Papers › SelectiveNet: A Deep Neural Network with an Integrated Reject Option

SelectiveNet: A Deep Neural Network with an Integrated Reject Option

26 Jan 2019arXiv:1901.09192archive 2025-07-28

Yonatan Geifman, Ran El-Yaniv

We consider the problem of selective prediction (also known as reject option) in deep neural networks, and introduce SelectiveNet, a deep neural architecture with an integrated reject option. Existing rejection mechanisms are based mostly on a threshold over the prediction confidence of a pre-trained network. In contrast, SelectiveNet is trained to optimize both classification (or regression) and rejection simultaneously, end-to-end. The result is a deep neural network that is optimized over the covered domain. In our experiments, we show a consistently improved risk-coverage trade-off over several well-known classification and regression datasets, thus reaching new state-of-the-art results for deep selective classification.

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Syntology Ran 3 of 6 code samples harvested from 2 repositories linked to this paper; 3 have no recorded run. Of those that ran: 1 ran · honoured contract; 1 ran · violated contract; 1 ran · our draft was wrong.

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geifmany/SelectiveNet officialmentioned in paper report
BorealisAI/towards-better-sel-cls mentioned on GitHubpytorch report
gatheluck/pytorch-selectivenet mentioned on GitHubpytorchMIT report
ravi0912/selectiveNetNLP mentioned on GitHub report
ssatsuki/label-selection-layer mentioned on GitHubpytorchGPL-3.0 report

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1ran · honoured contract
1ran · violated contract
1ran · our draft was wrong
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calc_selective_risk geifmany/SelectiveNet/selectivnet_utils.py official repository ran · honoured contract no licence file found · pointer only · 17849bf331018cbf · report
post_calibration geifmany/SelectiveNet/selectivnet_utils.py official repository ran · our draft was wrong no licence file found · pointer only · eac730cdb744c89f · report
to_train geifmany/SelectiveNet/selectivnet_utils.py official repository ran · violated contract no licence file found · pointer only · 5f96aa28a1af0d6f · report
make_layers gatheluck/pytorch-selectivenet/selectivenet/vgg_variant.py community (archive-listed) unverified MIT (permissive) · 1643b00aceffc29d · report
vgg11_variant gatheluck/pytorch-selectivenet/selectivenet/vgg_variant.py community (archive-listed) unverified MIT (permissive) · f1aa529f6297a09a · report
vgg13_variant gatheluck/pytorch-selectivenet/selectivenet/vgg_variant.py community (archive-listed) unverified MIT (permissive) · e077bc9435b7ff80 · report

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ClassificationGeneral ClassificationPredictionregression

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