首页> 外文会议>IEEE International Conference on Acoustics, Speech and Signal Processing >RAPID PHONETIC TRANSCRIPTION USING EVERYDAY LIFE NATURAL CHAT ALPHABET ORTHOGRAPHY FOR DIALECTAL ARABIC SPEECH RECOGNITION
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RAPID PHONETIC TRANSCRIPTION USING EVERYDAY LIFE NATURAL CHAT ALPHABET ORTHOGRAPHY FOR DIALECTAL ARABIC SPEECH RECOGNITION

机译:使用日常生活自然聊天字母拼图进行快速语音转录,用于辩证阿拉伯语语音识别

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摘要

We propose the Arabic Chat Alphabet (ACA) as naturally written in everyday life for dialectal Arabic speech transcription. Our assumption is that ACA is a natural language that includes short vowels that are missing in traditional Arabic orthography. Furthermore, ACA transcriptions can be rapidly prepared. Egyptian Colloquial Arabic was chosen as a typical dialect. Two speech recognition baselines were built: phonemic and graphemic. Original transcriptions were re-written in ACA by different transcribers. Ambiguous ACA sequences were handled by automatically generating all possible variants. ACA variations across transcribers were modeled by phonemes normalization and merging. Results show that the ACA-based approach outperforms the graphemic baseline while it performs as accurate as the phoneme-based baseline with a slight increase in WER.
机译:我们提出了阿拉伯语聊天字母(ACA),如日常生活中的日常生活中自然写的。 我们的假设是ACA是一种自然语言,包括传统阿拉伯语拼图中缺少的短元音。 此外,可以快速制备ACA转录。 埃及口语阿拉伯语被选为典型的方言。 建造了两个语音识别基线:音素和绘画。 通过不同的转录器重新编写原始转录。 通过自动生成所有可能的变体来处理模糊的ACA序列。 转录器的ACA变体由音素标准化和合并建模。 结果表明,基于ACA的方法优于平面基线,同时它表现为基于音素的基线,随着WER轻微增加。

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