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A Novel Concept of Analysing Performance of Deaf Students using Neural Networks

机译:使用神经网络分析聋生学生表现的新颖概念

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Deaf students need modified curriculum reflecting their special needs as exceptional learners. The barriers related to their disability should be identified and recommendations to overcome these barriers should be made. This paper introduces a novel concept of feature engineering in analyzing the performance assessment of deaf students. In this paper an attempt is made to identify the features specific to deaf students and develop a dataset. The classification models are used to classify the students according to their performance. On comparison, the classification accuracy of ANN is found to be better and the performance of this model is evaluated using various parameters - Accuracy, Precision, Recall, F1-Score and AUROC.
机译:聋人学生需要修改后课程,反映了他们的特殊需求作为特殊学习者。 应确定与其残疾有关的障碍,并应制定克服这些障碍的建议。 本文介绍了一种新颖的特征工程概念,分析了聋学生的性能评估。 在本文中,尝试识别特定于聋人学生的功能并开发数据集。 分类模型用于根据其性能对学生进行分类。 相比之下,发现ANN的分类精度更好,使用各种参数评估该模型的性能。准确性,精度,召回,F1 - 得分和AUROC。

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