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FEATURE EXTRACTION AND MACHINE LEARNING FOR EVALUATION OF MEDIA-RICH COURSEWORK

机译:基于特征提取和机器学习的多媒体课程评估

摘要

Conventional techniques for automatically evaluating and grading assignments are generally ill-suited to evaluation of coursework submitted in media-rich form. For courses whose subject includes programming, signal processing or other functionally expressed designs that operate on, or are used to produce media content, conventional techniques are also ill-suited. It has been discovered that media-rich, indeed even expressive, content can be accommodated as, or as derivatives of, coursework submissions using feature extraction and machine learning techniques. Accordingly, in on-line course offerings, even large numbers of students and student submissions may be accommodated in a scalable and uniform grading or scoring scheme. Instructors or curriculum designers may adaptively refine assignments or testing based on classifier feedback. Using developed techniques, it is possible to administer courses and automatically grade submitted work that takes the form of media encodings of artistic expression, computer programming and even signal processing to be applied to media content.
机译:用于自动评估和评分作业的常规技术通常不适合评估以多媒体形式提交的课程。对于其课程包括编程,信号处理或在媒体内容上进行操作或用于产生媒体内容的其他功能表达的设计的课程,传统技术也不合适。已经发现,使用特征提取和机器学习技术,可以将内容丰富,甚至甚至是表达丰富的内容作为课程作业提交的内容或派生出来。因此,在在线课程提供中,甚至大量的学生和学生提交的内容也可以容纳在可扩展且统一的评分或评分方案中。教师或课程设计者可以根据分类器反馈来自适应地优化作业或测试。使用发达的技术,可以管理课程并自动对提交的作品进行评分,这些作品采用艺术表达的媒体编码,计算机编程甚至信号处理的形式,以应用于媒体内容。

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