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Integrating Constraint Satisfaction and Spatial Reasoning

机译:约束满足与空间推理相结合

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Many problems in AI, including planning, logical reasoning and probabilistic inference, have been shown to reduce to (weighted) constraint satisfaction. While there are a number of approaches for solving such problems, the recent gains in efficiency of the satisfiability approach have made SAT solvers a popular choice. Modern propositional SAT solvers are efficient for a wide variety of problems. However, particularly in the case of spatial reasoning, conversion to propositional SAT can sometimes result in a large number of variables and/or clauses. Moreover, spatial reasoning problems can often be more efficiently solved if the agent is able to exploit the geometric nature of space to make better choices during search and backtracking. The result of these two drawbacks - larger problem sizes and inefficient search - is that even simple spatial constraint problems are often intractable in the SAT approach. In this paper we propose a spatial reasoning system that provides significant performance improvements in constraint satisfaction problems involving spatial predicates. The key to our approach is to integrate a diagrammatic representation with a DPLL-based backtracking algorithm that is specialized for spatial reasoning. The resulting integrated system can be applied to larger and more complex problems than current approaches and can be adopted to improve performance in a variety of problems ranging from planning to probabilistic inference.
机译:人工智能中的许多问题,包括计划,逻辑推理和概率推论,已被证明降低到(加权)约束满足。尽管有许多方法可以解决此类问题,但最近可满足性方法效率的提高已使SAT解算器成为一种流行的选择。现代的命题SAT解算器可有效解决各种问题。但是,特别是在空间推理的情况下,转换为命题SAT有时会导致大量变量和/或从句。此外,如果代理能够利用空间的几何性质在搜索和回溯期间做出更好的选择,则通常可以更有效地解决空间推理问题。这两个缺点的结果-问题更大和搜索效率低下-是在SAT方法中即使是简单的空间约束问题也常常难以解决。在本文中,我们提出了一种空间推理系统,该系统在涉及空间谓词的约束满足问题中提供了显着的性能改进。我们方法的关键是将图表表示与专门用于空间推理的基于DPLL的回溯算法相集成。最终的集成系统可以应用于比当前方法更大,更复杂的问题,并且可以用来提高从计划到概率推理的各种问题的性能。

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