An improvement to the qualitative interpolative reasoning in sparse rule base

Jianjun Zhu, Shaohua Tan
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Abstract

Interpolative reasoning in sparse rule base has been an important research topic in the field of artificial intelligence. To solve effectively the problem of reasoning in multivariable sparse rule base whose resulting consequences are restricted in a finite set, this paper developed a new interpolative reasoning approach and offered its algorithm. The approach deduced consequent results by converting domains of antecedent and consequent variables into ternary qualitative spaces and building ternary qualitative function among such spaces as model of system for calculation. By applying this approach to an example, the paper illustrated that the new approach is more accurate and simple than the existing interpolative reasoning methods for such problem.
稀疏规则库中定性插值推理的改进
稀疏规则库中的插值推理一直是人工智能领域的一个重要研究课题。为了有效地解决多变量稀疏规则库中结果限制在有限集合中的推理问题,提出了一种新的插值推理方法并给出了算法。该方法将前因变量和后因变量的域转换为三元定性空间,并在计算系统模型等空间之间建立三元定性函数,推导出相应的结果。通过实例说明,该方法比现有的插值推理方法更准确、更简单。
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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