Papers › Multiple-Human Parsing in the Wild

Multiple-Human Parsing in the Wild

19 May 2017arXiv:1705.07206archive 2025-07-28

Jianshu Li, Jian Zhao, Yunchao Wei, Congyan Lang, Yidong Li, Terence Sim, Shuicheng Yan, Jiashi Feng

Human parsing is attracting increasing research attention. In this work, we aim to push the frontier of human parsing by introducing the problem of multi-human parsing in the wild. Existing works on human parsing mainly tackle single-person scenarios, which deviates from real-world applications where multiple persons are present simultaneously with interaction and occlusion. To address the multi-human parsing problem, we introduce a new multi-human parsing (MHP) dataset and a novel multi-human parsing model named MH-Parser. The MHP dataset contains multiple persons captured in real-world scenes with pixel-level fine-grained semantic annotations in an instance-aware setting. The MH-Parser generates global parsing maps and person instance masks simultaneously in a bottom-up fashion with the help of a new Graph-GAN model. We envision that the MHP dataset will serve as a valuable data resource to develop new multi-human parsing models, and the MH-Parser offers a strong baseline to drive future research for multi-human parsing in the wild.

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ZhaoJ9014/Multi-Human-Parsing mentioned on GitHubtf report

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Human ParsingMulti-Human Parsing

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MHP

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Multi-Human Parsing MHP v1.0 MH-Parser AP 0.5 50.10% #3 of 4 Archive leaderboard report
Multi-Human Parsing MHP v2.0 MH-Parser AP 0.5 17.99% #4 of 5 Archive leaderboard report

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