YOLOv4-tiny vs YOLOX

Compare YOLOv4-tiny and YOLOX side-by-side.

Compare YOLOv4-tiny vs YOLOX live

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Models in this comparison

YOLOv4-tiny vs YOLOX: Overview

YOLOv4-tiny

YOLOv4-tiny is a lightweight variant of YOLOv4 developed by Academia Sinica, released in November 2020. It retains the core YOLOv4 design principles while significantly reducing the number of convolutional layers and feature map channels to produce a model suitable for inference on devices with limited compute, including embedded hardware and mobile CPUs. It uses a simplified CSP backbone with fewer layers and two detection scales rather than three.

YOLOv4-tiny is optimized for scenarios where inference speed is prioritized over peak accuracy, achieving substantially higher FPS than full YOLOv4 at the cost of reduced AP on standard benchmarks. It is commonly used in robotics, embedded vision systems, and applications where real-time detection is required without GPU acceleration.

YOLOX

YOLOX is an anchor-free object detection model developed by Megvii (Face++), released in July 2021 under the Apache 2.0 license. It applies anchor-free detection to the YOLO framework, decoupling the classification and regression heads to allow each to optimize independently, and introduces the SimOTA label assignment strategy for improved training convergence. YOLOX achieves strong accuracy-speed tradeoffs and outperforms YOLOv5 on COCO at comparable model sizes.

YOLOX-L achieves 50.0% AP on COCO at 68.9 FPS on an NVIDIA V100 GPU. The model is available in a range of sizes from YOLOX-Nano to YOLOX-X and supports deployment through ONNX, TensorRT, and other standard export formats. It is suitable for real-time object detection applications and has been widely adopted in industrial and research detection pipelines.

YOLOv4-tiny vs YOLOX Comparison Table

PropertyYOLOv4-tinyYOLOX
OrganizationAcademia SinicaMegvii
Categoryopenopen
Modalityvisionvision
Release DateNov 2020Jul 2021
Context Window
Parameters0.91M-99.1M
LicenseCustomApache 2.0
Vision Tasks
Object Detection