Engagement Detection using Video-based Estimation of Head Movement

2018 
We explore how computer vision methods can be utilized to identify engagement where person in video will be doing writing activity similar to the student doing writing activity in front of monitor. Person will be provided engagement annotations concurrently during the writing activity. We utilized one of computer vision method to extract features from videos that is local binary patterns in three orthogonal planes (LBP-TOP). These highlights were utilized as a part of managed learning for detection. KNN (K nearest neighbour) classifier was used to find classifying accuracy. Conventional camera was used to capture persons head movement activity to further create feature vector to produce best results.
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