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The Effects of Data Size and Frequency Range on Distributional Semantic Models

机译:数据大小和频率范围对分布语义模型的影响

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This paper investigates the effects of data size and frequency range on distributional semantic models. We compare the performance of a number of representative models for several test settings over data of varying sizes, and over test items of various frequency. Our results show that neural network-based models underperform when the data is small, and that the most reliable model over data of varying sizes and frequency ranges is the inverted fac-torized model.
机译:本文研究了数据大小和频率范围对分布语义模型的影响。我们将不同大小的数据和不同频率的测试项目在几种测试设置下的多个代表性模型的性能进行比较。我们的结果表明,当数据较小时,基于神经网络的模型表现不佳,而在变化大小和频率范围的数据上,最可靠的模型是倒置结构化模型。

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