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Automated speech scoring for non-native middle school students with multiple task types

机译:具有多项任务类型的非母语中学生自动演讲评分

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This study presents the results of applying automated speech scoring technology to English spoken responses provided by non-native children.in the context of an English proficiency assessment for middle school students. The assessment contains three diverse task types designed to measure a student's English communication skills, and an automated scoring system was used to extract features and build scoring models for each task. The results show that the automated scores have a correlation of r = 0.70 with human scores for the Read Aloud task, which matches the human-human agreement level. For the two tasks involving spontaneous speech,-the automated scores obtain correlations of r = 0.62 and r = 0.63 with human scores, which represents a drop of 0.08 - 0.09 from the human- human agreement level. When all 5 scores from the assessment for a given student are aggregated, the automated speaker-level scores show a correlation of r = 0.78 with human scores, compared to a human-human correlation of r = 0.90. The challenges of using automated spoken language assessment for children are discussed, and directions for future improvements are proposed.
机译:本研究提出了将自动演讲评分技术应用于非本土儿童提供的英语口语响应的结果。在英语学生英语水平评估的背景下。该评估包含三种不同的任务类型,旨在衡量学生的英语通信技能,并使用自动评分系统来提取每个任务的特征和构建评分模型。结果表明,自动分数与人类协议水平相匹配的朗德任务r = 0.70与人类分数的相关性。对于涉及自发性语音的两个任务, - 自动评分获得r = 0.62和r = 0.63的相关性,具有人类协议水平的0.08-0.09的下降。当聚合到给定学生评估的所有5分数都会被汇总时,与R = 0.90的人类相关性相比,自动扬声器级别分数显示r = 0.78与人体评分的相关性。讨论了对儿童自动口语评估的挑战,并提出了未来改进的指示。

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