DeepZensols: Deep Natural Language Processing FrameworkDownload PDFOpen Website

Published: 01 Jan 2021, Last Modified: 19 May 2023CoRR 2021Readers: Everyone
Abstract: Reproducing results in publications by distributing publicly available source code is becoming ever more popular. Given the difficulty of reproducing machine learning (ML) experiments, there have been significant efforts in reducing the variance of these results. As in any science, the ability to consistently reproduce results effectively strengthens the underlying hypothesis of the work, and thus, should be regarded as important as the novel aspect of the research itself. The contribution of this work is a framework that is able to reproduce consistent results and provides a means of easily creating, training, and evaluating natural language processing (NLP) deep learning (DL) models.
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