结构化一般共递和协归纳图[扩展摘要]

Tarmo Uustalu
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引用次数: 0

摘要

Bove和Capretta用一般递归方程来证明函数定义的流行方法是基于这样的观察:任何结构化的一般递归方程都定义了预期域(“定义域”)的一个归纳子集,对于这个子集,方程有一个唯一的解。为了接受这个定义,证明这个子集包含整个预期的域就足够了。这种方法对于“终止”定义非常有效。但是它没有考虑到“生产性”定义,比如流值函数的典型定义。我们认为,这些定义可以用类似的精神来对待,从不同的唯一可解性标准出发。任何结构化递归方程都定义了拟上域和拟上域之间的协归纳关系(“协归纳图”)。这个关系又决定了预期定义域的一个子集和预期上域的一个商,并且该方程对于该子集和商是唯一解的。因此,当该子集是完整集合且商是相等时,该方程保证在预期定义域和预期上域具有唯一解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structured general corecursion and coinductive graphs [extended abstract]
Bove and Capretta’s popular method for justifying function definitions by general recursive equations is based on the observation that any structured general recursion equation defines an inductive subset of the intended domain (the “domain of definedness”) for which the equation has a unique solution. To accept the definition, it is hence enough to prove that this subset contains the whole intended domain. This approach works very well for “terminating” definitions. But it fails to account for “productive” definitions, such as typical definitions of stream-valued functions. We argue that such definitions can be treated in a similar spirit, proceeding from a different unique solvability criterion. Any structured recursive equation defines a coinductive relation between the intended domain and intended codomain (the “coinductive graph”). This relation in turn determines a subset of the intended domain and a quotient of the intended codomain with the property that the equation is uniquely solved for the subset and quotient. The equation is therefore guaranteed to have a unique solution for the intended domain and intended codomain whenever the subset is the full set and the quotient is by equality.
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