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Parallel distributed kernel estimation

机译:并行分布式内核估计

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Non-parametric kernel methods are becoming more commonplace for data analysis, modeling, and inference. Unfortunately, these methods are known to be computationally burdensome. The burden increases as the amount of available data rises and can quickly overwhelm the computational resources present in modern desktop workstations. Approximation-based approaches exist which can dramatically reduce execution time, however, these approaches remain just that-approximations, however good they may be. Along with the approximate nature of such approaches, they do not admit multivariate kernel estimation with general bandwidths (fixed, variable, and adaptive). In this paper, I consider a parallel implementation of a number of popular kernel methods based on the MPI standard. MPI is a freely available parallel distributed library that runs on 'commodity hardware' such as a network of workstations typically found in many office environments. A simple demonstration indicates how one can dramatically reduce the computational burden often associated with kernel methods thereby achieving an almost 'ideal' parallel speed-up, while the approach is valid for multivariate kernel estimation with general bandwidths and does not rely on approximations. Some straightforward applications illustrate just how disarmingly simple the MPI library can be to use.
机译:对于数据分析,建模和推理,非参数内核方法正变得越来越普遍。不幸的是,已知这些方法在计算上是繁重的。负担随着可用数据量的增加而增加,并且可能很快使现代台式机工作站中存在的计算资源不堪重负。存在基于近似的方法,该方法可以显着减少执行时间,但是,无论这些方法有多好,它们仍然只是近似值。除了这些方法的近似性质外,它们也不接受具有常规带宽(固定,可变和自适应)的多元内核估计。在本文中,我考虑了基于MPI标准的多种流行内核方法的并行实现。 MPI是一种免费的并行分布式库,可在“商品硬件”(例如通常在许多办公环境中使用的工作站网络)上运行。一个简单的演示说明了如何显着减少通常与内核方法相关的计算负担,从而实现几乎“理想”的并行加速,而该方法对于具有常规带宽的多变量内核估计有效,并且不依赖于近似值。一些简单的应用程序说明了MPI库可以多么简单地使用。

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