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Response-time optimization of rule-based expert systems

机译:基于规则的专家系统的响应时间优化

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Abstract: Real-time rule-based decision systems are embedded AI systems and must make critical decisions within stringent timing constraints. In the case where the response time of the rule-based system is not acceptable, it has to be optimized to meet both timing and integrity constraints. This paper describes a novel approach to reduce the response time of rule-based expert systems. Our optimization method is twofold: the first phase constructs the reduced cycle-free finite state transition system corresponding to the input rule-based system, and the second phase further refines the constructed transition system using the simulated annealing approach. The method makes use of rule-base system decomposition, concurrency, and state-equivalency. The new and optimized system is synthesized from the derived transition system. Compared with the original system, the synthesized system has fewer number of rule firings to reach the fixed point, is inherently stable, and has no redundant rules. !12
机译:摘要:基于规则的实时决策系统是嵌入式AI系统,必须在严格的时间限制内做出关键决策。如果基于规则的系统的响应时间不可接受,则必须对其进行优化以满足时序和完整性约束。本文介绍了一种减少基于规则的专家系统的响应时间的新颖方法。我们的优化方法有两个方面:第一阶段构造与基于输入规则的系统相对应的简化的无循环有限状态转换系统,第二阶段使用模拟退火方法进一步完善构造的转换系统。该方法利用基于规则的系统分解,并发和状态等效性。新的和优化的系统是从派生的过渡系统中合成的。与原始系统相比,该综合系统的规则触发次数少,可以达到固定点,具有固有的稳定性,并且没有多余的规则。 !12

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