Publication | Open Access
TRACER: Extreme Attention Guided Salient Object Tracing Network (Student Abstract)
78
Citations
4
References
2022
Year
Edge FeaturesImage AnalysisMachine VisionFeature DetectionEngineeringPattern RecognitionObject DetectionObject RecognitionSod PerformanceVisual GroundingVisual Question AnsweringComputer ScienceSalient Object DetectionAttentionDeep LearningStudent AbstractVision RecognitionComputer Vision
Existing studies on salient object detection (SOD) focus on extracting distinct objects with edge features and aggregating multi-level features to improve SOD performance. However, both performance gain and computational efficiency cannot be achieved, which has motivated us to study the inefficiencies in existing encoder-decoder structures to avoid this trade-off. We propose TRACER which excludes multi-decoder structures and minimizes the learning parameters usage by employing attention guided tracing modules (ATMs), as shown in Fig. 1.
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