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| Content Provider | IEEE Xplore Digital Library |
|---|---|
| Author | Joshi, N. Ling Guan |
| Copyright Year | 2007 |
| Description | Author affiliation: Dept. of Electr. & Comput. Eng., Ryerson Univ., Toronto, Ont. (Joshi, N.; Ling Guan) |
| Abstract | The difficulty of ASR under non-stationary noise conditions is a major contributing factor hindering the widespread deployment of ASR systems. Bottom up techniques such as speech noise separation and top down methods to adapt the acoustic model to the environment have been applied to address the issue. The missing data approach to ASR improves upon existing techniques basing recognition solely on the reliable components of the signal and has been demonstrated as an effective method to handle non-stationarity. Proposed in this paper is a novel technique whereby ASR using missing data theory under non-stationary noise conditions is improved by use of a fusion of models at the decision level. This fused model introduces more resilient features to the missing data decode process. The fused decoder is found to significantly increase recognition performance over conventional missing data techniques. A major finding in this paper is when the fused decoder exhibits the fusion of bottom up and top down processes. Under this condition, the proposed combination of recognizers technique is found to outperform all other tested ASR systems. |
| File Size | 5660900 |
| File Format | |
| ISBN | 1424407273 |
| ISSN | 15206149 |
| DOI | 10.1109/ICASSP.2007.367251 |
| Language | English |
| Publisher | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Publisher Date | 2007-04-15 |
| Publisher Place | USA |
| Access Restriction | Subscribed |
| Rights Holder | Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Subject Keyword | Automatic speech recognition Hidden Markov models Decoding Mel frequency cepstral coefficient Speech enhancement Speech recognition Speech processing Acoustic noise Working environment noise System testing Time Series Pattern recognition |
| Content Type | Text |
| Resource Type | Article |
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