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Best Practices for Scientific Research on Neural Architecture Search

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Finding a well-performing architecture is often tedious for both DL practitioners and researchers, leading to tremendous interest in the automation of this task by means of neural architecture search (NAS). Although the community has made major strides in developing better NAS methods, the quality of scientific empirical evaluations in the young field of NAS is still lacking behind that of other areas of machine learning. To address this issue, we describe a set of possible issues and ways to avoid them, leading to the NAS best practices checklist available at http://automl.org/nas_checklist.pdf.

Marius Lindauer, Frank Hutter• 2019

Related benchmarks

TaskDatasetResultRank
Time-series classificationPAMAP2
Accuracy89.5
60
Time Series RegressionFloodModeling (test)
RMSE0.007
14
Time Series RegressionHouseholdPowerConsumption 1
RMSE148.2
14
Time-series classificationP12
Accuracy86.2
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Time-series classificationFaultDetectionA
Accuracy99
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Time-series classificationP19
Accuracy97.5
14
Time Series RegressionAppliancesEnergy (test)
RMSE3.624
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Time Series RegressionBIDMC32SpO2 (test)
RMSE4.961
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Time Series RegressionHouseholdPowerConsumption 2
RMSE54.538
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Time-series classificationBinaryHeartbeat
Accuracy73.2
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