Leonardo S. de Oliveira, Zenilton K. G. Patrocínio, S. Guimarães, G. Gravier
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Searching for Near-Duplicate Video Sequences from a Scalable Sequence Aligner
Near-duplicate video sequence identification consists in identifying real positions of a specific video clip in a video stream stored in a database. To address this problem, we propose a new approach based on a scalable sequence aligner borrowed from proteomics. Sequence alignment is performed on symbolic representations of features extracted from the input videos, based on an algorithm originally applied to bio-informatics. Experimental results demonstrate that our method performance achieved 94% recall with 100% precision, with an average searching time of about 1 second.