HeLayers: A Tile Tensors Framework for Large Neural Networks on Encrypted Data

Author:

Aharoni Ehud1,Adir Allon1,Baruch Moran2,Drucker Nir1,Ezov Gilad1,Farkash Ariel1,Greenberg Lev1,Masalha Ramy1,Moshkowich Guy1,Murik Dov1,Shaul Hayim1,Soceanu Omri1

Affiliation:

1. IBM Research - Israel

2. IBM Research - Israel and Bar Ilan University

Abstract

Privacy-preserving solutions enable companies to offload confidential data to third-party services while fulfilling their government regulations. To accomplish this, they leverage various cryptographic techniques such as Homomorphic Encryption (HE), which allows performing computation on encrypted data. Most HE schemes work in a SIMD fashion, and the data packing method can dramatically affect the running time and memory costs. Finding a packing method that leads to an optimal performant implementation is a hard task. We present a simple and intuitive framework that abstracts the packing decision for the user. We explain its underlying data structures and optimizer, and propose a novel algorithm for performing 2D convolution operations. We used this framework to implement an inference operation over an encrypted HE-friendly AlexNet neural network with large inputs, which runs in around five minutes, several orders of magnitude faster than other state-of-the-art non-interactive HE solutions.

Publisher

Privacy Enhancing Technologies Symposium Advisory Board

Subject

General Medicine

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Efficient Pruning for Machine Learning Under Homomorphic Encryption;Computer Security – ESORICS 2023;2024

2. HyPHEN: A Hybrid Packing Method and Its Optimizations for Homomorphic Encryption-Based Neural Networks;IEEE Access;2024

3. Tutorial-HEPack4ML '23: Advanced HE Packing Methods with Applications to ML;Proceedings of the 2023 Tutorial on Advanced HE Packing Methods with Applications to ML;2023-11-26

4. Poster: Efficient AES-GCM Decryption Under Homomorphic Encryption;Proceedings of the 2023 ACM SIGSAC Conference on Computer and Communications Security;2023-11-15

5. Tutorial-HEPack4ML '23: Advanced HE Packing Methods with Applications to ML;Proceedings of the 2023 ACM SIGSAC Conference on Computer and Communications Security;2023-11-15

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