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Pseudo-IoU: Improving Label Assignment in Anchor-Free Object Detection

Jiachen Li, Bowen Cheng, Rogério Feris, Jinjun Xiong, Thomas S. Huang, Wen‐mei Hwu, Humphrey Shi

202128 citationsDOI

Abstract

Current anchor-free object detectors are quite simple and effective yet lack accurate label assignment methods, which limits their potential in competing with classic anchor-based models that are supported by well-designed assignment methods based on the Intersection-over-Union (IoU) metric. In this paper, we present Pseudo-Intersection-over-Union (Pseudo-IoU): a simple metric that brings more standardized and accurate assignment rule into anchor-free object detection frameworks without any additional computational cost or extra parameters for training and testing, making it possible to further improve anchor-free object detection by utilizing training samples of good quality under effective assignment rules that have been previously applied in anchor-based methods. By incorporating Pseudo-IoU metric into an end-to-end single-stage anchor-free object detection framework, we observe consistent improvements in their performance on general object detection benchmarks such as PASCAL VOC and MSCOCO. Our method (single-model and single-scale) also achieves comparable performance to other recent state-of-the-art anchor-free methods without bells and whistles. Our code is based on mmdetection toolbox and will be made publicly available at https://github.com/SHI-Labs/Pseudo-IoU-for-Anchor-Free-Object-Detection.

Topics & Concepts

Pascal (unit)Computer scienceToolboxMetric (unit)Object detectionIntersection (aeronautics)DetectorArtificial intelligenceObject (grammar)Code (set theory)Computer visionPattern recognition (psychology)Set (abstract data type)EngineeringProgramming languageAerospace engineeringTelecommunicationsOperations managementAdvanced Neural Network ApplicationsAdvanced Image and Video Retrieval TechniquesMultimodal Machine Learning Applications
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