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Measuring the Interpretive Cost in Fuzzy Logic Computations

机译:测量模糊逻辑计算中的解释成本

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Multi-adjoint logic programming represents an extremely flexible attempt for introducing fuzzy logic into logic programming (LP). In this setting, the execution of a goal w.r.t. a given program is done in two separate phases. During the operational one, admissible steps are systematically applied in a similar way to classical resolution steps in pure LP, thus returning an expression where all atoms have been exploited. This last expression is then interpreted under a given lattice during the so called interpretive phase. In declarative programming, it is usual to estimate the computational effort needed to execute a goal by simply counting the number of steps required to reach their solutions. In this paper, we show that although this method seems to be acceptable during the operational phase, it becomes inappropriate when considering the interpretive one. Moreover, we propose a more refined (interpretive) cost measure which fairly models in a much more realistic way the computational (special interpretive) a given goal.
机译:多相伴随逻辑编程表示将模糊逻辑引入逻辑编程(LP)的极其灵活的尝试。在此设置中,执行目标w.r.t.给定的程序是在两个单独的阶段完成的。在操作之一期间,可允许的步骤以与纯LP中的经典分辨率类似的方式系统地应用,从而返回所有原子被利用的表达式。然后在所谓的解释性阶段,在给定的格子下解释最后一个表达式。在声明性编程中,通常估计通过简单地计算到解解决方案所需的步骤次数来执行目标所需的计算工作。在本文中,我们表明,虽然在运营阶段似乎是可接受的,但在考虑解释性的情况下,这种方法似乎是不合适的。此外,我们提出了一种更加精致的(解释性)成本措施,它的计算(特殊解释)提供了更加逼真的方式。

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