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metadata
annotations_creators: []
language: en
license: cc0-1.0
task_categories:
  - object-detection
task_ids: []
pretty_name: hard-hat-detection
tags:
  - fiftyone
  - image
  - object-detection
dataset_summary: >



  ![image/png](dataset_preview.gif)



  This is a [FiftyOne](https://github.com/voxel51/fiftyone) dataset with 5000
  samples.


  ## Installation


  If you haven't already, install FiftyOne:


  ```bash

  pip install -U fiftyone

  ```


  ## Usage


  ```python

  import fiftyone as fo

  import fiftyone.utils.huggingface as fouh


  # Load the dataset

  # Note: other available arguments include 'split', 'max_samples', etc

  dataset = fouh.load_from_hub("voxel51/hard-hat-detection")


  # Launch the App

  session = fo.launch_app(dataset)

  ```

Dataset Card for hard-hat-detection

This dataset, contains 5000 images with bounding box annotations in the PASCAL VOC format for these 3 classes:

  • Helmet
  • Person
  • Head

image/png

This is a FiftyOne dataset with 5000 samples.

Installation

If you haven't already, install FiftyOne:

pip install -U fiftyone

Usage

import fiftyone as fo
import fiftyone.utils.huggingface as fouh

# Load the dataset
# Note: other available arguments include 'split', 'max_samples', etc
dataset = fouh.load_from_hub("dgural/hard-hat-detection")

# Launch the App
session = fo.launch_app(dataset)

Dataset Details

Dataset Description

Improve workplace safety by detecting people and hard hats on 5k images with bbox annotations.

  • Language(s) (NLP): en
  • License: cc0-1.0

Dataset Sources

Source Data

Dataset taken from https://www.kaggle.com/datasets/andrewmvd/hard-hat-detection/data and created by andrewmvd

Citation

BibTeX:

@misc{make ml, title={Hard Hat Dataset}, url={https://makeml.app/datasets/hard-hat-workers}, journal={Make ML}}