Maskformer Swin Tiny Coco
A panoptic segmentation model trained on the COCO dataset, using a unified paradigm to handle instance/semantic/panoptic segmentation tasks
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Release Time : 3/2/2022
Model Overview
MaskFormer unifies instance segmentation, semantic segmentation, and panoptic segmentation as instance segmentation problems by predicting a set of masks and their corresponding labels
Model Features
Unified Segmentation Paradigm
Unifies three types of segmentation tasks as instance segmentation problems
Swin Backbone Network
Uses the efficient Swin Transformer as the feature extractor
End-to-End Training
Directly predicts masks and categories without post-processing
Model Capabilities
Image Segmentation
Semantic Segmentation
Instance Segmentation
Panoptic Segmentation
Use Cases
Computer Vision
Scene Understanding
Performs pixel-level segmentation and classification of objects in complex scenes
Can output segmentation masks with semantic labels
Autonomous Driving
Object recognition and segmentation in road scenes
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