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in Data Studio
HaGRID Gesture Recognition Subset
Dataset Description
A curated subset of the HaGRID (Hand Gesture Recognition Image Dataset) containing 24 gesture classes for training gesture recognition models.
Dataset Summary
- Total Images: 19,200
- Gesture Classes: 24
- Samples per Class: 800
- Image Format: JPEG
- Average Image Size: ~302 KB
Splits
| Split | Images | Percentage |
|---|---|---|
| Train | 14,592 | 76% |
| Val | 1,728 | 9% |
| Test | 2,880 | 15% |
Gesture Classes
- call
- dislike
- fist
- four
- grabbing
- grip
- like
- middle_finger
- mute
- no_gesture
- ok
- one
- palm
- peace
- peace_inverted
- point
- rock
- stop
- stop_inverted
- three
- three2
- three3
- two_up
- two_up_inverted
Dataset Structure
data/
βββ train/
β βββ call/ (608 images)
β βββ dislike/ (608 images)
β βββ ...
βββ val/
β βββ ...
βββ test/
βββ ...
annotations.csv (19,200 entries)
Usage
Loading with Hugging Face Datasets
from datasets import load_dataset
# Load the dataset
dataset = load_dataset("YOUR_USERNAME/hagrid-subset")
# Access splits
train_data = dataset["train"]
val_data = dataset["validation"]
test_data = dataset["test"]
Loading with Pandas
import pandas as pd
from PIL import Image
df = pd.read_csv("hf://datasets/YOUR_USERNAME/hagrid-subset/annotations.csv")
train_df = df[df['split'] == 'train']
Citation
If you use this dataset, please cite the original HaGRID dataset:
@inproceedings{hagrid2022,
title={HaGRID--HAnd Gesture Recognition Image Dataset},
author={Kapitanov, Alexander and Kvanchiani, Karina and Nagaev, Alexander and Kraynov, Andrey and Makhliarchuk, Maxim},
booktitle={2022 International Conference on Robotics and Artificial Intelligence (ICRAI)},
year={2022}
}
Dataset Creation
This subset was created using stratified sampling to maintain train/val/test ratios while ensuring class balance.
Validation Status: β Fully validated with 100% annotation coverage
License
MIT License (inherited from original HaGRID dataset)
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