Title :
Multistage vector quantizer optimization for packet networks
Author :
Khalil, Hosam ; Rose, Kenneth
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of California, Santa Barbara, CA, USA
fDate :
7/1/2003 12:00:00 AM
Abstract :
A multistage vector quantizer (MSVQ) based coding system is source-channel optimized for packet networks. Resilience to packet loss is enhanced by a proposed interleaving approach that ensures that a single lost packet only eliminates a subset of the vector stages. The design is optimized while taking into account compression efficiency, packet loss rate, and the interleaving technique in use. The new source-channel-optimized MSVQ is tested on memoryless speech line spectral frequency (LSF) parameter quantization as well as block-based image compression. With LSF coding, a source-channel-optimized MSVQ is shown to yield gains of up to 2.0 dB in signal-to-ratio (SNR) over traditional MSVQ and to substantially enhance the robustness of packetized speech transmission. Substantial gains were also obtained in the case of block-based image compression. Although the formulation is given in the context of packet networks, the work is directly extendible to the broader category of erasure channels.
Keywords :
combined source-channel coding; image coding; optimisation; packet switching; spectral analysis; speech coding; speech enhancement; vector quantisation; MSVQ based coding system; block-based image compression; compression efficiency; interleaving approach; interleaving technique; lost packet; memoryless speech line spectral frequency parameter quantization; memoryless speech parameter quantization; multistage vector quantizer optimization; packet loss; packet loss rate; packet networks; packetized speech transmission; signal-to-ratio; source-channel coding; source-channel-optimized MSVQ; vector stages; Design optimization; Frequency; Image coding; Interleaved codes; Quantization; Resilience; Robustness; Speech coding; Speech enhancement; Testing;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2003.812731