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4 months ago

Person Retrieval in Surveillance Video using Height, Color and Gender

Hiren Galiyawala; Kenil Shah; Vandit Gajjar; Mehul S. Raval

Person Retrieval in Surveillance Video using Height, Color and Gender

Abstract

A person is commonly described by attributes like height, build, cloth color, cloth type, and gender. Such attributes are known as soft biometrics. They bridge the semantic gap between human description and person retrieval in surveillance video. The paper proposes a deep learning-based linear filtering approach for person retrieval using height, cloth color, and gender. The proposed approach uses Mask R-CNN for pixel-wise person segmentation. It removes background clutter and provides precise boundary around the person. Color and gender models are fine-tuned using AlexNet and the algorithm is tested on SoftBioSearch dataset. It achieves good accuracy for person retrieval using the semantic query in challenging conditions.

Code Repositories

Benchmarks

BenchmarkMethodologyMetrics
person-retrieval-on-softbiosearchMask R-CNN and AlexNet
Average IOU: 0.363
person-retrieval-on-softbiosearchSSD
Average IOU: 0.503
person-retrieval-on-softbiosearchBaseline - AvatarSearch
Average IOU: 0.290

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Person Retrieval in Surveillance Video using Height, Color and Gender | Papers | HyperAI