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- W2016000176 abstract "In this paper, we first described the automatic Spoken Chinese Test (SCT). With a large amount of native and non-native data collected for SCT, different training strategies for acoustic modeling were investigated. Evaluations were performed on native as well as non-native datasets. We discovered that directly combining native and non-native data to train acoustic models did not work well, and the acoustic model trained only on native data achieved better performance when applying to non-native speech. We investigated how to use non-native data effectively, and found that Phonetic Decision Tree (PDT) had a great impact. Discriminative training was found to improve speech recognition accuracy effectively for both native and non-native Mandarin speech." @default.
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- W2016000176 date "2012-12-01" @default.
- W2016000176 modified "2023-09-22" @default.
- W2016000176 title "Acoustic modeling for native and non-native Mandarin speech recognition" @default.
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- W2016000176 doi "https://doi.org/10.1109/iscslp.2012.6423544" @default.
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