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Dialogue evaluation via multiple hypothesis ranking

机译:通过多个假设排序进行对话评估

摘要

In language evaluation systems, user expressions are often evaluated by speech recognizers and language parsers, and among several possible translations, a highest-probability translation is selected and added to a dialog sequence. However, such systems may exhibit inadequacies by discarding alternative translations that may initially exhibit a lower probability, but that may have a higher probability when evaluated in the full context of the dialog, including subsequent expressions. Presented herein are techniques for communicating with a user by formulating a dialog hypothesis set identifying hypothesis probabilities for a set of dialog hypotheses, using generative and/or discriminative models, and repeatedly re-ranks the dialog hypotheses based on subsequent expressions. Additionally, knowledge sources may inform a model-based with a pre-knowledge fetch that facilitates pruning of the hypothesis search space at an early stage, thereby enhancing the accuracy of language parsing while also reducing the latency of the expression evaluation and economizing computing resources.
机译:在语言评估系统中,用户表达通常由语音识别器和语言解析器评估,并且在几种可能的翻译中,选择最高概率的翻译并将其添加到对话序列中。但是,这样的系统可能会通过丢弃替代翻译而表现出不足之处,这些替代翻译最初可能显示较低的概率,但是在对话框的完整上下文中(包括后续表达式)进行评估时,可能具有较高的概率。本文提出的技术是,通过使用生成和/或判别模型,通过公式化对话假设集来识别用户对一组对话假设的假设概率,来与用户进行通信,并基于后续表达对对话假设进行重新排序。另外,知识源可以为基于模型的知识提供预知,这有助于在早期阶段对假设搜索空间进行修剪,从而提高语言解析的准确性,同时还减少了表达评估的等待时间并节省了计算资源。

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