Christodoulos Pappas and Dimitrios Papadopoulos, The Hong Kong University of Science and Technology
Zero-knowledge succinct non-interactive arguments (zkSNARKs) are notorious for their large prover space requirements, which almost prohibits their use for really large instances. Space-efficient zkSNARKs aim to address this by limiting the prover space usage, without critical sacrifices to its runtime. In this work, we introduce Hobbit, the only existing space-efficient zkSNARK that achieves optimal prover time O(|C|) for an arithmetic circuit C. At the same time, Hobbit is the first transparent and post-quantum secure construction of its kind. Moreover, our experimental evaluation shows that Hobbit outperforms all prior general-purpose space-efficient zkSNARKs in the literature across four different applications (arbitrary arithmetic circuits, inference of pruned Multi-Layer Perceptron, batch AES128 evaluation, and select-and-aggregate SQL query) by x8-x56 in terms or prover time while requiring up to x23 less total space.
At a technical level, we introduce two new building blocks that may be of independent interest: (i) the first sumcheck protocol for products of polynomials with optimal prover time in the streaming setting, and (ii) a novel multi-linear post-quantum polynomial commitment scheme that outperforms all prior works in prover time (and can be tuned to work in a space-efficient manner). We build Hobbit by combining the above with a modified version of HyperPlonk, providing an explicit routine to stream access to the circuit evaluation.
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author = {Christodoulos Pappas and Dimitrios Papadopoulos},
title = {Hobbit: {Space-Efficient} {zkSNARK} with Optimal Prover Time},
booktitle = {34th USENIX Security Symposium (USENIX Security 25)},
year = {2025},
isbn = {978-1-939133-52-6},
address = {Seattle, WA},
pages = {4917--4936},
url = {https://www.usenix.org/conference/usenixsecurity25/presentation/pappas},
publisher = {USENIX Association},
month = aug
}
