2021
DOI: 10.48550/arxiv.2104.14753
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Studying the Consistency and Composability of Lottery Ticket Pruning Masks

Rajiv Movva,
Jonathan Frankle,
Michael Carbin

Abstract: Magnitude pruning is a common, effective technique to identify sparse subnetworks at little cost to accuracy. In this work, we ask whether a particular architecture's accuracy-sparsity tradeoff can be improved by combining pruning information across multiple runs of training. From a shared ResNet-20 initialization, we train several network copies (siblings) to completion using different SGD data orders on CIFAR-10. While the siblings' pruning masks are naively not much more similar than chance, starting siblin… Show more

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