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Class library ranlip for multivariate nonuniform random variate generation

机译:类库ranlip用于多元非均匀随机变量生成

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This paper describes generation of nonuniform random variates from Lipschitz-continuous densities using acceptance/rejection, and the class library ranlip which implements this method. It is assumed that the required distribution has Lipschitz-continuous density, which is either given analytically or as a black box. The algorithm builds a piecewise constant upper approximation to the density (the hat function), using a large number of its values and subdivision of the domain into hyperrectangles.The class library ranlip provides very competitive preprocessing and generation times, and yields small rejection constant, which is a measure of efficiency of the generation step. It exhibits good performance for up to five variables, and provides the user with a black box nonuniform random variate generator for a large class of distributions, in particular, multimodal distributions. It will be valuable for researchers who frequently face the task of sampling from unusual distributions, for which specialized random variate generators are not available.
机译:本文描述了使用接受/拒绝从Lipschitz连续密度生成非均匀随机变量,以及实现此方法的类库ranlip。假定所需的分布具有Lipschitz连续密度,可以通过分析或黑盒给出。该算法使用大量的值并将该域细分为超矩形,从而建立了密度的分段常数上限近似(帽子函数)。类库ranlip提供了非常有竞争力的预处理和生成时间,并且产生了小的拒绝常数,这是生成步骤效率的度量。它对多达五个变量都表现出良好的性能,并为用户提供了适用于大型分布(尤其是多峰分布)的黑匣子非均匀随机变量生成器。对于经常面临从异常分布中采样的任务的研究人员而言,这是有价值的,而对于这些分布而言,没有专门的随机变量生成器。

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