发明名称 Split matrix quantization with split vector quantization error compensation and selective enhanced processing for robust speech recognition
摘要 A speech recognition system utilizes both split matrix and split vector quantizers as front ends to a second stage speech classifier such as hidden Markov models (HMMs) to, for example, efficiently utilize processing resources and improve speech recognition performance. Fuzzy split matrix quantization (FSMQ) exploits the "evolution" of the speech short-term spectral envelopes as well as frequency domain information, and fuzzy split vector quantization (FSVQ) primarily operates on frequency domain information. Time domain information may be substantially limited which may introduce error into the matrix quantization, and the FSVQ may provide error compensation. Additionally, acoustic noise influence may affect particular frequency domain subbands. This system also, for example, exploits the localized noise by efficiently allocating enhanced processing technology to target noise-affected input signal parameters and minimize noise influence. The enhanced processing technology includes a weighted LSP and signal energy related distance measure in training Linde-Buzo-Gray (LBG) algorithm and during recognition. Multiple codebooks may also be combined to form single respective codebooks for split matrix and split vector quantization to lower processing resources demand.
申请公布号 US6067515(A) 申请公布日期 2000.05.23
申请号 US19970957903 申请日期 1997.10.27
申请人 ADVANCED MICRO DEVICES, INC. 发明人 CONG, LIN;ASGHAR, SAFDAR M.
分类号 G10L15/02;G10L15/10;G10L15/20;(IPC1-7):G10L9/00 主分类号 G10L15/02
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