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Flexible speech understanding based on combined key-phrase detection and verification

机译:基于组合的关键短语检测和验证的灵活语音理解

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We propose a novel speech understanding strategy based on combined detection and verification of semantically tagged key-phrases in spontaneous spoken utterances. Key-phrases are defined in a top-down manner so as to constitute semantic slots. Their detection directly leads to robust understanding. A phrase network realizes both a wide coverage and a reasonable constraint for detection. A subword-based verifier is then incorporated to reduce false alarms in detection and attach confidence measures of the detected phrases. This set of phrase confidence measures, when incorporated in a spoken dialogue system, forms a basis for designing intelligent speech interfaces that accept only verified key-phrases and reprompt users to clarify unspecified or unrecognized portions. Several forms of confidence measures based on subword-level tests are investigated. The proposed approach was tested on field data collected from real-world trial applications. The combined detection and verification strategy drastically improves the accuracy in handling out-of-grammar utterances over the conventional decoding approaches while maintaining the performance for in-grammar utterances.
机译:我们提出了一种新的语音理解策略,该策略基于自发语音中语义标记的关键短语的组合检测和验证。关键字短语以自上而下的方式定义,以构成语义槽。对它们的检测直接导致了深刻的理解。短语网络既可以实现广泛的覆盖范围,又可以实现合理的检测约束。然后合并了一个基于子词的验证器,以减少检测中的误报并附加检测到的短语的置信度。当将这组短语置信度度量结合到口语对话系统中时,它们构成了设计智能语音界面的基础,该界面仅接受经过验证的关键短语并提示用户以澄清未指定或未识别的部分。研究了基于子词级测试的几种形式的置信度度量。对从实际试验应用程序中收集的现场数据进行了测试。与常规解码方法相比,组合的检测和验证策略可以大大提高处理语法外发声的准确性,同时保持语法内发声的性能。

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