cat-yolo / README.md
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# Cat-50e-11n
## Model Overview
**Architecture:** YOLOv11
**Training Epochs:** 50
**Batch Size:** 32
**Optimizer:** auto
**Learning Rate:** 0.0005
**Data Augmentation Level:** Moderate
## Training Metrics
- **[email protected]:** 0.98567
## Class IDs
| Class ID | Class Name |
|----------|------------|
| 0 | Cat |
## Datasets Used
- cat-2er75_v4
- cats-j6k8r-iakbs_v1
- cats-j6k8r_v1
- mickey-finder_v1
## Class Image Counts
| Class Name | Image Count |
|------------|-------------|
| Cat | 9147 |
## Description
This model was trained using the YOLOv11 architecture on a custom dataset. The training process involved 50 epochs with a batch size of 32. The optimizer used was **auto** with an initial learning rate of 0.0005. Data augmentation was set to the **Moderate** level to enhance model robustness.
## Usage
To use this model for inference, follow the instructions below:
```python
from ultralytics import YOLO
# Load the trained model
model = YOLO('best.pt')
# Perform inference on an image
results = model('path_to_image.jpg')
# Display results
results.show()