flowers102 / README.md
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# Dataset Card for Flowers102
<!-- Provide a quick summary of the dataset. -->
## Dataset Details
### Dataset Description
<!-- Provide a longer summary of what this dataset is. -->
This is a 102 category dataset, consisting of 102 flower categories. The flowers chosen to be flower commonly occuring in the United Kingdom. Each class consists of between 40 and 258 images.
### Dataset Sources
<!-- Provide the basic links for the dataset. -->
- **Homepage:** https://www.robots.ox.ac.uk/~vgg/data/flowers/102/
- **Paper:** Nilsback, M. E., & Zisserman, A. (2008, December). Automated flower classification over a large number of classes. In 2008 Sixth Indian conference on computer vision, graphics & image processing (pp. 722-729). IEEE.
## Dataset Structure
<!-- This section provides a description of the dataset fields, and additional information about the dataset structure such as criteria used to create the splits, relationships between data points, etc. -->
Total images: 8,189
Classes: 102
Splits:
- **Train:** 1,020 images
- **Validation:** 1,020 images
- **Test:** 6,149 images
Image specs: JPG format, RGB
## Example Usage
Below is a quick example of how to load this dataset via the Hugging Face Datasets library.
```
from datasets import load_dataset
# Load the dataset
dataset = load_dataset("randall-lab/flowers102", split="train", trust_remote_code=True)
# dataset = load_dataset("randall-lab/flowers102", split="validation", trust_remote_code=True)
# dataset = load_dataset("randall-lab/flowers102", split="test", trust_remote_code=True)
# Access a sample from the dataset
example = dataset[0]
image = example["image"]
label = example["label"]
image.show() # Display the image
print(f"Label: {label}")
```
## Citation
<!-- If there is a paper or blog post introducing the dataset, the APA and Bibtex information for that should go in this section. -->
**BibTeX:**
@inproceedings{nilsback2008automated,
title={Automated flower classification over a large number of classes},
author={Nilsback, Maria-Elena and Zisserman, Andrew},
booktitle={2008 Sixth Indian conference on computer vision, graphics \& image processing},
pages={722--729},
year={2008},
organization={IEEE}
}