提高课堂视频中手写数学字符识别准确率的模糊检测方法

Smita Vemulapalli, M. Hayes
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引用次数: 3

摘要

在课堂视频中,识别数学内容,手写在白板上,以教师说的音频内容的形式提供了一个独特的机会。这种被识别的音频内容可以用来提高字符识别的准确性,通过提供证据来证实或反驳由主要的基于视频的识别器生成的输出选项。然而,这种基于音频-视频的消歧也有可能在基于视频的识别器的正确输出中引入错误。在本文中,我们专注于通过开发歧义检测方法来提高字符识别的准确性,该方法可用于确定基于视频的识别器的潜在不正确输出集,并且对于每个这样的输出,确定必须转发的可能正确的输出选项子集,以用于基于音频的基于视频的字符消歧。在本文中,我们提出,实现和评估了一些这样的歧义检测方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ambiguity detection methods for improving handwritten mathematical character recognition accuracy in classroom videos
In classroom videos, recognizing mathematical content, handwritten on the whiteboard presents a unique opportunity in the form of audio content spoken by the instructor. This recognized audio content can be used to improve the character recognition accuracy by providing evidence in corroboration or contradiction of the output options generated by the primary, video based recognizer. However, such audio-video based disambiguation also has the potential to introduce errors in what may have been the correct output from the video based recognizer. In this paper, we focus on improving the character recognition accuracy by developing ambiguity detection methods that can be used to determine the set of potentially incorrect outputs from the video based recognizer and, for each such output, determining the subset of possibly correct output options that must be forwarded for audio-video based character disambiguation. In this paper, we propose, implement and evaluate a number of such ambiguity detection methods.
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