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Segformer B0 Finetuned Cityscapes 1024 1024

Developed by nvidia
This SegFormer model has been fine-tuned on the CityScapes dataset at 1024x1024 resolution for semantic segmentation tasks.
Downloads 3,922
Release Time : 3/2/2022

Model Overview

SegFormer employs a hierarchical Transformer encoder and lightweight all-MLP decoder head architecture, delivering excellent performance in semantic segmentation tasks.

Model Features

Efficient design
Adopts a concise and efficient Transformer architecture combined with a lightweight all-MLP decoder head
High-resolution support
Supports image input at 1024x1024 resolution
Urban scene optimization
Specifically fine-tuned for the CityScapes dataset, ideal for urban scene analysis

Model Capabilities

Image semantic segmentation
Urban scene analysis
Road scene understanding

Use Cases

Intelligent transportation
Road segmentation
Identify and segment road areas in images
Sample images demonstrate accurate segmentation of roads
Urban planning
Urban scene analysis
Analyze different elements and regions in urban scenes
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