IACR News
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Here you can see all recent updates to the IACR webpage. These updates are also available:
21 February 2026
Tolun Tosun, Atıl Utku Ay, Quinten Norga, Suparna Kundu, Melik Yazıcı, Erkay Savaş, Ingrid Verbauwhede
Christian Majenz, Jaya Sharma
Kobi Gurkan, Andrija Novakovic, Ron D. Rothblum
Theoretically, Bolt achieves a commitment time of approximately $(3+\varepsilon) \cdot N$ field additions plus a Merkle Tree hash computation of size $(1+\varepsilon) \cdot N$ field elements, where $N$ is the size of the multilinear polynomial and $\varepsilon>0$ is arbitrarily small. The prior state-of-the-art, Blaze (Brehm et al., Eurocrypt 2025) used more than $8N$ field ops and a $4N$ size Merkle hash.
Concretely, our implementation demonstrates that these asymptotic gains translate into substantial real-world speedups. Our benchmarks show that for $N=2^{30}$ over a $32$-bit field, Bolt achieves a commitment time roughly $3 \times$ faster than Reed-Solomon based schemes, albeit with a moderately larger proof. Bolt also offers better commitment time and proof size than recent linear-time schemes. For example, its commitment time is about $1.34 \times$ faster than Brakedown (Golovnev et al., Crypto 2023) and with a $2 \times$ shorter proof.
Olivier Bernard, Marc Joye
19 February 2026
Tallinn, Estland, 6 October - 9 October 2026
Submission deadline: 15 May 2026
Notification: 23 June 2026
Wollongong City Council, Australia, 23 November - 25 November 2026
Submission deadline: 10 June 2026
Notification: 10 August 2026
Roma, Italia, 9 May - 10 May 2026
Submission deadline: 15 March 2026
Notification: 10 April 2026
Rome, Italy, 9 May 2026
Submission deadline: 6 March 2026
Notification: 20 March 2026
Castelraimondo, Italy, 5 May - 8 May 2026
KU Leuven, Belgium
We are looking for a motivated candidate for a PhD position on practical fully homomorphic encryption. The student will be a part of the FINAL project team. The research will include the design and implementation of novel techniques and improvements for the FINAL scheme using advanced cryptographic techniques such as MPC, FHE, and Zero Knowledge Proofs with the explicit intention for industrial deployment.
Responsibilities:
More info and how to apply
https://www.esat.kuleuven.be/cosic/vacancies/
Closing date for applications:
Contact: [email protected]
More information: https://www.esat.kuleuven.be/cosic/vacancies/
University of South Florida, Tampa, Florida
We need an applicant who already does have Master’s in Computer Engineering or Computer Science with hardware background (do not contact if you have not obtained a Master’s degree, this position is not for direct Bachelor’s to Ph.D.)
Please send email me your updated CV (including list of publications, language test marks, and references), transcripts for B.Sc. and M.Sc., and a statement of interest to: mehran2 (at) usf.edu as soon as possible. NOTE: The successful candidate will be asked to apply formally very soon to the college, so all the material has to be ready. We do not require GRE.
Closing date for applications:
Contact: Prof. Mehran Mozaffari Kermani
Technical University of Munich, Germany
A position for a postdoctoral researcher in isogeny-based cryptography is available in the research group led by Prof. Lorenz Panny in the Department of Mathematics at TUM, located at the Garching campus.
The group was established in 2023 and primarily focuses on mathematical and algorithmic aspects of post-quantum cryptography, ranging from constructive to cryptanalytic considerations. At this time, the group consists of the group leader and two PhD students (one at TUM, one external).
This position is part of the DFG-funded CRYPTIQ project, a cooperation with Prof. Christophe Petit (Université libre de Bruxelles, Belgium). The position is limited to about 2 years (depending on the start date), with a salary following the German TV-L scale for civil servants (level E13). Funding for attending academic events is available.
Requirements for the position include a doctoral degree in a suitable field (mathematics or computer science), as well as solid English skills in speaking and writing (knowledge of German is not needed). The ideal candidate has previously completed novel research projects on topics in (or related to) isogeny-based cryptography, and has built an excellent academic track record in the process.
Applications should include:
- Detailed academic CV.
- (Link to) applicant's PhD thesis.
- Information about possible/desired start dates.
- Name(s) and email address(es) of one or multiple professors willing to provide a letter of recommendation directly to us upon request. (There is no need to send a letter immediately as part of the application.)
Applications will be reviewed starting March 1 until the position is filled. Please send your application files to [email protected] with a meaningful subject line. Feel free to contact the same address for any questions about the position.
Closing date for applications:
Contact: Lorenz Panny <[email protected]>
NTNU (Norwegian University of Science and Technology)
The selected candidate will conduct research in Post-Quantum Cryptography with a particular focus on privacy-preserving protocols. The research will cover major Privacy-Enhancing Techniques (PETs), including Fully Homomorphic Encryption (FHE), Secure Multi-party Computation (MPC), and Zero-Knowledge Proofs (ZKPs). The candidate will design, analyze, and implement advanced privacy-preserving cryptographic protocols, with applications to real-world domains such as machine learning, distributed systems, and blockchain technologies.
At NTNU we want to increase the proportion of women in scientific positions. Female students are therefore encouraged to apply.
The application deadline is March 20, 2026
For more information, please check the official job announcement.
Closing date for applications:
Contact: Associate professor Jeongeun Park ([email protected])
More information: https://www.jobbnorge.no/en/available-jobs/job/295226/phd-candidate-in-post-quantum-cryptography-for-privacy-preserving-protocols
Epita Research Laboratory
Internship: Automated Complexity Evaluation for Differential Cryptanalysis
Context The evolution of cryptography and emerging threats (IoT, AI) requires robust encryption schemes. The TAGADA library (Libralesso et al. 2021) assists cryptographers by estimating differential distinguisher probabilities. However, evaluating the full security of an algorithm requires measuring the global time complexity of attacks, beyond simple probabilities.
Objectives The goal is to model and automate the complete complexity evaluation of differential attacks. Key missions include:
- Key Recovery Integration: Incorporating automated key recovery phase evaluation into existing resolution models.
- Global Optimization: Developing methods to optimize overall attack complexity instead of isolated sub-problems (balancing distinguisher probability vs. key extraction cost).
- Security Bounds: Identifying more precise security limits for encryption standards.
Candidate Profile Master’s or Engineering student in Computer Science, Mathematics, or Cybersecurity. Strong interest in symmetric cryptography and algorithmic optimization. Proficiency in English (technical reading/writing). Future Prospects Depending on results, this internship can lead to a PhD in Cryptanalysis (eligible for EU citizens).
Closing date for applications:
Contact: Loïc Rouquette
18 February 2026
Antonis Michalas
Himanshu Vashishth, Mor Weiss
We initiate a systematic study of ZK preservation under IOP composition, and prove general composition theorems for ZK-IOPs in the 2- and multi-IOP setting. Our main result shows that ZK is preserved in the setting of perfect, black-box, straight-line ZK (the standard setting for ZK-IOPs), if the outer IOP has an additional mild property that is satisfied by existing ZK-IOPs. Contrary to common belief, this does not follow from composition theorems for multiparty protocols (Kushilevitz, Lindell and Rabin, STOC`06).
Our composition theorems show that ZK-IOPs can be modularly designed by composing sub-protocols, and ZK of the composed system follows seamlessly from the ZK guarantees of its building blocks. Using our composition theorems, we easily derive both new and known results on ZK-IOPs in various settings, including ZK preservation under parallel/sequential composition, ZK of IOPs for sumcheck and codeswitching, ZK of IOPs for NP using arithmetization and sumcheck, and ZK preservation under IOP proof composition (reproving a result of Bootle, Chiesa and Liu, EC`22).
Simon-Philipp Merz, Àlex Rodríguez García
Aurel Pichollet--Mugnier, André Schrottenloher
In this paper, we introduce a new quantum truncated differential key-recovery attack, which leverages the quantum convolution algorithm introduced in [Schrottenloher, CRYPTO 2022] and previously used in linear cryptanalysis. We adapt this algorithm to the case of differential cryptanalysis, by rewriting the probability of a differential of an $n$-bit cipher as a convolution of functions with $2n$-bit input. We then construct a quantum state whose amplitudes encode the probability of the differential for different key guesses, and use this as the starting point of a quantum search. In some cases (although not on practical ciphers so far), the speedup is better than quadratic compared to classical attacks. We also extend the framework to related-key differential attacks.
We give applications to a 9-round attack on QARMAv2-64 adapted from [Ahmadian et al., DCC 2024] and a 12-round related-key attack on AES-256 from [Boura et al., CRYPTO 2023], which show improvement over classical attacks and over Kaplan et al.'s strategy when taking into account the amount of memory and the type of quantum memory used (as our attack requires only quantum-accessible classical memory).
Chengyi Qin, Mingqiang Wang, Haiyang Xue
Liming Gao, Guofeng Tang, Dingding Jia, Yijian Liu, Bingqian Liu, Xianhui Lu, Kunpeng Wang, Yongjian Yin
In this paper, we present $\mathsf{TalonG}$, a novel two-round lattice-based threshold signature that overcomes these limitations via a new trapdoor semi-commitment technique. This variant of commitment relaxes the standard binding requirement to a weaker form, allowing an efficient instantiation from the NTRU assumption and enabling a compact two-round signing protocol with low communication.
For $t=1024$ and 128-bit security, $\mathsf{TalonG}$ achieves significant improvements among existing lattice-based threshold signatures: its total communication per party and public key size are both minimal, at 26.9 KB and 2.0 KB, respectively. While the resulting signature size is larger (17.7 KB), it remains practical and highly competitive. $\mathsf{TalonG}$ is thus well-suited for real-world large-scale deployments where both round efficiency and communication load are critical.