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The hit-and-run sampler: a globally reaching markov chain sampler for generating arbitrary multivariate distributions

机译:即插即用采样器:一个遍及全球的马尔可夫链采样器,用于生成任意多元分布

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The problem of efficiently generating general multivariate densities via a Monte Carlo procedure has experienced dramatic progress in recent years through the device of a Markov chain sampler. This procedure produces a sequence of random deviates corresponding to a random walk over the support of the target distribution. Under certain regularity conditions, the corresponding Markov chain converges in distribution to the target distribution. Thus the sample of points so generated can serve as a statistical sample of points drawn from the target distribution. A random walk that can globally reach across the support of the distribution in one step is called a Hit-and-Run sampler. Hit-and-Run Markov chain samplers offer the promise of faster convergence to the target distribution than conventional small step random walks. Applications to optimization are considered.
机译:近年来,通过马尔可夫链采样器的设备,通过蒙特卡洛程序有效生成通用多元密度的问题经历了巨大的进步。此过程会产生一系列与目标分布的支持范围上的随机游走相对应的随机偏差。在某些规则性条件下,相应的马尔可夫链在分布中收敛到目标分布。因此,如此生成的点样本可以用作从目标分布中得出的点的统计样本。一步就能遍及分布支持的随机游走称为“即插即用”采样器。与传统的小步随机游走法相比,即插即用的马尔可夫链采样器可以更快地收敛到目标分布。考虑优化应用。

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