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Cleaning up after a face tracker: False positive removal

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Item type:Araştırmacı/Yazar,
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IEEE

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Automatic person identification in TV series has gained popularity over the years. While most of the works rely on using face-based recognition, errors during tracking such as false positive face tracks are typically ignored. We propose a variety of methods to remove false positive face tracks and categorize the methods into confidence- and context-based. We evaluate our methods on a large TV series data set and show that up to 75% of the false positive face tracks are removed at the cost of 3.6% true positive tracks. We further show that the proposed method is general and applicable to other detectors or trackers.

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2014 IEEE International Conference on Image Processing (ICIP)

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OPEN

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ddc:004, DATA processing & computer science, info:eu-repo/classification/ddc/004

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