Evaluation for WFST-based dialog management

Chiori Hori, Kiyonori Ohtake, Teruhisa Misu, H. Kashioka, Satoshi Nakamura
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Abstract

To construct an expandable and adaptable dialog system which handles multiple tasks, we proposes a dialog system using a weighted finite-state transducer (WFST) in which users concept and system action tags are input and output of the transducer, respectively. To test the potential of the WFST-based dialog management (DM) platform using statistical DM models, we construct a dialog system using a human-to-human spoken dialog corpus for hotel reservation, which is annotated with Interchange Format (IF). A scenario, a Spoken Language Understanding (SLU) and a Sentence Generation (SG) WFSTs are obtained from the corpus and then composed together and optimized to generate a Dialog Management (DM) WFST. We evaluate the detection accuracy of the system next actions using Mean Reciprocal Ranking (MRR). We evaluated how WFST optimization operations contribute to dialog systems and confirmed the optimization enhance the performance of accuracy of the next action detection.
评估基于wfst的对话管理
为了构建一个可扩展和可适应的多任务对话系统,我们提出了一个使用加权有限状态传感器(WFST)的对话系统,其中用户概念和系统动作标签分别作为传感器的输入和输出。为了使用统计DM模型测试基于wfst的对话管理(DM)平台的潜力,我们使用一个用于酒店预订的人对人口语对话语料库构建了一个对话系统,该语料库使用交换格式(IF)进行注释。从语料库中获得情景、口语理解(SLU)和句子生成(SG) WFST,然后将它们组合并优化生成对话管理(DM) WFST。我们使用平均倒数排序(MRR)来评估系统下一步动作的检测精度。我们评估了WFST优化操作对对话系统的贡献,并证实了优化提高了下一个动作检测的准确性。
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