Title :
On the Wyner-Ziv problem for individual sequences
Author :
Merhav, Neri ; Ziv, Jacob
Author_Institution :
Dept. of Electr. Eng., Technion-Israel Inst. of Technol., Haifa
fDate :
3/1/2006 12:00:00 AM
Abstract :
We consider a variation of the Wyner-Ziv (W-Z) problem pertaining to lossy compression of individual sequences using finite-state encoders and decoders. There are two main results in this paper. The first characterizes the relationship between the performance of the best M-state encoder-decoder pair to that of the best block code of size lscr for every input sequence, and shows that the loss of the latter relative to the former (in terms of both rate and distortion) never exceeds the order of (logM)/lscr, independently of the input sequence. Thus, in the limit of large M, the best rate-distortion performance of every infinite source sequence can be approached universally by a sequence of block codes (which are also implementable by finite-state machines). While this result assumes an asymptotic regime where the number of states is fixed, and only the length n of the input sequence grows without bound, we then consider the case where the number of states M=Mn is allowed to grow concurrently with n. Our second result is then about the critical growth rate of Mn such that the rate-distortion performance of Mn-state encoder-decoder pairs can still be matched by a universal code. We show that this critical growth rate of Mn is linear in n
Keywords :
block codes; data compression; decoding; finite state machines; rate distortion theory; sequences; source coding; M-state encoder-decoder pair; Wyner-Ziv problem; block code; finite-state machine; individual sequence; infinite source sequence; information compression; rate-distortion performance; universal code; Block codes; Cities and towns; Decoding; Jacobian matrices; Memoryless systems; Noise reduction; Performance loss; Rate distortion theory; Rate-distortion; Source coding; Finite-state machines; Wyner–Ziv problem; block codes; individual sequences; side information; universal coding;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2005.864434