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Cryptology ePrint Archive

Fast Isogeny Evaluation on Binary Curves Quick Draw Queries: Lightweight Searchable Public-key Ciphertexts with Hidden Structures via Non-Interactive Key Exchange A Constructive Treatment of Authentication Boolean Arithmetic over $\mathbb{F}_2$ from Group Commutators HAWK with Hint: Algebraic Key Recovery from Side-Channel Leakage Post-Quantum Secure k-Times Traceable Ring Signature A Key Schedule Design and Evaluation under Boundary Round-Key Leakage 2G2T: Constant-Size, Statistically Sound MSM Outsourcing Proximity Signatures Breaking Optimized HQC: The First Cache-Timing Full Decryption Oracle Key-Recovery Attack in Post-Quantum Cryptography Efficient Partially Blind Signatures from Isogenies Evaluating PQC KEMs, Combiners, and Cascade Encryption via Adaptive IND-CPA Testing Using Deep Learning High-Throughput Side-Channel-Protected Stream Cipher Hardware for 6G Systems Efficient e = 3 Threshold RSA via Integer Coordinates for Intel SGX Zeal: PIR for Non-Cooperative Databases VEIL: Lightweight Zero-Knowledge for Hash-Based Multilinear Proof Systems Witness-Indistinguishable Arguments of Knowledge and One-Way Functions The many faces of Schnorr: a touch-up Open Problems in List Decoding and Correlated Agreement Compressed Key Exchange Protocol from Orientations of Large Discriminant Using AVX-512 SPLASH: SPeculative Leakage-Adaptive Secure Hardware An Efficient Identity-Based Blind Signature Scheme from SM9 Efficient Batch Threshold Encryption Using Partial Fraction Techniques A note on the Unsuitability of LIGA for Linkable Ring Signatures: The perils of non-commutativity Verification Facade: Masquerading Insecure Cryptographic Implementations as Verified Code Cryptographic Implications of Worst-Case Hardness of Time-Bounded Kolmogorov Complexity Efficient Merkle-Tree Consistent Accumulator FLOSS: Fast Linear Online Secret-Shared Shuffling Which Privacy Blanket is Optimal in the Shuffle Model? Applications of Bruhat-Chevalley-Renner Decomposition to Metric-Aware Code-Based Cryptography
Frontdoors, Not Backdoors: Accountable Anonymity for Nati...
Shailesh Mishra, EPFL · 2026-02-25 · via Cryptology ePrint Archive

Paper 2026/389

Frontdoors, Not Backdoors: Accountable Anonymity for National Digital Identity

Roxanne Chevalley, EPFL

Martin Burkhart, armasuisse

Bryan Ford, EPFL

Abstract

Anonymous credentials (ACs) let users prove identity claims with strong privacy guarantees, and national systems built on them — EUDI and the Swiss e-ID — go live in 2026. Due to these guarantees, however, AC systems cannot detect transferability attacks, where malicious users "transfer" their identity by presenting their credentials on behalf of other users, exposing a fundamental gap between privacy and accountability. For instance, users could sell anonymous legal age proofs online and get away with it. This lack of accountability will act as an obstacle for AC adoption on grounds of "national safety", as exemplified by the recurring push towards chat control in the EU. Consequently, issuing authorities may well settle for less-than-ideal privacy guarantees of current solutions (e.g., batch issuance of one-show credentials). In this paper, we advocate the need for integrated accountability in ACs and introduce the cryptographic forensic trail (CFT). A CFT is a randomized encryption of a user’s identity that they produce alongside each credential presentation; only when credential misuse, e.g., a transferability attack, is detected can the CFT be decrypted for accountability. The design of CFT is based on a legal process requiring probable cause for anonymity revocation. It enforces separation of powers between law enforcement, a judicial body, and a digital privacy advocate (NGO) using privacy-enhancing technologies. The protocol mimics checks and balances of a healthy democracy, in which neither law enforcement nor justice can track people as they will. Even if both branches colluded, the NGO can detect the misuse and block further use. We implement a prototype of CFT based on both hardware-compatible and zero-knowledge-friendly elliptic curves. Our evaluations show that CFT only adds about 20% computation overhead to credential shows on the user’s end, demonstrating the feasibility of deployments in wallets on mobile phones.

BibTeX

@misc{cryptoeprint:2026/389,
      author = {Shailesh Mishra and Roxanne Chevalley and Martin Burkhart and Bryan Ford},
      title = {Frontdoors, Not Backdoors: Accountable Anonymity for National Digital Identity},
      howpublished = {Cryptology {ePrint} Archive, Paper 2026/389},
      year = {2026},
      url = {https://eprint.iacr.org/2026/389}
}