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Data-Free Neural Architecture Search via Recursive Label Calibration

Machine Learning 2022-07-15 v2 Artificial Intelligence Computer Vision and Pattern Recognition

Abstract

This paper aims to explore the feasibility of neural architecture search (NAS) given only a pre-trained model without using any original training data. This is an important circumstance for privacy protection, bias avoidance, etc., in real-world scenarios. To achieve this, we start by synthesizing usable data through recovering the knowledge from a pre-trained deep neural network. Then we use the synthesized data and their predicted soft-labels to guide neural architecture search. We identify that the NAS task requires the synthesized data (we target at image domain here) with enough semantics, diversity, and a minimal domain gap from the natural images. For semantics, we propose recursive label calibration to produce more informative outputs. For diversity, we propose a regional update strategy to generate more diverse and semantically-enriched synthetic data. For minimal domain gap, we use input and feature-level regularization to mimic the original data distribution in latent space. We instantiate our proposed framework with three popular NAS algorithms: DARTS, ProxylessNAS and SPOS. Surprisingly, our results demonstrate that the architectures discovered by searching with our synthetic data achieve accuracy that is comparable to, or even higher than, architectures discovered by searching from the original ones, for the first time, deriving the conclusion that NAS can be done effectively with no need of access to the original or called natural data if the synthesis method is well designed.

Keywords

Cite

@article{arxiv.2112.02086,
  title  = {Data-Free Neural Architecture Search via Recursive Label Calibration},
  author = {Zechun Liu and Zhiqiang Shen and Yun Long and Eric Xing and Kwang-Ting Cheng and Chas Leichner},
  journal= {arXiv preprint arXiv:2112.02086},
  year   = {2022}
}

Comments

ECCV 2022

R2 v1 2026-06-24T08:03:36.836Z