Inferencing underspecified natural language utterances in visual analysis

V. Setlur, Melanie Tory, Alex Djalali
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引用次数: 50

Abstract

Handling ambiguity and underspecification of users' utterances is challenging, particularly for natural language interfaces that help with visual analytical tasks. Constraints in the underlying analytical platform and the users' expectations of high precision and recall require thoughtful inferencing to help generate useful responses. In this paper, we introduce a system to resolve partial utterances based on syntactic and semantic constraints of the underlying analytical expressions. We extend inferencing based on best practices in information visualization to generate useful visualization responses. We employ heuristics to help constrain the solution space of possible inferences, and apply ranking logic to the interpretations based on relevancy. We evaluate the quality of inferred interpretations based on relevancy and analytical usefulness.
在视觉分析中推断未明确的自然语言话语
处理用户话语的歧义和不规范是具有挑战性的,特别是对于帮助进行视觉分析任务的自然语言界面。底层分析平台中的约束以及用户对高精度和召回率的期望需要深思熟虑的推理来帮助生成有用的响应。在本文中,我们介绍了一个基于底层分析表达式的句法和语义约束来解决部分话语的系统。我们扩展了基于信息可视化最佳实践的推理,以生成有用的可视化响应。我们使用启发式来帮助约束可能推理的解空间,并基于相关性对解释应用排序逻辑。我们根据相关性和分析有用性来评估推断解释的质量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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