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A Dataset for Measuring Reading Levels In India At Scale

机译:大规模测量印度阅读水平的数据集

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1One out of four children in India are leaving grade eight without basic reading skills. Measuring the reading levels in a vast country like India poses significant hurdles. Recent advances in machine learning opens up the possibility of automating this task. However, the datasets of children’s speech are not only rare but are primarily in English. To solve this assessment problem and advance deep learning research in regional Indian languages, we present the ASER dataset of children in the age group of 6-14. The dataset consists of 5,301 subjects generating 81,330 labeled audio clips in Hindi, Marathi and English. These labels represent expert opinions on the child’s ability to read at a specified level. Using this dataset, we built a simple ASR-based classifier. Early results indicate that we can achieve a prediction accuracy of 86% for the English language. Considering the ASER survey spans half a million subjects, this dataset can grow to those scales.
机译: 1 印度有四分之一的孩子八年级没有基本的阅读技能。在像印度这样的广阔国家中,衡量阅读水平构成了很大的障碍。机器学习的最新进展为自动完成这项任务开辟了可能性。但是,儿童语音数据集不仅很少,而且主要是英语。为了解决这一评估问题并推动印度当地语言的深度学习研究,我们提出了6-14岁年龄段儿童的ASER数据集。数据集由5,301名受试者组成,产生了81,330种印地语,马拉地语和英语的带标签的音频剪辑。这些标签代表专家对孩子在指定水平上的阅读能力的看法。使用此数据集,我们构建了一个简单的基于ASR的分类器。早期结果表明,对于英语,我们可以达到86%的预测准确性。考虑到ASER调查涵盖了五百万个对象,因此该数据集可以扩展到那些规模。

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