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Typed answer set programming lambda calculus theories and correctness of inverse lambda algorithms with respect to them

机译:类型化答案集编程Lambda演算理论及其反Lambda算法的正确性

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Our broader goal is to automatically translate English sentences into formulas in appropriate knowledge representation languages as a step towards understanding and thus answering questions with respect to English text. Our focus in this paper is on the language of Answer Set Programming (ASP). Our approach to translate sentences to ASP rules is inspired by Montague's use of lambda calculus formulas as meaning of words and phrases. With ASP as the target language the meaning of words and phrases are ASP-lambda formulas. In an earlier work we illustrated our approach by manually developing a dictionary of words and their ASP-lambda formulas. However such an approach is not scalable. In this paper our focus is on two algorithms that allow one to construct ASP-lambda formulas in an inverse manner. In particular the two algorithms take as input two lambda-calculus expressions G and H and compute a lambda-calculus expression F such that F with input as G, denoted by F@G, is equal to H; and similarly G@F = H. We present correctness and complexity results about these algorithms. To do that we develop the notion of typed ASP-lambda calculus theories and their orders and use it in developing the completeness results.
机译:我们的更广泛的目标是将英语句子自动以适当的知识表示语言转换为公式,以迈向了解并回答有关英文文本的问题。本文的重点是答案集编程(ASP)的语言。我们将句子翻译成ASP规则的方法是受Montague将lambda演算公式用作单词和短语含义的启发。以ASP为目标语言,单词和短语的含义就是ASPλ公式。在较早的工作中,我们通过手动开发单词词典及其ASP-lambda公式说明了我们的方法。然而,这种方法是不可扩展的。在本文中,我们的重点是两种算法,它们允许一种以相反的方式构造ASP-lambda公式。特别地,这两种算法将两个λ演算表达式G和H作为输入,并且计算λ演算表达式F,使得输入为G的F等于F,表示为F。同样,G @ F =H。我们给出了有关这些算法的正确性和复杂性结果。为此,我们开发了类型化ASP-lambda微积分理论及其顺序的概念,并将其用于开发完整性结果。

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