DocumentCode
1523463
Title
A zero-delay sequential scheme for lossy coding of individual sequences
Author
Linder, Tamás ; Lagosi, G.
Author_Institution
Dept. of Math. & Stat., Queen´´s Univ., Kingston, Ont., Canada
Volume
47
Issue
6
fYear
2001
fDate
9/1/2001 12:00:00 AM
Firstpage
2533
Lastpage
2538
Abstract
We consider adaptive sequential lossy coding of bounded individual sequences when the performance is measured by the sequentially accumulated mean-squared distortion. The encoder and the decoder are connected via a noiseless channel of capacity R and both are assumed to have zero delay. No probabilistic assumptions are made on how the sequence to be encoded is generated. For any bounded sequence of length n, the distortion redundancy is defined as the normalized cumulative distortion of the sequential scheme minus the normalized cumulative distortion of the best scalar quantizer of rate R which is matched to this particular sequence. We demonstrate the existence of a zero-delay sequential scheme which uses common randomization in the encoder and the decoder such that the normalized maximum distortion redundancy converges to zero at a rate n-1/5 log n as the length of the encoded sequence n increases without bound
Keywords
adaptive codes; quantisation (signal); rate distortion theory; sequences; sequential codes; source coding; adaptive sequential lossy coding; bounded individual sequences; common randomization; decoder; distortion redundancy; encoder; noiseless channel; normalized cumulative distortion; scalar quantizer; sequentially accumulated mean-squared distortion; zero-delay sequential scheme; Channel capacity; Decoding; Delay; Distortion measurement; Loss measurement; Performance loss; Propagation losses; Quantization; Source coding; Time sharing computer systems;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/18.945263
Filename
945263
Link To Document