PS-ZCPA Based Feature Extraction with Auditory Masking, Modulation Enhancement and Noise Reduction for Robust ASR

نویسندگان

  • Muhammad Ghulam
  • Takashi Fukuda
  • Kouichi Katsurada
  • Junsei Horikawa
  • Tsuneo Nitta
چکیده

A pitch-synchronous (PS) auditory feature extraction method based on ZCPA (Zero-Crossings Peak-Amplitudes) was proposed previously and showed more robustness over a conventional ZCPA and MFCC based features. In this paper, firstly, a non-linear adaptive threshold adjustment procedure is introduced into the PS-ZCPA method to get optimal results in noisy conditions with different signal-to-noise ratio (SNR). Next, auditory masking, a well-known auditory perception, and modulation enhancement that simulates a strong relationship between modulation spectrums and intelligibility of speech are embedded into the PS-ZCPA method. Finally, a Wiener filter based noise reduction procedure is integrated into the method to make it more noise-robust, and the performance is evaluated against ETSI ES202 (WI008), which is a standard front-end for distributed speech recognition. All the experiments were carried out on Aurora-2J database. The experimental results demonstrated improved performance of the PS-ZCPA method by embedding auditory masking into it, and a slightly improved performance by using modulation enhancement. The PS-ZCPAmethod with Wiener filter based noise reduction also showed better performance than ETSI ES202 (WI008). key words: pitch synchronous analysis, ZCPA, auditory masking, modulation enhancement, Wiener filtering

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عنوان ژورنال:
  • IEICE Transactions

دوره 89-D  شماره 

صفحات  -

تاریخ انتشار 2006