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3rd Place Solution for MOSE Track in CVPR 2024 PVUW workshop: Complex Video Object Segmentation

2024-06-06 · Xinyu Liu, Jing Zhang, Kexin Zhang, Yuting Yang, Licheng Jiao, Shuyuan Yang

Video Object Segmentation (VOS) is a vital task in computer vision, focusing on distinguishing foreground objects from the background across video frames. Our work draws inspiration from the Cutie model, and we investigate the effects of object memory, the total number of memory frames, and input resolution on segmentation performance. This report validates the effectiveness of our inference method on the coMplex video Object SEgmentation (MOSE) dataset, which features complex occlusions. Our experimental results demonstrate that our approach achieves a J\&F score of 0.8139 on the test set, securing the third position in the final ranking. These findings highlight the robustness and accuracy of our method in handling challenging VOS scenarios.

📄 PDF Abstract BibTeX arXiv:2406.03668

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Tasks

ObjectPositionSegmentationSemantic SegmentationVideo Object SegmentationVideo Semantic Segmentation

Methods 이 논문이 사용한 방법론

VOS VOS is a type of video object segmentation model consisting of two network components. The target appearance model consists of a light-weight module, which is learned during…

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