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Learning to Linearize Deep Neural Networks for Secure and Efficient Private Inference

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arxiv 2301.09254 v1 pith:4POM3MXO submitted 2023-01-23 cs.CV cs.AIcs.LG

classification cs.CVcs.AIcs.LG
keywords reluaccuracysenetexistingmodelsrelusyieldbudget
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The large number of ReLU non-linearity operations in existing deep neural networks makes them ill-suited for latency-efficient private inference (PI). Existing techniques to reduce ReLU operations often involve manual effort and sacrifice significant accuracy. In this paper, we first present a novel measure of non-linearity layers' ReLU sensitivity, enabling mitigation of the time-consuming manual efforts in identifying the same. Based on this sensitivity, we then present SENet, a three-stage training method that for a given ReLU budget, automatically assigns per-layer ReLU counts, decides the ReLU locations for each layer's activation map, and trains a model with significantly fewer ReLUs to potentially yield latency and communication efficient PI. Experimental evaluations with multiple models on various datasets show SENet's superior performance both in terms of reduced ReLUs and improved classification accuracy compared to existing alternatives. In particular, SENet can yield models that require up to ~2x fewer ReLUs while yielding similar accuracy. For a similar ReLU budget SENet can yield models with ~2.32% improved classification accuracy, evaluated on CIFAR-100.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. TruncFormer: Private LLM Inference Using Only Truncations

    cs.CR 2024-12 conditional novelty 6.0 of 10

    TruncFormer statically places truncations in private LLM inference so all nonlinear operations reduce to adds, multiplies, and truncations, cutting estimated truncation latency by up to about 1.92x versus PUMA without...

  2. Towards Efficient Privacy-Preserving Machine Learning: A Systematic Review from Protocol, Model, and System Perspectives

    cs.CR 2025-07 conditional novelty 4.0 of 10

    A structured survey of PPML efficiency optimizations, grouped into protocol, model, and system levels, with comparisons and future directions.

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