Automatic phoneme alignment based on acoustic-phonetic modeling

John-Paul Hosom · 2002

This paper presents a method for speaker-independent automatic phonetic alignment that is distinguished from standard HMM-based “forced alignment ” in three respects: (1) specific acoustic-phonetic features are used, in addition to PLP features, by the phonetic classifier; (2) the units of classification consist of distinctive phonetic features instead of phonemes; and (3) observation probabilities depend not only on the current state, but also on the state transition information. This proposed method is compared with a state-of-the-art baseline forcedalignment system on a number of corpora, including telephone speech, microphone speech, and children’s speech. The new method has agreement of 92.57 % within 20 msec on the TIMIT corpus, which is a 26 % reduction in error over the baseline method (with 89.95 % agreement on TIMIT). Average reduction in error over all corpora is 28%. 1.

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