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Rethinking Semantic Segmentation From a Sequence-to ...

Rethinking Semantic Segmentation from a Sequence-to -Sequence Perspectivewith TransformersSixiao Zheng1*Jiachen Lu1 Hengshuang Zhao2 Xiatian Zhu3 Zekun Luo4 Yabiao Wang4 Yanwei Fu1 Jianfeng Feng1 Tao Xiang3, 5 Philip Torr2Li Zhang1 1 Fudan University2 University of Oxford3 University of Surrey4 Tencent Youtu Lab5 Facebook recent Semantic Segmentation methods adopta fully-convolutional network (FCN) with an encoder-decoder architecture. The encoder progressively reducesthe spatial resolution and learns more abstract/semanticvisual concepts with larger receptive fields.

DETR [4] and the following deformable version utilize transformer for object detection where transformer is appended inside the detection head. STTR [31] and ... Rethinking Semantic Segmentation From a Sequence-to-Sequence Perspective With Transformers ...

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  Transformers, Dret, Deformable

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