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Shuffling Is Not Enough: Breaking Permutation-Based Model Confidentiality

A September 11, 2026 arXiv paper shows that permutation-based model confidentiality in hybrid fully homomorphic encryption (FHE) inference fails, with d+1 admissible queries per linear layer enabling exact recovery of a permutation-invariant layer summary. The authors recovered all linear layers of a SAFHIRE-style ResNet-20 end-to-end from TFHE transcripts with zero error using 5,712 direct queries, and confirmed exact per-layer recovery on pretrained ImageNet-scale CNNs and ViT-B/16. The paper also finds that input differential privacy is orthogonal to model confidentiality and that the local-DP premise for shuffle amplification cannot hold under correctness-bounded noise, while suppressing the leaked spectra destroys inference utility.

read2 min views1 publishedSep 15, 2026
Shuffling Is Not Enough: Breaking Permutation-Based Model Confidentiality
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  [Submitted on 11 Sep 2026]


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Abstract:Hybrid fully homomorphic encryption~(FHE) inference improves the practicality of private inference by letting the server evaluate linear layers homomorphically while the client decrypts and applies nonlinearities. Recent schemes attempt to protect model confidentiality by returning noisy, output-permuted responses and appealing to shuffle-model differential privacy~(DP). We show that this protection fails in the correctness regime required by hybrid FHE systems. For a $d$-input linear layer, $d+1$ admissible queries suffice for exact recovery of a permutation-invariant layer summary, hence for perfect model distinguishability. We further show that input DP is orthogonal to model confidentiality and that the local-DP premise required for shuffle amplification cannot hold under correctness-bounded noise. We recover all linear layers of a \safhire{}-style ResNet-20 end-to-end from TFHE transcripts with zero error, using $d+1$ queries per layer for a total of $5{,}712$ direct queries. Under the same query model, we also confirm exact per-layer recovery on pretrained ImageNet-scale CNNs and ViT-B/16. The leaked spectra enable fingerprinting, lineage attribution, and improved logit-based extraction, while suppressing them destroys inference utility.

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