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Large Scale Reasoning Using Allen's Interval Algebra

机译:使用Allen的间隔代数进行大规模推理

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This paper proposes and evaluates a distributed, parallel approach for reasoning over large scale datasets using Allen's Interval Algebra (IA). We have developed and implemented algorithms that reason over IA networks using the Spark distributed processing framework. Experiments have been conducted by deploying the algorithms on computer clusters using synthetic datasets with various characteristics. We show that reasoning over datasets consisting of millions of interval relations is feasible and that our implementation scales effectively. The size of the IA networks we are able to reason over is far greater than those found in previously published works.
机译:本文提出了使用Allen的间隔代数(IA)的大规模数据集来评估分布式平行方法。我们已经开发并实施了使用Spark分布式处理框架的IA网络的原因。通过使用具有各种特性的合成数据集在计算机集群上部署算法来进行实验。我们展示了由数百万个间隔关系组成的数据集是可行的,并且我们的实现有效地缩放。我们能够推理的IA网络的大小远远大于以前发表的作品中的那些。

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