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14 May 2026
Lucien K. L. Ng, Peter Rindal, Akash Shah
We study chosen-input VOLE (CI-VOLE), where the receiver privately chooses a large vector \(\mathbf{x}\), the sender fixes \(\Delta\), and the parties obtain shares of \(\mathbf{x} \cdot \Delta\) without communicating a linear-size object. This work presents \(\textsf{LogVole}\), a concretely efficient CI-VOLE protocol with polylogarithmic end-to-end communication under Ring-LWE. The construction uses a recursive shrink/expand design: it authenticates short digests of the chosen input and then uses a succinct telescope to expand those relations back to the full vector. The protocol has \(O(\lambda \log^2(|\mathbf{x}| + m_{\mathrm{msg}}))\) one-time setup and query communication and \(O(|\mathbf{x}|/n)\) ring operations. Here, \(n\) is the underlying ring degree, \(\lambda\) is the computational security parameter, and \(m_{\mathrm{msg}}\) is the size of the shares.
\(\textsf{LogVole}\) also supports a public-key non-interactive mode: for a fixed \(\Delta\), the sender publishes reusable parameters, and a receiver sends one compact \(\mathbf{x}\)-dependent message to obtain the matching VOLE shares. This gives a route to non-interactive VOLE-based ZK with polylogarithmic communication for arbitrary circuits. We also give a malicious-security extension in the random oracle model.
Using \(\textsf{LogVole}\), we obtain the first concretely efficient VOLE-based ZK protocol with polylogarithmic communication for arbitrary circuits. At 128-bit computational and 40-bit statistical security, our implementation reaches 12.9 million \(\mathbb{Z}_p\) inputs/s, 9.0 million ZK multiplication gates/s on a 16-core machine, and proves \(1024 \times 1024\) matrix multiplication in about 4s with single-thread computation and 226 KB communication.
Junichi Sakamoto, Kentaro Imafuku
Xiangyu Hui, Xingliang Yuan, Olga Ohrimenko, Sid Chi-Kin Chau
We present VeriANN, the \emph{first} encrypted ANN retrieval framework, to our knowledge, that simultaneously achieves \emph{query privacy}, \emph{database confidentiality}, and \emph{verifiability of retrieval results} against malicious servers, under a two-server non-colluding trust model. VeriANN couples distributed-point-function--based PIR over locality-sensitive hashing indexes with authenticated garbled circuits, so that the entire top-$k$ pipeline---bucket decryption, Merkle-root reconstruction, frequency counting, and top-$k$ selection---is executed obliviously and with end-to-end integrity. Making this integration practical requires three new techniques: (i) a sort-based hierarchical oblivious frequency-counting algorithm that enables a distance-free post-processing stage, reducing top-$k$ aggregation from quadratic to quasi-linear complexity; (ii) an end-to-end authenticated verification design that binds the full retrieval pipeline against selective-failure attacks while reducing client-side verification to a single hash check against the published Merkle root; and (iii) a modular state-pool design with an authenticated state-transfer mechanism that dynamically composes precomputed garbled states across query parameters while preserving cross-circuit verifiability. On million-scale corpora, VeriANN achieves second-scale end-to-end latency with KB-scale client-to-server communication, while adding minimal online overhead over a non-verifiable baseline.
Ryo Mizuno, Keita Emura
SUPRAVA ROY, Ratna Dutta
Guohao Lai
Paweł Kędzior, Marcin Mielniczuk, Daniele Venturi
In this paper, we challenge both requirements by leveraging the cryptoeconomic properties of the underlying blockchain. We introduce a mechanism for identifying parties who fail to fulfill their roles during protocol execution, using time-lock puzzles. This enables misbehaving parties to be penalized based on publicly verifiable fraud proofs, allowing for a more aggressive committee threshold. Furthermore, we propose a new sortition procedure that ensures the resulting committee always has a constant size, not just in expectation. This reduces fluctuations in committee size, enabling an even higher committee threshold. These techniques allow us to handle any constant fraction $f < 1$ of total corruptions.
Finally, we refine and generalize the analysis of corruptions in YOSO protocols, obtaining tighter bounds. Combined with our other enhancements, this enables committees of around 100 parties. Our analysis yields a $70$--$80\%$ improvement over the estimates of the seminal work by Benhamouda et al. (TCC 2020). We believe our work paves the way for practical deployments of YOSO MPC protocols.
Yuanyuan Duan, Hongxu Yi, Yu Chen
Navid Azimi
12 May 2026
Pierre Briaud, Romaric Neveu
Akram Bensebaa
Mostefa Kara, Konstantinos Karampidis, Muath AlShaikh
11 May 2026
Jaipur, India, 2 November - 6 November 2026
Lund University
Communication over the internet is susceptible to surveillance and censorship. Privacy preserving communication techniques (e.g., Tor, Nym, Snowflake) allow users to circumvent such surveillance and censorship. The research scope would include designing, analysing and implementing such systems; additionally, studying different attacks and countermeasures are expected to be part of the research method.
Privacy-preserving computation outsourcing allows users to outsource computation tasks to a cloud server without revealing to the server anything about the user data or even what kind of computations the user is performing. There are different techniques for such privacy-preserving computation outsourcing such as Trusted Execution Environment (e.g., Intel SGX) and Fully Homomorphic Encryption (TFHE, BGV). Furthermore, the specific functions/tasks can be subject to attacks, and identifying attacks and countermeasures is expected to be studied. The research method will be a combination of system studies, design, and experimental research.
The position is funded by the Wallenberg AI, Autonomous Systems and Software Program (WASP).
How to apply:
Applications need to be submitted to the application portal at: https://lu.varbi.com/en/what:job/jobID:917016/
Applications shall be written in English and include:
- CV and a cover letter stating the reasons why you are interested in the doctoral programme/employment and in what way the research project corresponds to your interests and educational background.
- Copies of issued study certificates and/or awarded degree certificates.
- Other documents you wish to be considered (grade transcripts, contact information for your references, letters of recommendation, etc.)
Closing date for applications:
Contact: Debajyoti Das ([email protected])
More information: https://lu.varbi.com/en/what:job/jobID:917016/
KTH Royal Institute of Technology
This position requires a Swedish citizenship. Information about the position is therefore only available in Swedish.
Centrum för cyberförsvar och informationssäkerhet (CDIS) vid KTH — som är ett samarbete mellan KTH och Försvarsmakten, samt vissa andra myndigheter — söker doktorander. Det rör sig om en bred utlysning inom cybersäkerhetsområdet. Vi vill här särskilt peka ut en möjlig specialisering inom kryptologiområdet.
Mer specifikt har KTH i samarbete med avdelningen för krypto och IT-säkerhet vid Must pågående spetsforskning som syftar till att möta de utmaningar som följer av kvantdatorutvecklingen. Vi söker nu inom ramen för CDIS utlysning en doktorand som kan bidra till den forskningen.
Doktoranden är tänkt att initialt handledas av Johan Håstad och Martin Ekerå. Tjänsten kommer att omfatta 80% doktorandstudier vid KTH och 20% placering vid Must där möjlighet ges att arbeta med några av Sveriges främsta kryptologer. Resultatet för doktoranden blir en unik kombination av teori och praktik inom kryptologiområdet.
Vid intresse, sök en av de av CDIS utlysta tjänsterna. För mer information, kontakta Johan Håstad ([email protected]) eller Martin Ekerå ([email protected]).
Sista ansökningsdag är 27 maj 2026. Observera att svenskt medborgarskap är ett krav för tjänsten, och att tjänsten medför krav på säkerhetsprövning.
Closing date for applications:
Contact: Martin Ekerå ([email protected])
More information: https://www.kth.se/lediga-jobb/926878?l=sv
Umeå University, Umeå, Sweden
Closing date for applications:
Contact: [email protected]
More information: https://umu.varbi.com/what:job/jobID:933591/
Department of Computer Science and Engineering, Indian Institute of Technology Roorkee
Closing date for applications:
Contact: Dr. Raghvendra Rohit ([email protected])
University of Latvia
Closing date for applications:
Contact: Andris Ambainis, [email protected]
More information: https://www.lu.lv/en/about-us/vacancies/tenured-professorship-in-the-area-of-computer-systems-security-in-computer-science-and-informatics-09122025-31012025/
10 May 2026
Alex Biryukov, Philip Tureček, Aleksei Udovenko
To advance the cryptanalytic utility of linearization, we study and solve the problem of covering an S-box with multiple approximations. As an application, we derive a generic linearization approach for the CICO problem (constrained-input-constrained-output) over SPN-based permutations (Substitution-Permutation Networks) with general linear layers. This is the first such general cryptanalysis based on the existence of a strong linearization of the S-box.
Yingchu Lv, Yanbin Pan, Huaxiong Wang
In this work, we propose a new framework that rethinks the encryption strategy for the index, reducing both communication and computation costs through fewer CRT moduli. In experiments on 16 GB, 32 GB, 64 GB, and 128 GB databases, our total communication cost drops to as low as 45.5% of TensorPIR's. Theoretically, as $N$ grows, our query and answer sizes are reduced to 36.9% and 22.2% of TensorPIR's, respectively. Compared with HintlessPIR, our scheme achieves lower theoretical communication complexity, leading to substantially smaller practical communication for large $N$. Moreover, our total online time is reduced to 28.9% to 56.1% of HintlessPIR's.