This is the “Neural Network Verification” dataset used in the paper
Solving Mixed Integer Programs Using Neural Networks (Nair et al., 2020).
It contains a set of mixed integer programs (MIPs) for the problem of verifying a neural network’s robustness to perturbations to its inputs. The MIP formulation is described in the paper On the Effectiveness of Interval Bound Propagation for Training Verifiably Robust Models (Gowal et al., 2018).
This dataset corresponds to MIPs defined for verifying a neural network with the architecture labelled as “small” in Table 1 of Gowal et al., 2018, and trained on the MNIST image dataset. The code used to train the neural network to be verified is available at https://github.com/deepmind/interval-bound-propagation. The MIPs are split into the same training, validation, and test sets as that in Nair et al., 2020.
The dataset is available in the following link
The following table is necessary for this dataset to be indexed by search engines such as Google Dataset Search.
property | value | ||||||
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name | Neural Network Verification Dataset |
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url | https://github.com/deepmind/deepmind-research/tree/master/neural_mip_solving |
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sameAs | https://github.com/deepmind/deepmind-research/tree/master/neural_mip_solving |
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description |
This dataset contains a set of mixed integer programs (MIPs) for the
problem of verifying a neural network’s robustness to perturbations of its
inputs. The MIPs are encoded in LP format. |
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license | https://creativecommons.org/licenses/by/4.0/legalcode
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provider |
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citation | https://arxiv.org/abs/2012.13349 |
If you use this dataset in your work, we ask you to cite this paper:
@misc{nair2020solving,
title={Solving Mixed Integer Programs Using Neural Networks},
author={Vinod Nair and Sergey Bartunov and Felix Gimeno and Ingrid von Glehn and Pawel Lichocki and Ivan Lobov and Brendan O'Donoghue and Nicolas Sonnerat and Christian Tjandraatmadja and Pengming Wang and Ravichandra Addanki and Tharindi Hapuarachchi and Thomas Keck and James Keeling and Pushmeet Kohli and Ira Ktena and Yujia Li and Oriol Vinyals and Yori Zwols},
year={2020},
eprint={2012.13349},
archivePrefix={arXiv},
primaryClass={math.OC}
}
This dataset is made available under the terms of the Creative Commons Attribution 4.0 International (CC BY 4.0) license.
You can find details at: https://creativecommons.org/licenses/by/4.0/legalcode
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