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Papers/Region Aware Video Object Segmentation with Deep Motion Mo...

Region Aware Video Object Segmentation with Deep Motion Modeling

Bo Miao, Mohammed Bennamoun, Yongsheng Gao, Ajmal Mian

2022-07-21Semi-Supervised Video Object SegmentationSegmentationSemantic SegmentationVideo Object SegmentationVideo Semantic Segmentation
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Abstract

Current semi-supervised video object segmentation (VOS) methods usually leverage the entire features of one frame to predict object masks and update memory. This introduces significant redundant computations. To reduce redundancy, we present a Region Aware Video Object Segmentation (RAVOS) approach that predicts regions of interest (ROIs) for efficient object segmentation and memory storage. RAVOS includes a fast object motion tracker to predict their ROIs in the next frame. For efficient segmentation, object features are extracted according to the ROIs, and an object decoder is designed for object-level segmentation. For efficient memory storage, we propose motion path memory to filter out redundant context by memorizing the features within the motion path of objects between two frames. Besides RAVOS, we also propose a large-scale dataset, dubbed OVOS, to benchmark the performance of VOS models under occlusions. Evaluation on DAVIS and YouTube-VOS benchmarks and our new OVOS dataset show that our method achieves state-of-the-art performance with significantly faster inference time, e.g., 86.1 J&F at 42 FPS on DAVIS and 84.4 J&F at 23 FPS on YouTube-VOS.

Results

TaskDatasetMetricValueModel
VideoDAVIS 2017 (val)F-measure (Mean)89.3RAVOS
VideoDAVIS 2017 (val)J&F86.1RAVOS
VideoDAVIS 2017 (val)Jaccard (Mean)82.9RAVOS
VideoDAVIS 2016F-measure (Mean)92.6RAVOS
VideoDAVIS 2016J&F91.7RAVOS
VideoDAVIS 2016Jaccard (Mean)90.8RAVOS
VideoDAVIS 2016Speed (FPS)58RAVOS
VideoYouTube-VOS 2018F-Measure (Seen)87.8RAVOS
VideoYouTube-VOS 2018F-Measure (Unseen)87.4RAVOS
VideoYouTube-VOS 2018Jaccard (Seen)83.1RAVOS
VideoYouTube-VOS 2018Jaccard (Unseen)79.1RAVOS
VideoYouTube-VOS 2018Overall84.4RAVOS
VideoYouTube-VOS 2018Speed (FPS)23RAVOS
Video Object SegmentationDAVIS 2017 (val)F-measure (Mean)89.3RAVOS
Video Object SegmentationDAVIS 2017 (val)J&F86.1RAVOS
Video Object SegmentationDAVIS 2017 (val)Jaccard (Mean)82.9RAVOS
Video Object SegmentationDAVIS 2016F-measure (Mean)92.6RAVOS
Video Object SegmentationDAVIS 2016J&F91.7RAVOS
Video Object SegmentationDAVIS 2016Jaccard (Mean)90.8RAVOS
Video Object SegmentationDAVIS 2016Speed (FPS)58RAVOS
Video Object SegmentationYouTube-VOS 2018F-Measure (Seen)87.8RAVOS
Video Object SegmentationYouTube-VOS 2018F-Measure (Unseen)87.4RAVOS
Video Object SegmentationYouTube-VOS 2018Jaccard (Seen)83.1RAVOS
Video Object SegmentationYouTube-VOS 2018Jaccard (Unseen)79.1RAVOS
Video Object SegmentationYouTube-VOS 2018Overall84.4RAVOS
Video Object SegmentationYouTube-VOS 2018Speed (FPS)23RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2017 (val)F-measure (Mean)89.3RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2017 (val)J&F86.1RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2017 (val)Jaccard (Mean)82.9RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2016F-measure (Mean)92.6RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2016J&F91.7RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2016Jaccard (Mean)90.8RAVOS
Semi-Supervised Video Object SegmentationDAVIS 2016Speed (FPS)58RAVOS
Semi-Supervised Video Object SegmentationYouTube-VOS 2018F-Measure (Seen)87.8RAVOS
Semi-Supervised Video Object SegmentationYouTube-VOS 2018F-Measure (Unseen)87.4RAVOS
Semi-Supervised Video Object SegmentationYouTube-VOS 2018Jaccard (Seen)83.1RAVOS
Semi-Supervised Video Object SegmentationYouTube-VOS 2018Jaccard (Unseen)79.1RAVOS
Semi-Supervised Video Object SegmentationYouTube-VOS 2018Overall84.4RAVOS
Semi-Supervised Video Object SegmentationYouTube-VOS 2018Speed (FPS)23RAVOS

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