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CRYPTO2026Top-tier venue

Secure Computation Against NC1 Leakage Without Secure Hardware

Yuyu Wang

2026Year

Abstract

In this work, we construct (stateful) leakage-resilient circuits (LRCs) secure against bounded-output-length leakage functions computable by NC1\mathsf{NC}^1 circuits under the mild worst-case assumption NC1⊊⊕L/poly\mathsf{NC}^1 \subsetneq \oplus\mathsf{L}/\mathsf{poly}, without relying on any leak-free hardware components, thereby resolving the open problem left by Bogdanov, Ishai, and Srinivasan (CRYPTO 2019; Journal of Cryptology, 2021) and Wang (CRYPTO 2025).

Concretely, we first construct a leakage-tolerant circuit with succinct setup (sAI-LTC) secure against 2-adaptive NC1\mathsf{NC}^1 leakage, and then generically combine it with a 2-adaptive leakage-resilient composable encoding scheme to obtain the desired LRC.

We further give a direct non-black-box instantiation that optimizes the compiled circuit size at the cost of a slightly larger setup, matching the circuit size of Wang's construction that relies on leak-free hardware while using a more compact setup.

Finally, we show that our sAI-LTC generically implies a fine-grained multi-theorem non-interactive proof system for all NP\mathsf{NP}, with compact common reference strings, perfect soundness, and multi-theorem zero-knowledge with offline simulation against NC1\mathsf{NC}^1 adversaries.

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