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Speech modelling using phoneme segmentation and modified weighted levenshtein distance
A method of choosing a word hypothesis from a dictionary of a speech recognition system is presented. The method applies a modified weighted Levenshtein distance for better accuracy. The distance is counted between phonetic transcriptions of a string of phonemes received from a classifier and of a d...
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creator | Ziólko, B Gałka, J Skurzok, D |
description | A method of choosing a word hypothesis from a dictionary of a speech recognition system is presented. The method applies a modified weighted Levenshtein distance for better accuracy. The distance is counted between phonetic transcriptions of a string of phonemes received from a classifier and of a dictionary. It allows efficient conducting of speech classifying task. |
doi_str_mv | 10.1109/ICALIP.2010.5685072 |
format | conference_proceeding |
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The method applies a modified weighted Levenshtein distance for better accuracy. The distance is counted between phonetic transcriptions of a string of phonemes received from a classifier and of a dictionary. It allows efficient conducting of speech classifying task.</abstract><pub>IEEE</pub><doi>10.1109/ICALIP.2010.5685072</doi><tpages>4</tpages></addata></record> |
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subjects | Acoustics Conferences Dictionaries Hidden Markov models Speech Speech processing Speech recognition |
title | Speech modelling using phoneme segmentation and modified weighted levenshtein distance |
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