DocumentCode
70712
Title
Estimation-Theoretic Approach to Delayed Decoding of Predictively Encoded Video Sequences
Author
Jingning Han ; Melkote, Vinay ; Rose, Kenneth
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of California, Santa Barbara, Santa Barbara, CA, USA
Volume
22
Issue
3
fYear
2013
fDate
Mar-13
Firstpage
1175
Lastpage
1185
Abstract
Current video coders employ predictive coding with motion compensation to exploit temporal redundancies in the signal. In particular, blocks along a motion trajectory are modeled as an auto-regressive (AR) process, and it is generally assumed that the prediction errors are temporally independent and approximate the innovations of this process. Thus, zero-delay encoding and decoding is considered efficient. This paper is premised on the largely ignored fact that these prediction errors are, in fact, temporally dependent due to quantization effects in the prediction loop. It presents an estimation-theoretic delayed decoding scheme, which exploits information from future frames to improve the reconstruction quality of the current frame. In contrast to the standard decoder that reproduces every block instantaneously once the corresponding quantization indices of residues are available, the proposed delayed decoder efficiently combines all accessible (including any future) information in an appropriately derived probability density function, to obtain the optimal delayed reconstruction per transform coefficient. Experiments demonstrate significant gains over the standard decoder. Requisite information about the source AR model is estimated in a spatio-temporally adaptive manner from a bit-stream conforming to the H.264/AVC standard, i.e., no side information needs to be sent to the decoder in order to employ the proposed approach, thereby compatibility with the standard syntax and existing encoders is retained.
Keywords
autoregressive processes; data compression; decoding; delay estimation; image reconstruction; image sequences; motion compensation; quantisation (signal); video coding; AR process; H.264/AVC standard; autoregressive process; bit-stream conforming; estimation-theoretic approach; estimation-theoretic delayed decoding scheme; frame reconstruction quality; motion compensation; motion trajectory; optimal delayed reconstruction per transform coefficient; prediction errors; prediction loop; predictively encoded video sequences; probability density function; quantization effects; quantization indices; signal temporal redundancy; source AR model; video coders; zero-delay encoding; Decoding; Delay; Probability density function; Quantization; Standards; Trajectory; Transforms; Delayed decoding; differential pulse code modulation; estimation-theoretic prediction; motion trajectory; predictive coding; Algorithms; Artifacts; Data Compression; Image Enhancement; Image Interpretation, Computer-Assisted; Pattern Recognition, Automated; Reproducibility of Results; Sensitivity and Specificity; Subtraction Technique; Video Recording;
fLanguage
English
Journal_Title
Image Processing, IEEE Transactions on
Publisher
ieee
ISSN
1057-7149
Type
jour
DOI
10.1109/TIP.2012.2227773
Filename
6355680
Link To Document