SMC Samplers for Bayesian Optimal Nonlinear Design

Hendrik Kuck, N. de Freitas, A. Doucet
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引用次数: 37

Abstract

Experimental design is a fundamental problem in science. It arises in the planning of medical trials, sensor network deployment and control as well as in costly data gathering in physics, chemistry and biology. Bayesian decision theory provides a principled way of treating this problem, but leads to an intractable joint optimization and integration problem. Here, we propose a viable solution to this hard computational problem using sequential Monte Carlo samplers.
用于贝叶斯最优非线性设计的SMC采样器
实验设计是科学中的一个基本问题。它出现在医学试验的规划、传感器网络的部署和控制以及物理、化学和生物学中昂贵的数据收集中。贝叶斯决策理论提供了一种原则性的方法来处理这一问题,但导致了一个棘手的联合优化和集成问题。在这里,我们提出了一个可行的解决方案,这一困难的计算问题,使用顺序蒙特卡罗采样。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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