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Yolos Small Dwr

Developed by hustvl
A YOLOS model fine-tuned on the COCO 2017 object detection dataset, utilizing a Vision Transformer architecture, suitable for object detection tasks.
Downloads 33
Release Time : 4/26/2022

Model Overview

YOLOS is a Vision Transformer (ViT) trained with DETR loss function for object detection tasks, achieving 37.6 AP on the COCO validation set.

Model Features

Simple Architecture
Adopts Vision Transformer architecture, simple in structure yet excellent in performance.
Efficient Training
Uses bipartite matching loss for training, optimizing one-to-one mapping between queries and annotations.
High Performance
Achieves 37.6 AP on the COCO 2017 validation set, comparable to DETR and Faster R-CNN frameworks.

Model Capabilities

Object Detection
Image Analysis

Use Cases

Visual Detection
Scene Object Detection
Detects objects in images and labels their categories and locations.
Achieves 37.6 AP on the COCO dataset
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