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Yolov5n Valorant

Developed by keremberke
A small object detection model based on YOLOv5n, specifically designed for detecting objects in the Valorant game.
Downloads 97
Release Time : 12/28/2022

Model Overview

This model is an object detection model based on the YOLOv5 architecture, optimized specifically for objects in the Valorant game, capable of efficiently identifying various elements in the game.

Model Features

Efficient Detection
Optimized for Valorant game scenarios, capable of quickly and accurately detecting various objects in the game.
Lightweight
Based on the YOLOv5n architecture, the model is small in size and suitable for deployment in resource-limited environments.
High Precision
Achieves an mAP@0.5 of 0.959 on the validation set, demonstrating excellent performance.

Model Capabilities

Game Object Detection
Real-time Object Recognition
Multi-object Simultaneous Detection

Use Cases

Game Analysis
Valorant Game Screen Analysis
Automatically identifies elements such as characters and weapons in the game
Can be used for game replay analysis or training assistance
Computer Vision Applications
Real-time Object Detection System
Builds a real-time detection system based on game screens
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