TRACER: Extreme Attention Guided Salient Object Tracing Network (Student Abstract)

Min Seok Lee, Woo-Seok Shin, Sung Won Han · Proceedings of the AAAI Conference on Artificial Intelligence · 2022

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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