Publication | Closed Access
AGSS-VOS: Attention Guided Single-Shot Video Object Segmentation
92
Citations
23
References
2019
Year
Unknown Venue
Scene AnalysisMachine VisionImage AnalysisMachine LearningEngineeringObject DetectionMultiple ObjectsSegment Multiple ObjectsVideo Content AnalysisComputer ScienceVideo UnderstandingDeep LearningObject InstancesVideo InterpretationComputer VisionVideo Segmentation
Most video object segmentation approaches process objects separately. This incurs high computational cost when multiple objects exist. In this paper, we propose AGSS-VOS to segment multiple objects in one feed-forward path via instance-agnostic and instance-specific modules. Information from the two modules is fused via an attention-guided decoder to simultaneously segment all object instances in one path. The whole framework is end-to-end trainable with instance IoU loss. Experimental results on Youtube- VOS and DAVIS-2017 dataset demonstrate that AGSS-VOS achieves competitive results in terms of both accuracy and efficiency.
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