一种轻量级设计空间探索与优化语言

Alexander Diewald, S. Voss, S. Barner
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引用次数: 10

摘要

许多工程和科学问题的解决需要探索一个巨大的n维设计空间。典型的方法依赖于抽象的问题模型,该模型由系统模型(对问题变量耦合的描述)和定义目标以及限定设计空间的约束的优化规范组成。求解器技术的进步使得能够有效地搜索解决方案空间,但是方法的多样性导致了难以重用的问题描述以及难以比较的解决方案。我们的探索元模型(EMM)通过为优化规范提供一种统一的语言来解决这个问题,该语言是基于模型的求解器独立设计空间探索(DSE)工具链实现的良好定义的基础。EMM是一个轻量级框架,它允许a)描述独立于特定优化方法和求解器的优化规范,b)关联解决方案和优化规范,以及c)定义提供高级优化规范的领域配置文件,以简化领域专家采用自动化DSE的过程。通过对一般向量优化问题和单目标线性规划的应用,证明了该框架对不同优化方法的适用性。EMM支持将优化结果与输入规范关联到Opt4J框架中。最后,实时嵌入式系统的概要文件演示了如何将EMM定制到特定领域。
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A Lightweight Design Space Exploration and Optimization Language
The solution of many engineering and scientific problems requires the exploration of a huge n-dimensional design space. Typical approaches rely on an abstract problem model consisting of a system model (description of the problem's variable couplings) and an optimization specification defining the objectives as well as the constraints bounding the design space. Advances in solver technologies enabled to efficiently search the solution space, however the diversity of the approaches led to problem descriptions that are difficult to reuse, as well as to solutions that are hard to compare. Our Exploration Meta-Model (EMM) addresses this issue by providing a unified language for optimization specifications that is a well-defined basis for model-based implementations of solver-independent design-space exploration (DSE) tool-chains. The EMM is a light-weight framework that allows to a) describe optimization specifications independent of particular optimization methods and solvers, b) relate solutions and optimization specifications, and c) define domain profiles that provide high-level optimization specifications that ease the adoption of automated DSE by domain experts. The applicability of our framework to different optimization methods is demonstrated by applying it to the generic vector optimization problem and to single-objective linear programs. The EMM's support to relate optimization results to input specifications is exercised for the Opt4J framework. Finally, a profile for real-time embedded systems demonstrates how the EMM can be tailored to specific domains.
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