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Yolov5s Nfl

Developed by keremberke
An object detection model based on YOLOv5s, specifically designed for object detection tasks in NFL (National Football League) scenarios.
Downloads 85
Release Time : 12/30/2022

Model Overview

This model is an object detection model based on the YOLOv5s architecture, optimized for NFL game scenarios, capable of detecting specific targets in games.

Model Features

Efficient object detection
Based on the YOLOv5s architecture, it provides fast and accurate object detection capabilities.
Optimized for NFL scenarios
Specifically trained for NFL game scenarios, capable of detecting specific targets in games.
Easy to use
Offers simple installation and usage methods, supporting quick deployment and inference.

Model Capabilities

Object detection
Image analysis
Real-time inference

Use Cases

Sports analysis
NFL game object detection
Used to detect players, the ball, and other related objects in NFL games.
mAP@0.5 is 0.2607797627992381
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