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Zero-Shot Semantic Parsing for Instructions

机译:指令的零射语义分析

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摘要

We consider a zero-shot semantic parsing task: parsing instructions into compositional logical forms, in domains that were not seen during training. We present a new dataset with 1,390 examples from 7 application domains (e.g. a calendar or a file manager), each example consisting of a triplet: (a) the application's initial state, (b) an instruction, to be carried out in the context of that state, and (c) the state of the application after carrying out the instruction. We introduce a new training algorithm that aims to train a semantic parser on examples from a set of source domains, so that it can effectively parse instructions from an unknown target domain. We integrate our algorithm into the floating parser of Pasupat and Liang (2015), and further augment the parser with features and a logical form candidate filtering logic, to support zero-shot adaptation. Our experiments with various zero-shot adaptation setups demonstrate substantial performance gains over a non-adapted parser.~1
机译:我们考虑一个零镜头的语义解析任务:在训练过程中未看到的域中,将指令解析为组成逻辑形式。我们提供了一个新的数据集,其中包含来自7个应用程序域的1,390个示例(例如,日历或文件管理器),每个示例都由一个三元组组成:(a)应用程序的初始状态,(b)要在上下文中执行的指令状态;以及(c)执行指令后应用程序的状态。我们引入了一种新的训练算法,旨在针对一组源域中的示例训练语义解析器,以便它可以有效地解析来自未知目标域的指令。我们将算法集成到Pasupat和Liang(2015)的浮动解析器中,并进一步增强了解析器的功能和逻辑形式候选过滤逻辑,以支持零触发自适应。我们使用各种零脉冲适应设置进行的实验证明,与非自适应解析器相比,性能得到了显着提高。〜1

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