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Self Organizing Maps (SOMS) for Organizing, Categorizing, Browsing and/or Grading Large Collections of Assignments for Massive Online Education Systems

机译:自组织地图(SOMS),用于为大规模在线教育系统组织,分类,浏览和/或分级大量作业

摘要

For courses that deal with media content, such as sound, music, photographic images, hand sketches, video, conventional techniques for automatically evaluating and grading assignments are generally ill-suited to direct evaluation of coursework submitted in media-rich form. Likewise, 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. Instead, it has been discovered that media-rich, indeed even expressive, content can be accommodated as, or as derivatives of, submissions using feature extraction and machine learning techniques. In this way, e.g., 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. Likewise, large collections of coursework submissions (whether or not graded or scored) or media content more generally, may be efficiently browsed and grouped using techniques described herein.
机译:对于处理诸如声音,音乐,摄影图像,手绘图,视频之类的媒体内容的课程,用于自动评估和评分作业的常规技术通常不适合直接评估以富媒体形式提交的课程作业。同样,对于其课程包括编程,信号处理或在媒体内容上运行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。取而代之的是,已经发现,使用特征提取和机器学习技术,可以将内容丰富,甚至表达力强的内容作为提交的内容,或作为其派生内容来容纳。以这种方式,例如,在在线课程中,甚至大量的学生和学生提交的内容也可以以可缩放且统一的评分或评分方案来容纳。同样地,可以使用本文所述的技术来有效地浏览和归类大批的课程作业提交(无论是否被评分或打分)或媒体内容。

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