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Approximations for Model Construction

机译:模型构造的近似值

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We consider the problem of efficiently computing models for satisfiable constraints, in the presence of complex background theories such as floating-point arithmetic. Model construction has various applications, for instance the automatic generation of test inputs. It is well-known that naive encoding of constraints into simpler theories (for instance, bit-vectors or propositional logic) can lead to a drastic increase in size, and be unsatisfactory in terms of memory and runtime needed for model construction. We define a framework for systematic application of approximations in order to speed up model construction. Our method is more general than previous techniques in the sense that approximations that are neither under- nor over-approximations can be used, and shows promising results in practice.
机译:在复杂的背景理论(例如浮点算术)存在的情况下,我们考虑了有效计算可满足约束条件的模型的问题。模型构建具有各种应用程序,例如自动生成测试输入。众所周知,将约束简单地编码为简单的理论(例如,位向量或命题逻辑)会导致大小急剧增加,并且在模型构建所需的内存和运行时间方面不能令人满意。我们定义了系统近似应用的框架,以加快模型的构建。从某种意义上说,我们的方法比以前的技术更通用,可以使用既不低于也不近似的近似值,并且在实践中显示出令人鼓舞的结果。

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