WO1999005870A2 - Method of switching between video sequences and corresponding device - Google Patents

Method of switching between video sequences and corresponding device Download PDF

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Publication number
WO1999005870A2
WO1999005870A2 PCT/IB1998/000878 IB9800878W WO9905870A2 WO 1999005870 A2 WO1999005870 A2 WO 1999005870A2 IB 9800878 W IB9800878 W IB 9800878W WO 9905870 A2 WO9905870 A2 WO 9905870A2
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WIPO (PCT)
Prior art keywords
switching
buffer
video
transcoding
coded
Prior art date
Application number
PCT/IB1998/000878
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French (fr)
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WO1999005870A3 (en
Inventor
Yann Lemaguet
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Koninklijke Philips Electronics N.V.
Philips Ab
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Application filed by Koninklijke Philips Electronics N.V., Philips Ab filed Critical Koninklijke Philips Electronics N.V.
Priority to JP11509561A priority Critical patent/JP2001501072A/en
Priority to EP98921685A priority patent/EP0927495A4/en
Publication of WO1999005870A2 publication Critical patent/WO1999005870A2/en
Publication of WO1999005870A3 publication Critical patent/WO1999005870A3/en

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Classifications

    • 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
    • H04N21/234Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs
    • H04N21/2343Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs involving reformatting operations of video signals for distribution or compliance with end-user requests or end-user device requirements
    • H04N21/234363Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs involving reformatting operations of video signals for distribution or compliance with end-user requests or end-user device requirements by altering the spatial resolution, e.g. for clients with a lower screen resolution
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/40Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using video transcoding, i.e. partial or full decoding of a coded input stream followed by re-encoding of the decoded output stream
    • 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
    • H04N21/234Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs
    • H04N21/23406Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs involving management of server-side video buffer
    • 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
    • H04N21/234Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs
    • H04N21/2343Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs involving reformatting operations of video signals for distribution or compliance with end-user requests or end-user device requirements
    • H04N21/234354Processing of video elementary streams, e.g. splicing of video streams, manipulating MPEG-4 scene graphs involving reformatting operations of video signals for distribution or compliance with end-user requests or end-user device requirements by altering signal-to-noise ratio parameters, e.g. requantization

Definitions

  • F(.) transcoder buffer fullness at concerned time (.).
  • VBV_delay_out(k) VBV delay of picture number k at the transcoder output/decoder input.
  • the transcoder buffer fullness has therefore to be bounded.
  • the boundaries B(MIN) and B(MAX) are defined according to the following relation : B(MIN) ⁇ F(t(k)) ⁇ B(MAX) (3), by considering the decoder at the most critical times.
  • said critical times are the ones just before decoding a picture (i.e. the times t(k) + D(t(k)). Just before such times, the decoder buffer fullness, at time t(k) + D(t(k)), is given by FDEC(t(k) + D(t(k))) :
  • the most critical times are the ones just after decoding a picture (i.e. the times t(k) + D(t)(K)), which allows to deduce, after some similar computations, the relation giving B(MAX) :

Abstract

The invention relates, in encoding/decoding systems, to an improved method of switching from a first coded video sequence to a second one. In order to avoid underflow or overflow of the decoder buffer, a transcoding of the input streams IS1 and IS2 is used toshift the temporal position of the switching point and to obtain at the output of the provided transcoders (11, 12) streams TS1 and Ts2 containing an identical entry point and the same decoder buffer characteristics. Application: switching of bitstreams generated according to the MPEG-1 and MPWG-2 standards.

Description

"Method of switching between video sequences and corresponding device" .
The present invention relates to a method of switching from a first coded video sequence to a second one, said video sequences having been encoded by different video encoders using regulation buffers, and to a corresponding switching device. This invention may be used for instance in MPEG1 or MPEG2 encoding/decoding systems.
Encoding systems such as those according to the MPEG2 standard produce data at variable rates (encoded pictures have variable sizes in bits) and require an output data buffer in order to feed the (constant bitrate) transmission channel. Similarly the corresponding decoders require an input data buffer to enable them to use data from said channel at the required variable rates. The transmitted encoded pictures will therefore not spend the same time in the decoder buffer. As a consequence, when switching from a first video sequence to a second one, the respective decoder buffer delays at the transition (or switching point) are not equal.
It is known indeed that, thanks to the abstract model of decoding VBV (Video Buffer Verifier) defined in the MPEG standard, it is possible to verify that an MPEG bitstream is decodable with reasonable buffering and delay requirements (expressed in the sequence header, in the fields "bitrate" and "buffer size"). This model of VBV is that of a receiving buffer for the coded bitstream and an associated instantaneous decoder so that all the data for a picture are instantaneously removed from said receiving buffer. Within the framework of this model, constraints on the bitstream (by way of the buffer occupancy) have been defined so that decoding can occur without buffer underflow or overflow. If said first and second sequences to be switched have been separately encoded, such a risk of overflow or underflow for the decoder buffer however exists.
In order to prevent such a risk, the switching operation may be performed in the decompressed domain where all the decoded pictures are again described with the same number of bits and last a same duration. Said pictures are then sent to a conventional mixer for switching, and recoded before transmission. Such a solution, described for example in the international patent application WO 97/08898, is however rather complex. Moreover, a decoding step followed by a re-encoding one damages the picture quality. It is therefore an object of the invention to propose another switching method that overcomes these drawbacks.
To this end the invention relates to a switching method such as described in the preamble of the description and wherein the switching step is preceded by a transcoding step of each of said coded sequences, provided for shifting the temporal position of the switching point. The invention also relates to a corresponding device.
The basic idea of this solution is to transcode the input encoded streams such that they have at the switching point, now chosen a posteriori, the same decoder buffer characteristics, and particularly buffer delays that now are equal.
The particularities and advantages of the invention will now become apparent from the following description and the accompanying drawings, in which :
- Fig.1 is an illustration of the method and device according to the invention ; - Fig.2 shows a transmission chain including a transcoder ;
- Fig.3 shows an example of transcoder buffer boundaries corresponding to measures taken during the transcoding step ;
- Fig.4 shows the transcoded bitstream ;
- Fig.5 shows an implementation of each transcoding circuit of a device according to the invention.
The switching method and device according to the invention are illustrated in Fig. l, that shows transcoding devices 11 and 12 receiving input coded streams IS1 and IS2 (corresponding to first and second original video sequences, for instance to a national television programme and to a local one) and delivering corresponding output transcoded streams TSl and TS2. These streams TSl and TS2 now contain an identical entry point, as it will be explained, and may be sent towards the switcher 15. At the output of said switcher, an output stream OS is available that corresponds, with respect to the input streams, to that one called the second video sequence, the other input stream being then the first one. In a transcoding operation, a compressed sequence with a first given format is converted into another one with another format. The transcoding operation here proposed is used to shift the temporal position of the switching point so that the input coded streams will have the same decoder buffer characteristics (which was not the case for separately encoded streams). This shifting of the temporal position of the switching point is obtained by modifying the number of bits allocated to the encoding of the video parts preceding and following said switching point, while the total number of bits used by each transcoded stream remains equal to the one used by the corresponding input stream.
A transmission chain is illustrated in Fig.2 : it includes a transcoder 22 between an encoder 21 and a decoder 23, shown with their buffers. According to the invention, the output bit rate of each transcoder is equal to its input bit rate. There is indeed no change in the bit rate, only the picture start positions are changed (shifted) in order to create a seamless splicing point keeping ensured the stability of the decoder buffer.
The transcoding operation has to ensure the decoder buffer stability for the output stream, and must therefore avoid overflow or underflow of said buffer. Critical times for the decoder buffer overflow are the ones just before decoding a picture, i.e. the times D(t(k)) + t(k), the notations being the following ones : t(k) = time at which the start code of the picture number k enters the transcoder ; D(t(k)) = delay between transcoder buffer input and decoder output (as seen for instance in Fig.2) By definition of D(t(k)), one has :
D(t(k) = VBV_delay_out(k) + F(t(k))/R (1) and : D(t(k) + t(k) = D(t(k-1)) + t(k-l) + 1/P (2) with : P = frame rate (and 1/P = frame period). R = video bit rate
F(.) = transcoder buffer fullness at concerned time (.).
VBV_delay_out(k) = VBV delay of picture number k at the transcoder output/decoder input.
For defining the VBV delay, one must recall that the VBV (Video Buffering Verifier), considered as connected to the output of the encoder, has the same clock frequency and picture rate as said encoder (they are operated synchronously). The VBV has a decoding buffer of size S (where S is given in the so-called vbv_buffer_size field of the sequence header) that is initially empty and is filled by the bitstream for a time specified in the so- called vbv_delay_field of the video bitstream. After each picture interval, all of the data for the picture which, at that time, has been in the buffer longest is instantaneously removed. The VBV is examined immediately before removing any data and immediately after each picture is removed, and its occupancy must then lie between 0 and S bits. In the present case, to avoid overflow and underflow of the decoder buffer, the transcoder buffer fullness has therefore to be bounded. The boundaries B(MIN) and B(MAX) are defined according to the following relation : B(MIN) < F(t(k)) < B(MAX) (3), by considering the decoder at the most critical times.
For the decoder buffer overflow, said critical times are the ones just before decoding a picture (i.e. the times t(k) + D(t(k)). Just before such times, the decoder buffer fullness, at time t(k) + D(t(k)), is given by FDEC(t(k) + D(t(k))) :
Figure imgf000006_0001
with : tj = time at which the decoder buffer is considered as empty ;
Pvjndec = bit rate at the decoder buffer input (= Rout) ;
Rout = bit rate at the transcoder buffer output ; sizepic(i) = size of the picture i. As it is wanted that FDEC (t(k) + D(t(k)) < S (S being, as already said, the decoder buffer size), it can be deduced, after some computations, that : t(k)+D(t(k))
B(MIN) = MAX" 0, / Rout(t).dt- (4) t(k)
Similarly, for the decoder buffer underflow, the most critical times are the ones just after decoding a picture (i.e. the times t(k) + D(t)(K)), which allows to deduce, after some similar computations, the relation giving B(MAX) :
Figure imgf000006_0002
Moreover, the transcoding has to guarantee a specified decoder buffer delay at the transition point, which leads to a determined transcoder buffer fullness value at the transition point. Two other boundaries converging toward this value have therefore to be introduced. An illustration of all these transcoder buffer boundaries is given in Fig.3 (transcoder buffer fullness TBF versus time t), with the following notations :
- B(MIN) and B(MAX), for the lower and upper boundaries introduced by the decoder buffer stability constraints ; - BFT, for the buffer fullness to be guaranteed at the transition point TP ;
- BT(MIN) and BT(MAX), for the converging boundaries introduced by the transition point constraints.
It must also be indicated that the transcoding operation is only useful, and therefore only performed, within a temporal window positioned around the transition point arrival time in the transcoder. As shown in Fig.4, this temporal window starts a sufficient delay (transcoding start = TST) before the transition point arrival time, so that the wanted decoder buffer constraints are really obtained at this point, and also ends another sufficient delay (transcoding end = TED) after said transition point arrival time, so that the decoder buffer characteristics of the transcoded stream become equal to the ones of the corresponding input stream. Outside this temporal window, the transcoder is equivalent to a delay line, said delay having no effect on the image quality.
The structure of each transcoding device of Fig. l is therefore the following, as illustrated in Fig.5 : it comprises in series a variable length decoder 51, an inverse quantizer 52, a quantizer 53, a variable length encoder 54 (also designated by the references VLD, Q"1, Q and VLC respectively), and a buffer 55. A regulation circuit 56 provided at the output of said buffer allows to modify the quantization stepsize in the quantizer 53. In parallel with the first branch constituted by these elements 51 to 56, a delay line 57 forming a second branch is provided (the delay it introduces is equal to the transcoding delay). A switching circuit 58 receives on two inputs the outputs of said first and second branches. As already seen, the input bit rate at the inputs of said branches and the output bitrate at the output of the switching circuit 58 have the same value.

Claims

CLAIMS:
1. A method of switching from a first coded video sequence 'o a second one, said video sequences having been encoded by different video encoders using regulation buffers, wherein the switching step is preceded by a transcoding step of each of said coded sequences, provided for shifting the temporal position of the switching point.
2. A device for switching from a first coded video sequence to a second one, said video sequences having been encoded by different video encoders using regulation buffers and said device comprising a switching circuit that receives on two inputs coded input bistreams corresponding to said first and second video sequences and yields an output stream corresponding to only one of said coded input bitstreams, wherein each input of the switching circuit is preceded by a transcoding circuit.
PCT/IB1998/000878 1997-07-22 1998-06-05 Method of switching between video sequences and corresponding device WO1999005870A2 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
JP11509561A JP2001501072A (en) 1997-07-22 1998-06-05 Switching method between video sequences and corresponding device
EP98921685A EP0927495A4 (en) 1997-07-22 1998-06-05 Method of switching between video sequences and corresponding device

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EP97401764 1997-07-22
EP97401764.2 1997-07-22
US09/120,292 US6314138B1 (en) 1997-07-22 1998-07-21 Method of switching between video sequencing and corresponding device

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WO1999005870A3 WO1999005870A3 (en) 1999-04-08

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US20010019585A1 (en) 2001-09-06
EP0927495A2 (en) 1999-07-07
CN1236527A (en) 1999-11-24
US6314138B1 (en) 2001-11-06
WO1999005870A3 (en) 1999-04-08
EP0927495A4 (en) 2001-05-30
JP2001501072A (en) 2001-01-23

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