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Machine Learning Datasets

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Machine Learning Datasets

  • Folder icon closed Folder open iconDataset Visualization
  • Storage & Credentials
  • API Basics
  • Getting Started
  • Tutorials (w Colab)
  • Playbooks
  • Data Layout
  • Folder icon closed Folder open iconShuffling in ds.pytorch()
  • Folder icon closed Folder open iconStorage Synchronization
  • Folder icon closed Folder open iconHow to Contribute
  • Datasets
    • Speech Commands Dataset
    • 300w Dataset
    • Food 101 Dataset
    • VCTK Dataset
    • LOL Dataset
    • AQUA Dataset
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    • ARID Video Action dataset
    • The Street View House Numbers (SVHN) Dataset
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    • Caltech 256 Dataset
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    • Pascal VOC 2012 Dataset
    • PACS Dataset
    • GlaS Dataset
    • QuAC Dataset
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    • Visdrone Dataset
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    • LFW Funneled Dataset
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    • Chest X-Ray Image Dataset
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UCI Seeds Dataset

Estimated reading: 3 minutes

UCI Seeds Dataset

What is UCI Seeds Dataset?

The UCI Seeds dataset originated from the properties of three different varieties of wheat such as Kama, Rosa, and Canadian. Each category of wheat has 70 elements which were randomly selected for the experiment. The dataset contains the properties of the images which were recorded on X-ray KODAK plates. This dataset can be used for classification and clustering purposes.

Downloading UCI Seeds Dataset in Python

Instead of downloading the UCI Seeds in Python, you can effortlessly load it in Python via our Deep Lake open-source with just one line of code.

Load UCI Seeds Dataset Subset in Python

				
					import deeplake
ds = deeplake.load('hub://activeloop/seeds-uci')
				
			

UCI Seeds Dataset Structure

Data Fields
  • area_A: tensor containing an area of the wheat grains
  • perimeter_P: tensor containing the perimeter of the wheat grains
  • compactness_C: tensor containing compactness of the wheat grains
  • length_of_kernel: tensor containing the length of each wheat kernel
  • width_of_kernel: tensor containing the width of each wheat kernel
  • asymmetry_coefficient: tensor containing asymmetry coefficient of a wheat kernel
  • length_of_kernel_groove: tensor containing a length of a kernel groove

How to use UCI Seeds Dataset with PyTorch and TensorFlow in Python

Train a model on UCI Seeds dataset with PyTorch in Python

Let’s use Deep Lake built-in PyTorch one-line dataloader to connect the data to the compute:

				
					dataloader = ds.pytorch(num_workers=0, batch_size=4, shuffle=False)
				
			
Train a model on UCI Seeds dataset with TensorFlow in Python
				
					dataloader = ds.tensorflow()
				
			

Additional Information about UCI Seeds Dataset

UCI Seeds Dataset Description

  • Homepage: https://archive.ics.uci.edu/ml/datasets/seeds
  • Activeloop Deep Lake: https://app.activeloop.ai/activeloop/seeds-uci
UCI Seeds Dataset Contributors
M. Charytanowicz, J. Niewczas, P. Kulczycki, P.A. Kowalski, S. Lukasik, S. Zak
UCI Seeds Dataset Licensing Information
Deep Lake users may have access to a variety of publicly available datasets. We do not host or distribute these datasets, vouch for their quality or fairness, or claim that you have a license to use the datasets. It is your responsibility to determine whether you have permission to use the datasets under their license.
 
If you’re a dataset owner and do not want your dataset to be included in this library, please get in touch through a GitHub issue. Thank you for your contribution to the ML community!
UCI Seeds Dataset Citation Information
				
					@incollection{charytanowicz2010complete,
  title={Complete gradient clustering algorithm for features analysis of x-ray images},
  author={Charytanowicz, Ma{\l}gorzata and Niewczas, Jerzy and Kulczycki, Piotr and Kowalski, Piotr A and {\L}ukasik, Szymon and {\.Z}ak, S{\l}awomir},
  booktitle={Information technologies in biomedicine},
  pages={15--24},
  year={2010},
  publisher={Springer}
}
				
			
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