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Value Elimination: -Bayesian Inference via Backtracking Search

机译:价值消除:-通过回溯搜索进行贝叶斯推理

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We present Value Elimination, a new algorithm for Bayesian Inference. Given the same variable ordering information, Value Elimination can achieve performance that is within a constant factor of variable elimination or recursive conditioning, and on some problems it can perform exponentially better, irrespective of the variable ordering used by these algorithms. Value Elimination's other features include: (1) it can achieve the same space-time tradeoff guarantees as recursive conditioning; (2) it can utilize all of the logical reasoning techniques used in state of the art SAT solvers; these techniques allow it to obtain considerable extra mileage out of zero entries in the CPTs; (3) it can be naturally and easily extended to take advantage of context specific structure; and (4) it supports dynamic variable orderings which might be particularly advantageous in the presence of context specific structure. We have implemented a version of Value Elimination that demonstrates very promising performance, often being one or two orders of magnitude faster than a commercial Bayes inference engine, despite the fact that it does not as yet take advantage of context specific structure.
机译:我们介绍了价值消除,一种用于贝叶斯推理的新算法。给定相同的变量排序信息,“值消除”可以实现在变量消除或递归条件的恒定因子之内的性能,并且在某些问题上,无论这些算法使用的变量排序如何,其性能都可以指数级地提高。价值消除的其他功能包括:(1)可以实现与递归条件相同的时空权衡保证; (2)它可以利用最先进的SAT解算器中使用的所有逻辑推理技术;这些技术使它可以从CPT的零条目中获得可观的额外里程; (3)它可以自然而轻松地扩展以利用上下文特定的结构; (4)它支持动态变量排序,这在存在上下文特定结构的情况下可能特别有利。我们已经实施了“价值消除”版本,该版本展示了非常有前途的性能,尽管它尚未利用上下文特定的结构,但它通常比商业贝叶斯推理引擎快一两个数量级。

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