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HoughNet: Integrating Near and Long-Range Evidence for Visual Detection

Nermin Samet, Samet Hiçsönmez, Emre Akbaş

2022IEEE Transactions on Pattern Analysis and Machine Intelligence15 citationsDOIOpen Access PDF

Abstract

This paper presents HoughNet, a one-stage, anchor-free, voting-based, bottom-up object detection method. Inspired by the Generalized Hough Transform, HoughNet determines the presence of an object at a certain location by the sum of the votes cast on that location. Votes are collected from both near and long-distance locations based on a log-polar vote field. Thanks to this voting mechanism, HoughNet is able to integrate both near and long-range, class-conditional evidence for visual recognition, thereby generalizing and enhancing current object detection methodology, which typically relies on only local evidence. On the COCO dataset, HoughNet&#x0027;s best model achieves 46.4 <inline-formula><tex-math notation="LaTeX">$AP$</tex-math></inline-formula> (and 65.1 <inline-formula><tex-math notation="LaTeX">$AP_{50}$</tex-math></inline-formula>), performing on par with the state-of-the-art in bottom-up object detection and outperforming most major one-stage and two-stage methods. We further validate the effectiveness of our proposal in other visual detection tasks, namely, video object detection, instance segmentation, 3D object detection and keypoint detection for human pose estimation, and an additional &#x201C;labels to photo&#x201D; image generation task, where the integration of our voting module consistently improves performance in all cases. Code is available at <uri>https://github.com/nerminsamet/houghnet</uri>.

Topics & Concepts

Computer scienceVotingObject detectionArtificial intelligenceObject (grammar)SegmentationHough transformTask (project management)Computer visionCognitive neuroscience of visual object recognitionObject-class detectionViola–Jones object detection frameworkPattern recognition (psychology)Majority rulePoseRange (aeronautics)Image (mathematics)Facial recognition systemFace detectionManagementPolitical scienceLawComposite materialEconomicsPoliticsMaterials scienceAdvanced Neural Network ApplicationsHuman Pose and Action RecognitionImage and Object Detection Techniques
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