A Neural Architecture Search Method using Auxiliary Evaluation Metric based on ResNet Architecture

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Authors Shang Wang, Huanrong Tang, Jianquan Ouyang arXiv ID 2505.01313 Category cs.NE: Neural & Evolutionary Cross-listed cs.AI, cs.CV, cs.LG Citations 3 Venue GECCO Companion Last Checked 3 months ago
Abstract
This paper proposes a neural architecture search space using ResNet as a framework, with search objectives including parameters for convolution, pooling, fully connected layers, and connectivity of the residual network. In addition to recognition accuracy, this paper uses the loss value on the validation set as a secondary objective for optimization. The experimental results demonstrate that the search space of this paper together with the optimisation approach can find competitive network architectures on the MNIST, Fashion-MNIST and CIFAR100 datasets.
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