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Language Model Supervision for Handwriting Recognition Model Adaptation

机译:手写识别模型适应的语言模型监督

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Not all languages and domains of handwriting have large labeled datasets available for training handwriting recognition (HWR) models. One way to address this problem is to leverage high resource languages to help train models for low resource languages. In this work, we adapt HWR models trained on a source language to a target language that uses the same writing script. We do so using only labeled data in the source language, unlabeled data in the target language, and a language model in the target language. The language model is used to produce target transcriptions to allow regular example based training. Using this approach we demonstrate improved transferability among French, English, and Spanish languages using both historical and modern handwriting datasets.
机译:并非所有的手写语言和领域都具有可用于训练手写识别(HWR)模型的大标签数据集。解决此问题的一种方法是利用高资源语言来帮助训练低资源语言的模型。在这项工作中,我们将在源语言上训练的HWR模型改编为使用相同编写脚本的目标语言。我们仅使用源语言中的标签数据,目标语言中的未标签数据以及目标语言中的语言模型来执行此操作。语言模型用于产生目标转录,以允许基于常规示例的训练。使用这种方法,我们展示了使用历史和现代手写数据集改善的法语,英语和西班牙语之间的可传递性。

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