The Proof is in the Pudding

Louis Mahon, Carl Vogel
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Abstract

This paper presents FASTFOOD, a rule-based natural language generation (NLG) program for cooking recipes. We consider the representation of cooking recipes as discourse representation, because the meaning of each sentence needs to consider the context of the others. Our discourse representation system is based on states of affairs and transtions between states of affairs, and does not use discourse referents. Recipes are generated by using an automated theorem-proving procedure to select the ingredients and instructions, with ingredients corresponding to axioms and instructions to implications. FASTFOOD also contains a temporal optimization module which can rearrange the recipe to make it more time efficient for the user, e.g. the recipe specifies to chop the vegetables while the rice is boiling. The system is described in detail, including the decision to forgo discourse referents and how plausible representations of nouns and verbs emerge purely as a by-product of the practical requirements of efficiently representing recipe content. A comparison is then made with existing recipe generation systems, NLG systems more generally, and automated theorem provers.
证据就在布丁里
本文介绍了FASTFOOD,一个基于规则的烹饪食谱自然语言生成(NLG)程序。我们认为烹饪食谱的表征是话语表征,因为每句话的意思都需要考虑其他句子的上下文。我们的话语表征系统基于事件状态和事件状态之间的转换,不使用话语指称。配方是通过使用自动定理证明过程来选择配料和指令生成的,配料对应于公理,指令对应于含义。FASTFOOD还包含一个时间优化模块,它可以重新安排食谱,使用户更有效率,例如食谱指定在米饭煮沸时切碎蔬菜。详细描述了该系统,包括放弃话语指涉的决定,以及名词和动词的合理表示如何纯粹作为有效表示配方内容的实际需求的副产品而出现。然后与现有的配方生成系统、更一般的NLG系统和自动定理证明器进行比较。
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