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metadata
dataset_info:
  features:
    - name: image
      dtype: image
    - name: objects
      struct:
        - name: bbox
          list:
            list: int64
        - name: categories
          list:
            class_label:
              names:
                '0': avocado
                '1': rockmelon
                '2': apple
                '3': orange
                '4': strawberry
                '5': mango
                '6': capsicum
  splits:
    - name: train
      num_bytes: 549952890
      num_examples: 565
  download_size: 549981336
  dataset_size: 549952890
configs:
  - config_name: default
    data_files:
      - split: train
        path: data/train-*

Fruit Detection Worldwide

A dataset for object detection of various fruits. The dataset contains 565 images with 3,132 bounding box annotations across 7 categories.

This dataset is indexed on https://project-agml.github.io/ as part of the AgML python library.

Citation

@Article{s16081222,
AUTHOR = {Sa, Inkyu and Ge, Zongyuan and Dayoub, Feras and Upcroft, Ben and Perez, Tristan and McCool, Chris},
TITLE = {DeepFruits: A Fruit Detection System Using Deep Neural Networks},
JOURNAL = {Sensors},
VOLUME = {16},
YEAR = {2016},
NUMBER = {8},
ARTICLE-NUMBER = {1222},
URL = {https://www.mdpi.com/1424-8220/16/8/1222},
ISSN = {1424-8220},
DOI = {10.3390/s16081222}
}