inserted by the supplementary reference signal inserter 105.
  • the normal stream packet including the adaptation field contains the header consisting of 1 byte of sync and 3 bytes of PID, the adaptation filed consisting of 2 bytes of AF header and T bytes of stuff byte and the payload consisting of 182-T bytes of normal data.
  • the robust stream packet including the adaptation field has similar form to the normal stream packet including the adaptation field.
  • the robust stream packet including the adaptation field consists of 1 byte of sync, 3 bytes of PID, 2 bytes of AF header, T bytes of stuff byte, and 182-T bytes of robust stream.
  • the normal stream and the robust stream including the adaptation field are constructed as the dual transport stream and input to the randomizer 101 of the digital broadcasting transmission device according to an exemplary embodiment of the present invention.
  • TFIG. 5 is a view for explaining an exemplary stuff byte formed in an adaptation filed.
  • each packet is 188 bytes, and consists of 1 byte of sync, 3 bytes of PID and 184 bytes of payload.
  • the packets of MO through M51 are converted into packets including an adaptation field to apply to a digital broadcasting transmission device according to an exemplary embodiment of the present invention. Accordingly, the 188 bytes of packet are converted into those consisting of 1 byte of sync, 3 bytes of PID, N bytes of adaptation field, and 184-N bytes of payload. Additionally, the N bytes of adaptation field consist of 2 bytes of AF header and N-2 bytes of stuff byte.
  • the payload including the actual data is 184 bytes; however, the payload including the actual data is reduced to 184-N bytes since the packet contains the adaptation field. Due to the adaptation field, the amount of data included in the packet is reduced, but this may help the equalizer operation in a digital broadcasting reception device.
  • all the packets contain an adaptation field. Additionally, the number of bytes that can be used for a stuff byte is limited to maximum 26 bytes, and the loss of a payload due to SRS and the mix ratio can be determined by the insertion of an AF header and stuff bytes.
  • FlG. 6 is a view for explaining a dual transport stream structure according to an exemplary embodiment of the present invention.
  • a dual transport stream according to an exemplary embodiment of the present invention contains a normal stream and a robust stream. As shown,
  • N normal stream packets and 312-N robust stream packets illustrated in FlG. 6 are converted to include an adaptation field of the structure illustrated in FlG. 5.
  • the normal stream and the robust stream including an adaptation field are constructed as the dual transport stream to be input into the digital broadcasting reception device according to an exemplary embodiment of the present invention.
  • the dual transport stream input to the digital broadcasting reception device is randomized by the randomizer 101 and the stuff byte is converted into the SRS by the supplementary reference signal inserter 105 so as to have the structure illustrated in FlG. 6.
  • the amount and location of SRS is pre-determined.
  • FlG. 7 is a view illustrating an exemplary interleaving result of the dual transport stream.
  • the RS encoder 107 adds 20 bytes of parity into each packet of the dual transport stream to form 207 bytes of packet.
  • the 207 bytes of packet is interleaved by the in- terleaver 113 to have the structure illustrated in FlG. 7. Data located in the same byte position before the interleaving appears contiguously after interleaving by the in- terleaver 113.
  • FlG. 8 is a block diagram of the robust processor illustrated in FlG. 3.
  • the robust processor 111 of the digital broadcasting transmission device comprises a robust interleaver 11 Ia, a robust encoder 11 Ib, and a processor Mux 11 Ic.
  • the robust interleaver Ilia receives the RS-encoded dual transport stream from the
  • the RS encoder 107 and interleaves only the robust stream by the control signal of the signal controller 109.
  • the normal stream that is not input to the robust interleaver 11 Ia by the control signal of the signal controller 109, is directly input to the processor Mux 111c.
  • the robust encoder 111b receives the robust stream interleaved by the robust interleaver 11 Ia to perform convolution encoding, and transmits the convolution- encoded stream to the processor Mux 111c.
  • the processor Mux 111c multiplexes the normal stream, which is not processed by the control signal of the signal controller 109 but directly input, and the robust stream, which is convolution-encoded by the robust encoder 11 Ib, to output the multiplexed streams.
  • FlG. 9 is a block diagram of the signal controller illustrated in FlG. 1.
  • the signal controller 109 of the digital broadcasting transmission device comprises a bit signal generator 109a, a convolution bit interleaver 109b, and a trellis interleaver 109c.
  • the bit signal generator 109a generates a normal bit signal and a robust bit signal.
  • the bit signal generator 109a generates the control signal at packet level based on BCPBG and RPP parameters under the same mode as specified in the Modulation section of the ATSC Digital Television Standard, A/53. [92] Preferably, but not necessarily, the bit signal generator 109a may output "1" if the present packet belongs to the robust stream, and may output "0" if the present packet belongs to the normal stream. [93] The convolution bit interleaver 109b performs convolution interleaving regarding the normal bit signal and the robust bit signal generated by the bit signal generator
  • the trellis interleaver 109c performs trellis-interleaving regarding the normal bit signal and the robust bit signal convolution-interleaved by the convolution interleaver
  • the trellis interleaver 109c consists of 12-symbol trellis interleaver.
  • the output of the trellis interleaver 109c may be " 1 " if the output symbol of the trellis encoder 117 belongs to the robust stream, and the output may be "0" if the output symbol of the trellis encoder 117 belongs to the normal stream.
  • FlG. 10 is a block diagram of a digital broadcasting reception device according to an exemplary embodiment of the present invention. [97] Referring to FlG.
  • the digital broadcasting reception device comprises a demodulator 201, a symbol detector 203, an equalizer 205, a robust decoder 207, a de-interleaver 209, a control signal generator 211, a recoverer 213, an RS decoder 215, and a de-randomizer
  • the demodulator 201 receives and demodulates a dual transport stream transmitted from the digital broadcasting transmission device illustrated in FlG. 3.
  • the dual transport stream contains a normal stream and a robust stream.
  • the symbol detector 203 detects a known symbol location from the dual transport stream demodulated by the demodulator 201.
  • the equalizer 205 equalizes the dual transport stream demodulated by the demodulator 201. In other words, the equalizer 205 compensates for channel distortion of the dual transport stream in the multi-path of channel environment to remove mutual interference of received symbols.
  • the robust decoder 207 is a Viterbi decoder that performs Viterbi decoding regarding the dual transport stream equalized by the equalizer 205. The robust stream included in the dual transport stream can be used by the robust decoder 207.
  • the de-interleaver performs de-interleaving regarding the dual transport stream that is Viterbi-decoded by the robust decoder 207.
  • the control signal generator 211 generates a certain control signal to control the recoverer 213 to perform convolution decoding regarding only the robust stream included in the dual transport stream.
  • the recoverer 213 recovers the dual transport stream, which is de-interleaved by the de-interleaver 209, by the control signal of the control signal generator 211.
  • the recoverer 213 may include a robust decoder and a robust de-interleaver.
  • the robust decoder performs convolution decoding regarding only the robust stream among the dual transport stream that is de-interleaved by the de-interleaver 209.
  • the robust decoder can process only the robust stream by the control signal of the control signal generator 211.
  • the robust de-interleaver performs de-interleaving for the robust stream that is convolution-decoded by the robust decoder. According to this operation, the original
  • FIG. 11 is a flowchart for explaining a digital broadcasting transmission method according to an exemplary embodiment of the present invention.
  • the randomizer 101 receives the dual transport stream including the normal stream and the robust stream to perform a randomizing (S300).
  • the supplementary reference signal inserter 105 inserts the randomizing (S300).
  • the supplementary reference signal inserter SRS into the stuffing region included in the packet of the dual transport stream randomized by the randomizer 101.
  • the supplementary reference signal inserter SRS into the stuffing region included in the packet of the dual transport stream randomized by the randomizer 101.
  • the RS encoder 105 is controlled by the stuff byte controller 103 (S310). [112] If the dual transport stream, in which the SRS is inserted, is input, the RS encoder
  • the RS-encoded dual transport stream is input into the robust processor 111, and is processed in the robust processor 111 by the control signal of the signal controller 109.
  • the normal stream passes through the robust processor 111 as unchanged among the dual transport stream, and the robust stream is interleaved and convolution-encoded so as to be configured as a new dual transport stream (S330).
  • the new dual transport stream configured by the robust processor 111 is interleaved by the interleaver 113 (S 340), and trellis-encoded by the trellis encoder 117.
  • the trellis encoder 117 transmits the trellis-encoded dual transport stream to the compatible parity generator 115 (S350).
  • the compatible parity generator 115 generates the compatible parity on the basis of the packet of the dual transport stream RS-encoded by the RS encoder 107 and the packet of the dual transport stream trellis-encoded by the trellis encoder 117.
  • the compatible parity generator 115 transmits the compatible parity to the trellis encoder 117 (S360).
  • the trellis encoder 117 attaches the compatible parity received from the compatible parity generator 115 into the dual transport stream to transmit the stream to the main Mux 119.
  • the main Mux 119 adds the segment sync and the field sync into the dual transport stream to perform multiplexing, and the modulator 121 modulates and outputs the multiplexed stream (S370 through S380).
  • FlG. 12 is a flowchart for explaining a digital broadcasting reception method according to an exemplary embodiment of the present invention.
  • the demodulator 201 receives and demodulates the stream (S400).
  • the equalizer 205 equalizes the dual transport stream demodulated by the demodulator 201 (S410), the robust decoder 207 performs Viterbi decoding for the equalized dual transport stream (S420), and the de-interleaver 209 de-interleaves again the Viterbi-decoded dual transport stream (S430).
  • the dual transport stream de-interleaved by the de-interleaver is recovered by the recoverer 213.
  • the recoverer 213 passes the normal stream as unchanged among the dual transport stream, and performs convolution decoding only for the robust stream (S440).
  • the MPEG data recovered by the recoverer 213 is RS-decoded by the RS decoder
  • the digital broadcasting transmission and reception devices and method thereof provide a sub-channel in which the robust data and the supplementary reference signal will be transmitted so that the reception performance can be enhanced in a dynamic multi environment. Furthermore, the pattern of continuous data can be used as a reference signal to help the equalizer operation.
  • the present invention relates to digital broadcasting transmission and reception.

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Abstract

Digital broadcasting transmission and reception devices and methods thereof are provided. The digital broadcasting transmission device includes a randomizer which randomizes a dual transport stream including a normal stream and a robust stream, a supplementary reference signal inserter which inserts a certain supplementary reference signal into a stuffing region included in the randomized dual transport stream, a Reed-Solomon (RS) encoder which adds a parity into a parity region included in the dual transport stream, a robust processor which configures a new dual transport stream by convolution-encoding the robust stream among the dual transport stream, an interleaver which interleaves the configured dual transport stream, a trellis encoder which trellis-encode the interleaved dual transport stream, and a modulator which transmits the trellis-encoded dual transport stream. Accordingly, a sub-channel can be provided in which the robust data and the supplementary reference signal will be transmitted.

Description

Description
DIGITAL BROADCASTING TRANSMISSION AND RECEPTION DEVICES AND METHODS THEREOF
Technical Field
[1] Apparatuses and methods consistent with the present invention relate to digital broadcasting transmission and reception, and more particularly to digital broadcasting transmission and reception devices that can provide a sub-channel to transmit and receive robust stream, and methods thereof. Background Art
[2] Advanced Television System Committee (ATSC) Vestigial Sideband (VSB) system, which is an American terrestrial digital broadcasting system, is a single carrier system, and uses field sync with 312 segment units. Accordingly, this system has inferior reception performance in a deteriorated channel, particularly, in a Doppler fading channel.
[3] FlG. 1 is a block diagram of a conventional ATSC VSB system, and FlG. 2 is a view illustrating a frame structure of a conventional ATSC VSB data.
[4] FlG. 1 shows the Enhanced VSB (EVSB) system proposed by Philips Electronics, which forms and transmits a dual transport stream by adding robust data into normal data of a conventional ATSC VSB system.
[5] A conventional digital broadcasting transmission process will be explained with reference to FlG. 1. A data randomizer 11 randomizes a dual transport stream, a Reed- Solomon (RS) encoder 12 adds a parity to the dual transport stream to correct errors, an interleaver 13 interleaves the RS encoded data, and a trellis encoder 14 trellis- encodes the interleaved data.
[6] A MUX 15 inserts field sync and segment sync into the error correction coded data to multiplex the data, and a modulator 16 up-converts the data into a signal in an RF channel bandwidth to transmit it.
[7] A conventional digital broadcasting reception process will be explained with reference to FlG. 1. As a tuner (not shown) down-converts the RF signal into a baseband signal, a demodulator 21 detects and demodulates the baseband signal, and an equalizer 22 compensates for a channel distortion.
[8] Then, a Viterbi decoder 230 corrects errors and decodes symbol data, a de- interleaver 24 rearranges data distributed by the interleaver 13 of the transmitter, an RS decoder 25 corrects errors, and a de-randomizer 26 de-randomizes the error-corrected data to output MPEG-2 transmission stream.
[9] FIG. 2 is a view illustrating a VSB data frame of ATSC VSB system, in which segment field sync and field sync are inserted. As can be seen from FlG. 1, one frame comprises two fields, and one field comprises one field sync segment and 312 data segments.
[10] In the VSB data frame, one segment corresponds to one MPEG-2 packet, and one segment comprises four symbols for segment sync and 828 data symbols.
[11] The segment sync and the field sync are used for synchronization and equalization of a digital broadcasting receiver. In other words, the segment sync and the field sync are already known data between the digital broadcasting transmitter and the digital broadcasting receiver, and are used as reference signals for the digital broadcasting receiver to perform equalization.
Disclosure of Invention Technical Problem
[12] As described above, major problems of the conventional VSB system, which transmits and receives data over the air, are performance degradation in weak signal strength and dynamic multi-path interference. The conventional ATSC VSB system illustrated in FlG. 1 transmits a dual transport stream including robust data; however, it cannot be expected to improve degraded reception performance in a multi-path channel when the conventional VSB system transmits normal data stream. Additionally, there is no big improvement in the reception performance regarding robust stream in a multi- path environment.
Technical Solution
[13] The present invention has been developed in order to address the above drawbacks and other problems associated with the conventional arrangement. An aspect of the present invention is to provide digital broadcasting transmission and reception devices that provide a sub-channel in which robust data and a supplementary reference signal will be transmitted so that a reception performance can be improved in a dynamic multi environment, and methods thereof.
[14] In order to achieve the above-described aspects and/or other features of the present invention, there is provided a digital broadcasting transmission device including a randomizer which randomizes a dual transport stream including a normal stream and a robust stream, a supplementary reference signal inserter which inserts a certain supplementary reference signal into a stuffing region included in the randomized dual transport stream, a Reed-Solomon (RS) encoder which adds a parity into a parity region included in the dual transport stream, a robust processor which configures a new dual transport stream by convolution-encoding the robust stream among the dual transport stream, an interleaver which interleaves the configured dual transport stream, a trellis encoder which trellis-encodes the interleaved dual transport stream, and a modulator which transmits the trellis-encoded dual transport stream.
[15] The digital broadcasting transmission device may further include a compatible parity generator which generates a compatible parity on the basis of the dual transport stream to which the parity is added by the RS encoder and the dual transport stream which is trellis-encoded by the trellis encoder.
[16] The trellis encoder may replace a portion of the parity added by the RS encoder, with the compatible parity to perform trellis-encoding of the interleaved dual transport stream.
[17] The compatible parity generator may include a packet buffer which receives from the RS encoder the dual transport stream, to which the parity is added, and the interleaved dual transport stream trellis-encoded by the trellis encoder, and temporarily stores the parity-added dual transport stream and the trellis-encoded dual transport stream, and an RS re-encoder which generates the compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream stored in the packet buffer.
[18] The robust processor may include a robust interleaver which interleaves the robust stream among the dual transport stream, a robust encoder which performs convolution- encoding for the robust stream, and a processor Mux which multiplexes the convolution-encoded robust stream and the normal stream.
[19] The digital broadcasting transmission device may further include a signal controller which generates a control signal to control the robust processor to perform the convolution-encoding for the robust stream.
[20] The signal controller may include a bit signal generator which generates a normal bit signal and a robust bit signal, a convolution bit interleaver which performs convolution-interleaving for the generated normal bit signal and robust bit signal, and a trellis interleaver which performs trellis-interleaving for the convolution-interleaved normal bit signal and robust bit signal, and inputs an output signal to the trellis encoder.
[21] In order to achieve the above-described aspects and/or other features of the present invention, there is provided a digital broadcasting transmission method including operations of randomizing a dual transport stream including a normal stream and a robust stream, inserting a supplementary reference signal into a stuffing region included in the randomized dual transport stream, adding a parity into a parity region included in the dual transport stream, configuring a new dual transport stream by convolution-encoding the robust stream among the dual transport stream, interleaving the configured dual transport stream, trellis-encoding the interleaved dual transport stream, and transmitting the trellis-encoded dual transport stream.
[22] The digital broadcasting transmission method may further include operations of generating a compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream.
[23] In the operation of trellis encoding, a portion of the parity added by the RS encoder may be replaced with the compatible parity to perform the trellis-encoding.
[24] The operation of configuring the new dual transport stream may include operations of interleaving the robust stream among the dual transport stream, performing convolution-encoding for the robust stream, and multiplexing the convolution-encoded robust stream and the normal stream to configure the new dual transport stream.
[25] The operation of configuring the dual transport stream may further include an operation of generating a control signal by which the robust stream can be convolution-encoded.
[26] The operation of generating the control signal may further include operations of generating a normal bit signal and a robust bit signal, performing convolution-interleaving for the generated normal bit signal and robust bit signal, and performing trellis-interleaving for the convolution-interleaved normal bit signal and robust bit signal.
[27] In order to achieve the above-described aspects and/or other features of the present invention, there is provided a digital broadcasting reception device including a demodulator which demodulates a dual transport stream including a normal stream and a robust stream, an equalizer which equalizes the demodulated dual transport stream, a robust decoder which Viterbi-decodes the equalized dual transport stream, a de- interleaver which de-interleaves the Viterbi-decoded dual transport stream, a recoverer which recovers the de-interleaved dual transport stream, an RS decoder which RS- decodes the recovered dual transport stream, and a de-randomizer which de- randomizes the RS-decoded dual transport stream.
[28] The recoverer may include a robust decoder which performs a convolution decoding for the robust stream among the de-interleaved dual transport stream, and a robust de-interleaver which de-interleaves the convolution-decoded robust stream.
[29] The recoverer may pass the normal stream as unchanged among the de-interleaved dual transport stream and perform the convolution decoding for the robust stream.
[30] The digital broadcasting reception device may further include a control signal generator which generates a certain control signal to control the recoverer to perform the convolution decoding for the robust stream of the dual transport stream.
[31] In order to achieve the above-described aspects and/or other features of the present invention, there is provided a digital broadcasting reception method including operations of demodulating a dual transport stream including a normal stream and a robust stream, equalizing the demodulated dual transport stream, Viterbi-decoding the equalized dual transport stream, de-interleaving the Viterbi-decoded dual transport stream, recovering the de-interleaved dual transport stream, RS-decoding the recovered dual transport stream, and de-randomizing the RS-decoded dual transport stream.
[32] The operation of recovering may include operations of performing convolution- decoding for the robust stream among the de-interleaved dual transport stream, and de- interleaving the convolution-decoded robust stream.
[33] The operation of recovering may pass the normal stream as unchanged among the de-interleaved dual transport stream and perform convolution-decoding for the robust stream.
[34] The digital broadcasting reception method may further include an operation of generating a control signal to control the performing of the convolution-decoding for the robust stream of the dual transport stream during the recovering operation. Advantageous Effects
[35] As described above, the digital broadcasting transmission and reception devices and method thereof according to an exemplary embodiment of the present invention provide a sub-channel in which the robust data and the supplementary reference signal will be transmitted so that the reception performance can be enhanced in a dynamic multi environment. Furthermore, the pattern of continuous data can be used as a reference signal to help the equalizer operation.
[36] While the invention has been shown and described with reference to certain exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims. Brief Description of the Drawings
[37] The above aspects and features of the present invention will be more apparent by describing certain embodiments of the present invention with reference to the accompanying drawings, in which:
[38] FIG. 1 is a block diagram of a conventional ATSC VSB system;
[39] FIG. 2 is a view illustrating a frame structure of conventional ATSC VSB data;
[40] FIG. 3 is a block diagram of a digital broadcasting transmission device according to an exemplary embodiment of the present invention;
[41] FIG. 4 are a view exemplifying an MPEG transport stream;
[42] FIG. 5 is a view for explaining an exemplary stuff byte formed in an adaptation field;
[43] FIG. 6 is a view for explaining a dual transport stream structure according to an exemplary embodiment of the present invention;
[44] FIG. 7 is a view illustrating an exemplary interleaving result of a dual transport stream; [45] FlG. 8 is a block diagram of a robust processor illustrated in FlG. 3;
[46] FlG. 9 is a block diagram of a signal controller illustrated in FlG. 3;
[47] FlG. 10 is a block diagram of a digital broadcasting reception device according to an exemplary embodiment of the present invention;
[48] FlG. 11 is a flowchart for explaining a digital broadcasting transmission method according to an exemplary embodiment of the present invention; and
[49] FlG. 12 is a flowchart for explaining a digital broadcasting reception method according to an exemplary embodiment of the present invention. Best Mode for Carrying Out the Invention
[50] Exemplary embodiments of the present invention will be described in detail with reference to the annexed drawings. In the drawings, the same elements are denoted by the same reference numerals throughout the drawings. In the following description, detailed descriptions of known functions and configurations incorporated herein have been omitted for conciseness and clarity.
[51] FlG. 3 is a block diagram of a digital broadcasting transmission device according to an exemplary embodiment of the present invention.
[52] Referring to FlG. 3, a digital broadcasting transmission device according to an exemplary embodiment of the present invention comprises a randomizer 101, a stuff byte controller 103, a supplementary reference signal inserter 105, an RS encoder 107, a signal controller 109, a robust processor 111, an interleaver 113, a compatible parity generator 115, a trellis encoder 117, a main Mux 119, and a modulator 121.
[53] The randomizer 101 randomizes a dual transport stream. The dual transport stream input into the randomizer 101 is formed by multiplexing a normal stream and a robust stream, and includes a stuffing region to insert a supplementary reference signal and a parity region to add a parity. The transport stream will be elucidated with reference to FIG. 4.
[54] The stuff byte controller 103 controls the supplementary reference signal inserter
105 to insert a supplementary reference signal (hereafter referred to as SRS ) into the stuffing region included in a packet of the dual transport stream using a control signal.
[55] If the randomized dual transport stream is input by the randomizer 101, the supplementary reference signal inserter 105 inserts the SRS into the stuffing region included in the packet of the dual transport stream under the control of the stuff byte controller 103. The SRS will be later elucidated with reference to FIGS. 5 and 6.
[56] The RS encoder 107 adds a parity into the parity region included in the packet of the dual transport stream input by the supplementary reference signal inserter 105. The RS encoder 107 is provided in form of concatenated coder that adds the parity into the transport stream to correct errors that may be generated due to the channel feature during the transmission.
[57] The signal controller 109 generates a certain control signal to control the robust processor 111 so that only a robust stream is controlled to be convolution-encoded, and transmits the generated control signal to the robust processor 111. The signal controller 109 will be elucidated later with reference to FlG. 7.
[58] If the dual transport stream RS-encoded by the RS encoder 107 is received, the robust processor 111 passes a normal stream as unchanged among the received dual transport stream, and convolution-encodes only the robust stream so as to configure and output a new dual transport stream. At this time, the robust processor 111 can determine the normal stream and the robust stream by the control signal received from the signal controller 109. The robust processor 111 will be elucidated later with reference to FlG. 8.
[59] The interleaver 113 interleaves the dual transport stream input by the robust processor 111. Here, the interleaving process does not refer to altering data but changing their positions within the data frame.
[60] The compatible parity generator 115 generates a compatible parity on the basis of the packet of the dual transport stream to which the parity is added by the RS encoder 107 and the packet of the dual transport stream which is trellis-encoded by the trellis encoder 117. The compatible parity generator 115 comprises a packet buffer 115a and an RS re-encoder 115b.
[61] The packet buffer 115a receives the packet of the dual transport stream to which the parity is added by the RS encoder 107 and the packet of the dual transport stream which is trellis-encoded by the trellis encoder 117 to temporarily store. Each packet of the dual transport stream stored in the packet buffer 115a is used when the RS re- encoder 115b generates the compatible parity.
[62] The RS re-encoder 115b generates the compatible parity on the based of the packet of the dual transport stream stored in the packet buffer 115a and the packet of the dual transport stream which is trellis-encoded by the trellis encoder 117, and transmits the generated compatible parity again to the trellis encoder 117.
[63] The trellis encoder 117 trellis-encodes the dual transport stream interleaved by the interleaver 113, and transmits the trellis-encoded dual transport stream to the packet buffer 115a to temporarily store. Then, if the compatible parity is received from the RS re-encoder 115b, the trellis-encoder 117 adds the compatible parity into the interleaved dual transport stream to output it.
[64] The main Mux 119 adds segment sync and field sync into the dual transport stream to which the compatible parity is added by the trellis encoder 117 to perform multiplexing.
[65] The modulator 121 performs channel modulating regarding the dual transport stream multiplexed by the main Mux 119, and converting the dual transport stream into a signal in an RF channel bandwidth to transmit the signal. Here, the converting the dual transport stream into the signal in the RF channel bandwidth refers to up- converting.
[66] FIGS. 4 are a view exemplifying an MPEG transport stream. FIG. 4 shows a general MPEG packet, a normal stream packet including an adaptation field, and a robust stream packet including the adaptation field.
[67] The general MPEG packet consists of 1 byte of sync, 3 bytes of header, and 184 bytes of payload. The header of the MPEG packet includes a packet identifier (PID).
[68] The normal stream packet has the same structure as the general MPEG packet in that it includes 1 byte of sync and the PID of 3 bytes of header.
[69] The adaptation field exists for the use of stuff bytes to adjust the size of packet while packetizing the transport stream, and contains 2 bytes of adaptation field (AF) header and T bytes of stuff byte. Here, the T bytes of stuff byte are a stuffing region in which the SRS will be inserted by the supplementary reference signal inserter 105.
[70] In more detail, the normal stream packet including the adaptation field contains the header consisting of 1 byte of sync and 3 bytes of PID, the adaptation filed consisting of 2 bytes of AF header and T bytes of stuff byte and the payload consisting of 182-T bytes of normal data.
[71] The robust stream packet including the adaptation field has similar form to the normal stream packet including the adaptation field. In detail, the robust stream packet including the adaptation field consists of 1 byte of sync, 3 bytes of PID, 2 bytes of AF header, T bytes of stuff byte, and 182-T bytes of robust stream.
[72] As described above, the normal stream and the robust stream including the adaptation field are constructed as the dual transport stream and input to the randomizer 101 of the digital broadcasting transmission device according to an exemplary embodiment of the present invention.
[73] TFIG. 5 is a view for explaining an exemplary stuff byte formed in an adaptation filed.
[74] If there are packets of MO through M51, each packet is 188 bytes, and consists of 1 byte of sync, 3 bytes of PID and 184 bytes of payload.
[75] The packets of MO through M51 are converted into packets including an adaptation field to apply to a digital broadcasting transmission device according to an exemplary embodiment of the present invention. Accordingly, the 188 bytes of packet are converted into those consisting of 1 byte of sync, 3 bytes of PID, N bytes of adaptation field, and 184-N bytes of payload. Additionally, the N bytes of adaptation field consist of 2 bytes of AF header and N-2 bytes of stuff byte.
[76] The payload including the actual data is 184 bytes; however, the payload including the actual data is reduced to 184-N bytes since the packet contains the adaptation field. Due to the adaptation field, the amount of data included in the packet is reduced, but this may help the equalizer operation in a digital broadcasting reception device.
[77] As can be seen from FIGS. 4 and 5, all the packets contain an adaptation field. Additionally, the number of bytes that can be used for a stuff byte is limited to maximum 26 bytes, and the loss of a payload due to SRS and the mix ratio can be determined by the insertion of an AF header and stuff bytes.
[78] FlG. 6 is a view for explaining a dual transport stream structure according to an exemplary embodiment of the present invention.
[79] A dual transport stream according to an exemplary embodiment of the present invention contains a normal stream and a robust stream. As shown,
[80] N normal stream packets and 312-N robust stream packets illustrated in FlG. 6 are converted to include an adaptation field of the structure illustrated in FlG. 5. The normal stream and the robust stream including an adaptation field are constructed as the dual transport stream to be input into the digital broadcasting reception device according to an exemplary embodiment of the present invention.
[81] The dual transport stream input to the digital broadcasting reception device is randomized by the randomizer 101 and the stuff byte is converted into the SRS by the supplementary reference signal inserter 105 so as to have the structure illustrated in FlG. 6. Here, the amount and location of SRS is pre-determined.
[82] FlG. 7 is a view illustrating an exemplary interleaving result of the dual transport stream.
[83] The RS encoder 107 adds 20 bytes of parity into each packet of the dual transport stream to form 207 bytes of packet. The 207 bytes of packet is interleaved by the in- terleaver 113 to have the structure illustrated in FlG. 7. Data located in the same byte position before the interleaving appears contiguously after interleaving by the in- terleaver 113.
[84] FlG. 8 is a block diagram of the robust processor illustrated in FlG. 3.
[85] Referring to FlG. 8, the robust processor 111 of the digital broadcasting transmission device according to an exemplary embodiment of the present invention comprises a robust interleaver 11 Ia, a robust encoder 11 Ib, and a processor Mux 11 Ic.
[86] The robust interleaver Ilia receives the RS-encoded dual transport stream from the
RS encoder 107, and interleaves only the robust stream by the control signal of the signal controller 109. Here, the normal stream that is not input to the robust interleaver 11 Ia by the control signal of the signal controller 109, is directly input to the processor Mux 111c.
[87] The robust encoder 111b receives the robust stream interleaved by the robust interleaver 11 Ia to perform convolution encoding, and transmits the convolution- encoded stream to the processor Mux 111c. [88] The processor Mux 111c multiplexes the normal stream, which is not processed by the control signal of the signal controller 109 but directly input, and the robust stream, which is convolution-encoded by the robust encoder 11 Ib, to output the multiplexed streams.
[89] FlG. 9 is a block diagram of the signal controller illustrated in FlG. 1.
[90] Referring to FlG. 9, the signal controller 109 of the digital broadcasting transmission device according to an exemplary embodiment of the present invention comprises a bit signal generator 109a, a convolution bit interleaver 109b, and a trellis interleaver 109c. [91] The bit signal generator 109a generates a normal bit signal and a robust bit signal.
In detail, the bit signal generator 109a generates the control signal at packet level based on BCPBG and RPP parameters under the same mode as specified in the Modulation section of the ATSC Digital Television Standard, A/53. [92] Preferably, but not necessarily, the bit signal generator 109a may output "1" if the present packet belongs to the robust stream, and may output "0" if the present packet belongs to the normal stream. [93] The convolution bit interleaver 109b performs convolution interleaving regarding the normal bit signal and the robust bit signal generated by the bit signal generator
109a. Here, the bytes can be tracked through the convolution interleaving by the convolution bit interleaver 109b. [94] The trellis interleaver 109c performs trellis-interleaving regarding the normal bit signal and the robust bit signal convolution-interleaved by the convolution interleaver
109b. Preferably, the trellis interleaver 109c consists of 12-symbol trellis interleaver. [95] The output of the trellis interleaver 109c may be " 1 " if the output symbol of the trellis encoder 117 belongs to the robust stream, and the output may be "0" if the output symbol of the trellis encoder 117 belongs to the normal stream. [96] FlG. 10 is a block diagram of a digital broadcasting reception device according to an exemplary embodiment of the present invention. [97] Referring to FlG. 10, the digital broadcasting reception device according to an exemplary embodiment of the present invention comprises a demodulator 201, a symbol detector 203, an equalizer 205, a robust decoder 207, a de-interleaver 209, a control signal generator 211, a recoverer 213, an RS decoder 215, and a de-randomizer
217. [98] The demodulator 201 receives and demodulates a dual transport stream transmitted from the digital broadcasting transmission device illustrated in FlG. 3. Here, the dual transport stream contains a normal stream and a robust stream. [99] The symbol detector 203 detects a known symbol location from the dual transport stream demodulated by the demodulator 201.
[100] The equalizer 205 equalizes the dual transport stream demodulated by the demodulator 201. In other words, the equalizer 205 compensates for channel distortion of the dual transport stream in the multi-path of channel environment to remove mutual interference of received symbols. [101] The robust decoder 207 is a Viterbi decoder that performs Viterbi decoding regarding the dual transport stream equalized by the equalizer 205. The robust stream included in the dual transport stream can be used by the robust decoder 207. [102] The de-interleaver performs de-interleaving regarding the dual transport stream that is Viterbi-decoded by the robust decoder 207. [103] The control signal generator 211 generates a certain control signal to control the recoverer 213 to perform convolution decoding regarding only the robust stream included in the dual transport stream. [104] The recoverer 213 recovers the dual transport stream, which is de-interleaved by the de-interleaver 209, by the control signal of the control signal generator 211. To this end, although not shown, the recoverer 213 may include a robust decoder and a robust de-interleaver. [105] The robust decoder performs convolution decoding regarding only the robust stream among the dual transport stream that is de-interleaved by the de-interleaver 209.
Here, the robust decoder can process only the robust stream by the control signal of the control signal generator 211. [106] The robust de-interleaver performs de-interleaving for the robust stream that is convolution-decoded by the robust decoder. According to this operation, the original
MPEG data can be recovered. [107] The RS decoder 215 performs RS decoding for the dual transport stream recovered by the recoverer 213. [108] The de-randomizer 217 de-randomizes the dual transport stream that is RS-decoded by the RS decoder 215. [109] FIG. 11 is a flowchart for explaining a digital broadcasting transmission method according to an exemplary embodiment of the present invention. [110] Referring to FIG. 11, the randomizer 101 receives the dual transport stream including the normal stream and the robust stream to perform a randomizing (S300). [Ill] After the randomizing, the supplementary reference signal inserter 105 inserts the
SRS into the stuffing region included in the packet of the dual transport stream randomized by the randomizer 101. Here, the supplementary reference signal inserter
105 is controlled by the stuff byte controller 103 (S310). [112] If the dual transport stream, in which the SRS is inserted, is input, the RS encoder
107 performs an RS encoding to add the parity into the parity region included in the packet of the dual transport stream (s320).
[113] The RS-encoded dual transport stream is input into the robust processor 111, and is processed in the robust processor 111 by the control signal of the signal controller 109. The normal stream passes through the robust processor 111 as unchanged among the dual transport stream, and the robust stream is interleaved and convolution-encoded so as to be configured as a new dual transport stream (S330).
[114] The new dual transport stream configured by the robust processor 111 is interleaved by the interleaver 113 (S 340), and trellis-encoded by the trellis encoder 117. Here, the trellis encoder 117 transmits the trellis-encoded dual transport stream to the compatible parity generator 115 (S350).
[115] The compatible parity generator 115 generates the compatible parity on the basis of the packet of the dual transport stream RS-encoded by the RS encoder 107 and the packet of the dual transport stream trellis-encoded by the trellis encoder 117. The compatible parity generator 115 transmits the compatible parity to the trellis encoder 117 (S360).
[116] Then, the trellis encoder 117 attaches the compatible parity received from the compatible parity generator 115 into the dual transport stream to transmit the stream to the main Mux 119. The main Mux 119 adds the segment sync and the field sync into the dual transport stream to perform multiplexing, and the modulator 121 modulates and outputs the multiplexed stream (S370 through S380).
[117] FlG. 12 is a flowchart for explaining a digital broadcasting reception method according to an exemplary embodiment of the present invention.
[118] Referring to FlG. 12, when the dual transport stream is transmitted from the digital broadcasting transmission device, the demodulator 201 receives and demodulates the stream (S400).
[119] The equalizer 205 equalizes the dual transport stream demodulated by the demodulator 201 (S410), the robust decoder 207 performs Viterbi decoding for the equalized dual transport stream (S420), and the de-interleaver 209 de-interleaves again the Viterbi-decoded dual transport stream (S430).
[120] The dual transport stream de-interleaved by the de-interleaver is recovered by the recoverer 213. Here, the recoverer 213 passes the normal stream as unchanged among the dual transport stream, and performs convolution decoding only for the robust stream (S440).
[121] The MPEG data recovered by the recoverer 213 is RS-decoded by the RS decoder
215 (S450), and is de-randomized and output by the de-randomizer 217 (S460).
[122] As described above, the digital broadcasting transmission and reception devices and method thereof according to an exemplary embodiment of the present invention provide a sub-channel in which the robust data and the supplementary reference signal will be transmitted so that the reception performance can be enhanced in a dynamic multi environment. Furthermore, the pattern of continuous data can be used as a reference signal to help the equalizer operation.
[123] While the invention has been shown and described with reference to certain exemplary embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.. Industrial Applicability
[124] The present invention relates to digital broadcasting transmission and reception.

Claims

Claims
[1] A digital broadcasting transmission device comprising: a randomizer which randomizes a dual transport stream comprising a normal stream and a robust stream; a supplementary reference signal inserter which inserts a supplementary reference signal into a stuffing region included in the randomized dual transport stream; a Reed-Solomon (RS) encoder which adds a parity into a parity region included in the dual transport stream; a robust processor which configures a new dual transport stream by convolution- encoding the robust stream among the dual transport stream; an interleaver which interleaves the configured dual transport stream; a trellis encoder which trellis-encodes the interleaved dual transport stream; and a modulator which transmits the trellis-encoded dual transport stream.
[2] The digital broadcasting transmission device according to claim 1, further comprising a compatible parity generator which generates a compatible parity on the basis of the dual transport stream to which the parity is added by the RS encoder and the interleaved dual transport stream which is trellis-encoded by the trellis encoder.
[3] The digital broadcasting transmission device according to claim 2, wherein the trellis encoder replaces a portion of the parity added by the RS encoder, with the compatible parity to perform the trellis-encoding of the interleaved dual transport stream.
[4] The digital broadcasting transmission device according to claim 2, wherein the compatible parity generator comprises: a packet buffer which receives from the RS encoder the dual transport stream, to which the parity is added, and the interleaved dual transport stream trellis- encoded by the trellis encoder, and temporarily stores the parity-added dual transport stream and the trellis-encoded dual transport stream; and an RS re-encoder which generates the compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream stored in the packet buffer.
[5] The digital broadcasting transmission device according to claim 1, wherein the robust processor comprises: a robust interleaver which interleaves the robust stream among the dual transport stream; a robust encoder which performs convolution-encoding for the robust stream; and a processor Mux which multiplexes the convolution-encoded robust stream and the normal stream. [6] The digital broadcasting transmission device according to claim 1, further comprising a signal controller which generates a control signal to control the robust processor to perform the convolution encoding for the robust stream. [7] The digital broadcasting transmission device according to claim 6, wherein the signal controller comprises: a bit signal generator which generates a normal bit signal and a robust bit signal; a convolution bit interleaver which performs convolution-interleaving for the generated normal bit signal and robust bit signal; and a trellis interleaver which performs trellis-interleaving for the convolution-interleaved normal bit signal and robust bit signal, and inputs an output signal to the trellis encoder. [8] The digital broadcasting transmission device according to claim 1, further comprising a multiplexer which adds segment sync and field sync to the trellis- encoded dual transport stream. [9] A digital broadcasting transmission method comprising: randomizing a dual transport stream comprising a normal stream and a robust stream; inserting a supplementary reference signal into a stuffing region included in the randomized dual transport stream; adding a parity into a parity region included in the dual transport stream; configuring a new dual transport stream by convolution-encoding the robust stream among the dual transport stream; interleaving the configured dual transport stream; trellis-encoding the interleaved dual transport stream; and transmitting the trellis-encoded dual transport stream. [10] The digital broadcasting transmission method according to claim 9, further comprising: generating a compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream. [11] The digital broadcasting transmission method according to claim 10, wherein in the operation of trellis encoding, a portion of the parity added by the RS encoder is replaced with the compatible parity to perform the trellis-encoding. [12] The digital broadcasting transmission method according to claim 10, wherein the operation of generating the compatible parity further comprises: receiving and temporarily storing the parity-added dual transport stream and the trellis-encoded dual transport stream; and generating the compatible parity on the basis of the parity-added dual transport stream and the trellis-encoded dual transport stream. [13] The digital broadcasting transmission method according to claim 9, wherein the operation of configuring the new dual transport stream comprises: interleaving the robust stream among the dual transport stream; performing convolution-encoding for the robust stream; and multiplexing the convolution-encoded robust stream and the normal stream to configure the new dual transport stream. [14] The digital broadcasting transmission method according to claim 9, wherein the operation of configuring the new dual transport stream further comprises an operation of generating a control signal by which the robust stream is convolution-encoded. [15] The digital broadcasting transmission method according to claim 14, wherein the operation of the control signal comprises: generating a normal bit signal and a robust bit signal; performing convolution-interleaving for the generated normal bit signal and robust bit signal; and performing trellis-interleaving for the convolution-interleaved normal bit signal and robust bit signal. [16] The digital broadcasting transmission method according to claim 9, further comprising adding segment sync and field sync to the trellis-encoded dual transport stream. [17] A digital broadcasting reception device comprising: a demodulator which demodulates a dual transport stream comprising a normal stream and a robust stream; an equalizer which equalizes the demodulated dual transport stream; a robust decoder which Viterbi-decodes the equalized dual transport stream; a de-interleaver which de-interleaves the Viterbi-decoded dual transport stream; a recoverer which recovers the de-interleaved dual transport stream; a Reed Solomon (RS) decoder which RS-decodes the recovered dual transport stream; and de-randomizer which de-randomizes the RS-decoded dual transport stream. [18] The digital broadcasting reception device according to claim 17, wherein the recoverer comprises: a robust decoder which performs convolution-decoding for the robust stream among the de-interleaved dual transport stream; and a robust de-interleaver which de-interleaves the convolution-decoded robust stream. [19] The digital broadcasting reception device according to claim 17, wherein the recoverer passes the normal stream as unchanged among the de-interleaved dual transport stream and performs the convolution-decoding for the robust stream. [20] The digital broadcasting reception device according to claim 18, further comprising a control signal generator which generates a control signal to control the recoverer to perform the convolution-decoding for the robust stream of the dual transport stream. [21] The digital broadcasting reception device according to claim 17, further comprising a symbol detector which detects a known symbol location from the demodulated dual transport stream and outputs a signal comprising the detected known symbol location to at least one of the demodulator and the equalizer. [22] A digital broadcasting reception method comprising: demodulating a dual transport stream comprising a normal stream and a robust stream; equalizing the demodulated dual transport stream;
Viterbi-decoding the equalized dual transport stream; de-interleaving the Viterbi-decoded dual transport stream; recovering the de-interleaved dual transport stream;
Reed Solomon (RS)-decoding the recovered dual transport stream; and de-randomizing the RS-decoded dual transport stream. [23] The digital broadcasting reception method according to claim 22, wherein the operation of recovering comprises: performing convolution-decoding for the robust stream among the de-interleaved dual transport stream; and de-interleaving the convolution-decoded robust stream. [24] The digital broadcasting reception method according to claim 22, wherein the operation of recovering comprises passing the normal stream as unchanged among the de-interleaved dual transport stream and performing convolution- decoding for the robust stream. [25] The digital broadcasting reception method according to claim 23, wherein the operation of recovering further comprises generating a control signal to control the performing of the convolution decoding. [26] The digital broadcasting reception method according to claim 22, further comprising: detecting a known symbol location from the demodulated dual transport system; and outputting a signal comprising the detected known symbol location, wherein the output signal is used in at least one of the operations of demodulating the dual transport stream and equalizing the demodulated dual transport stream.
PCT/KR2006/001073 2005-03-24 2006-03-23 Digital broadcasting transmission and reception devices and methods thereof WO2006101359A1 (en)

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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2007046677A1 (en) * 2005-10-21 2007-04-26 Samsung Electronics Co., Ltd. Dual transmission stream processing device and method
WO2007046676A1 (en) * 2005-10-21 2007-04-26 Samsung Electronics Co., Ltd. Digital broadcasting receiving system and method
WO2008094018A1 (en) * 2007-02-02 2008-08-07 Samsung Electronics Co., Ltd. Transmitting and receiving system to transmit and receive avsb data, and processing methods thereof
US7680108B2 (en) 2005-10-21 2010-03-16 Samsung Electronics Co., Ltd. Digital broadcasting transmission and reception systems for stream including normal stream and turbo stream and methods thereof
CN101257362B (en) * 2007-02-27 2011-01-19 展讯通信(上海)有限公司 Broadcast service external forward error correction encoding apparatus and method based on TD-SCDMA network

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002085014A1 (en) * 2001-04-18 2002-10-24 Lg Electronics Inc. Vsb communication system
US20020186790A1 (en) * 2001-06-11 2002-12-12 Lg Electronics Inc. Digital VSB transmission system
WO2005006749A1 (en) * 2003-07-10 2005-01-20 Samsung Electronics Co., Ltd. Digital broadcast transmission system of improved receptability and signal processing method thereof
US20050249301A1 (en) * 2004-05-06 2005-11-10 Hae-Joo Jeong Digital broadcast transmitting and receiving system having an improved receiving performance and signal processing method thereof

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002085014A1 (en) * 2001-04-18 2002-10-24 Lg Electronics Inc. Vsb communication system
US20020186790A1 (en) * 2001-06-11 2002-12-12 Lg Electronics Inc. Digital VSB transmission system
WO2005006749A1 (en) * 2003-07-10 2005-01-20 Samsung Electronics Co., Ltd. Digital broadcast transmission system of improved receptability and signal processing method thereof
US20050249301A1 (en) * 2004-05-06 2005-11-10 Hae-Joo Jeong Digital broadcast transmitting and receiving system having an improved receiving performance and signal processing method thereof

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2007046677A1 (en) * 2005-10-21 2007-04-26 Samsung Electronics Co., Ltd. Dual transmission stream processing device and method
WO2007046676A1 (en) * 2005-10-21 2007-04-26 Samsung Electronics Co., Ltd. Digital broadcasting receiving system and method
US7680108B2 (en) 2005-10-21 2010-03-16 Samsung Electronics Co., Ltd. Digital broadcasting transmission and reception systems for stream including normal stream and turbo stream and methods thereof
US8594245B2 (en) 2005-10-21 2013-11-26 Samsung Electronics Co., Ltd. Digital broadcasting receiving system and method
WO2008094018A1 (en) * 2007-02-02 2008-08-07 Samsung Electronics Co., Ltd. Transmitting and receiving system to transmit and receive avsb data, and processing methods thereof
US8737432B2 (en) 2007-02-02 2014-05-27 Samsung Electronics Co., Ltd. Transmitting and receiving system to transmit and receive AVSB data, and processing methods thereof
CN101257362B (en) * 2007-02-27 2011-01-19 展讯通信(上海)有限公司 Broadcast service external forward error correction encoding apparatus and method based on TD-SCDMA network

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