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Towards Automated Evaluation of Handwritten Assessments

机译:对自动评估手写评估

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Automated evaluation of handwritten answers has been a challenging problem for scaling the education system for many years. Speeding up the evaluation remains as the major bottleneck for enhancing the throughput of instructors. This paper describes an effective method for automatically evaluating the short descriptive handwritten answers from the digitized images. Our goal is to evaluate a student's handwritten answer by assigning an evaluation score that is comparable to the human-assigned scores. Existing works in this domain mainly focused on evaluating handwritten essays with handcrafted, non-semantic features. Our contribution is two-fold: 1) we model this problem as a self-supervised, feature-based classification problem, which can fine-tune itself for each question without any explicit supervision. 2) We introduce the usage of semantic analysis for auto-evaluation in handwritten text space using the combination of Information Retrieval and Extraction (IRE) and, Natural Language Processing (NLP) methods to derive a set of useful features. We tested our method on three datasets created from various domains, using the help of students of different age groups. Experiments show that our method performs comparably to that of human evaluators.
机译:手写答案的自动评估对于缩放教育系统多年来一直是一个有挑战性的问题。加快评估仍然是提高教师吞吐量的主要瓶颈。本文介绍了一种从数字化图像中自动评估短描述性手写答案的有效方法。我们的目标是通过分配与人类分配的分数相当的评估分数来评估学生的手写答案。该领域的现有作品主要集中在用手工,非语义特征评估手写散文。我们的贡献是两倍:1)我们将此问题模拟为基于自我监督的特征的分类问题,这可以为每个问题进行微调本身而没有任何明确的监督。 2)我们使用信息检索和提取(IRE)的组合来介绍手写文本空间中自动评估的语义分析的使用,以及来自一组有用的功能的自然语言处理(NLP)方法。我们在从各个域创建的三个数据集上测试了我们的方法,使用不同年龄组的学生的帮助。实验表明,我们的方法与人类评估人员的表现相当。

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