Models
PaliGemma-2 vs. YOLOv4 PyTorch

PaliGemma-2 vs. YOLOv4 PyTorch

Both PaliGemma-2 and YOLOv4 PyTorch are commonly used in computer vision projects. Below, we compare and contrast PaliGemma-2 and YOLOv4 PyTorch.

Models

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PaliGemma-2

PaliGemma-2 is a multimodal model developed by Google.
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YOLOv4 PyTorch

YOLOv4 has emerged as the best real time object detection model. YOLOv4 carries forward many of the research contributions of the YOLO family of models along with new modeling and data augmentation techniques. This implementation is in PyTorch.
Model Type
Multimodal Model
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Object Detection
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Model Features
Item 1 Info
Item 2 Info
Architecture
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YOLO
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Frameworks
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PyTorch
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Annotation Format
Instance Segmentation
Instance Segmentation
GitHub Stars
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4.4k+
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License
Gemma License
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Apache-2.0
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Training Notebook

Compare PaliGemma-2 and YOLOv4 PyTorch with Autodistill

Compare PaliGemma-2 vs. YOLOv4 PyTorch

Provide your own image below to test YOLOv8 and YOLOv9 model checkpoints trained on the Microsoft COCO dataset.

COCO can detect 80 common objects, including cats, cell phones, and cars.