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Effect of tuned parameters on an LSA multiple choice questions answering model

机译:调整后的参数对LSA多选题回答模型的影响

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This article presents the current state of a work in progress, whose objective is to better understand the effects of factors that significantly influence the performance of latent semantic analysis (LSA), A difficult task, which consisted of answering (French) biology multiple choice questions, was used to test the semantic properties of the truncated singular space and to study the relative influence of the main parameters. A dedicated software was designed to fine-tune the LSA semantic space for the multiple choice questions task. With optimal parameters, the perfo mances of our simple model were quite surprisingly equal or superior to those of seventh- and eighth-grade stuDents. This indicates that semantic spaces were quite good despite their low dimensions and the small sizes of the training data sets. In addition, we present an original entropy global weighting of the answers' terms for each of the multiple choice questions, which was necessary to achieve the model's success.
机译:本文介绍了正在进行的工作的当前状态,其目的是更好地了解显着影响潜在语义分析(LSA)性能的因素的影响,这是一项艰巨的任务,其中包括回答(法国)生物学多项选择题用来检验截断的奇异空间的语义特性,并研究主要参数的相对影响。设计了专用软件来微调LSA语义空间,以执行多项选择题任务。有了最佳参数,我们简单模型的性能就令人惊讶地等于或优于七年级和八年级学生。这表明尽管语义空间尺寸小且训练数据集的尺寸较小,但语义空间还是相当不错的。此外,我们为每个选择题提供了答案项的原始熵全局加权,这对于实现模型的成功是必不可少的。

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