人工智能系统中若干问题认知求解的概率方法

A. Kostogryzov, V. Korolev
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引用次数: 4

摘要

通过对调度员智能中心和空中、陆地、地下、水下、通用和功能集中的人工智能机器人系统的分析,选择在特定不确定性条件下执行的理性控制问题进行概率研究。该选择涵盖了基于事件和条件的监控信息规划功能执行可能性的问题,以及在不确定条件下限制“失败”风险的机器人路线优化问题。这些问题是通过使用所提出的概率方法来解决的。所提出的方法基于选定的概率模型(用于“黑箱”和复杂系统),在广泛的应用领域得到了有效的实现。问题的认知解决包括改进、积累、分析和使用出现的知识。通过实例对所描述的解析解进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Probabilistic Methods for Cognitive Solving of Some Problems in Artificial Intelligence Systems
As a result of the analysis of dispatcher intelligence centers and aerial, land, underground, underwater, universal, and functionally focused artificial intelligence robotics systems, the problems of rational control, due to be performed under specific conditions of uncertainties, are chosen for probabilistic study. The choice covers the problems of planning the possibilities of functions performance on the base of monitored information about events and conditions and the problem of robot route optimization under limitations on risk of “ failure ” in conditions of uncertainties. These problems are resolved with a use of the proposed probabilistic approach. The proposed methods are based on selected probabilistic models (for “ black box ” and complex systems), which are implemented effectively in wide application areas. The cognitive solving of problems consists in improvements, accumulation, analysis, and use of appearing knowledge. The described analytical solutions are demonstrated by practical examples.
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