Jesko Dujmovic

dblp:303/4993 · DBLP profile ↗
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12ranked-venue papers
6as first author
12since 2021 · last 2026
0000-0003-1043-5094ORCID · reported

Domains — the database's venue-derived domains; a paper can count in several

Security and privacy · 10 · 6 first-author · 10 since 2021Theory of computation · 5 · 1 first-author · 5 since 2021
YearPublicationVenuePosition
2026 Pairing-Based SNARGs with Two Group Elements
Gal Arnon, Jesko Dujmovic, Eylon Yogev
CRYPTO (9)2
2026 How to Use Polynomially-Hard iO: Turing Machine Obfuscation and More
Jesko Dujmovic, Yao-Ching Hsieh 0001, Abhishek Jain 0002, Willy Quach
CRYPTO (1)1
2026 When Simple Permutations Mix Poorly - Limited Independence does not Imply Pseudorandomness
Jesko Dujmovic, Angelos Pelecanos, Stefano Tessaro
EUROCRYPT1
2025 Designated-Verifier SNARGs with One Group Element
Gal Arnon, Jesko Dujmovic, Yuval Ishai
CRYPTO (7)2
2025 Registration-Based Encryption in the Plain Model
Jesko Dujmovic, Giulio Malavolta
PKC (1)1
2025 Space-Deniable Proofs
abstract
We introduce and construct a new proof system called Non-interactive Arguments of Knowledge or Space (NArKoS), where a space-bounded prover can convince a verifier they know a secret, while having access to sufficient space allows one to forge indistinguishable proofs without the secret. An application of NArKoS are space-deniable proofs, which are proofs of knowledge (say for authentication in access control) that are sound when executed by a lightweight device like a smart-card or an RFID chip that cannot have much storage, but are deniable (in the strong sense of online deniability) as the verifier, like a card reader, can efficiently forge such proofs. We construct NArKoS in the random oracle model using an OR-proof combining a sigma protocol (for the proof of knowledge of the secret) with a new proof system called simulatable Proof of Transient Space (simPoTS). We give two different constructions of simPoTS, one based on labelling graphs with high pebbling complexity, a technique used in the construction of memory-hard functions and proofs of space, and a more practical construction based on the verifiable space-hard functions from TCC’24 where a prover must compute a root of a sparse polynomial. In both cases, the main challenge is making the proofs efficiently simulatable.
Jesko Dujmovic, Christoph U. Günther, Krzysztof Pietrzak
TCC (4)1
2024 Time-Lock Puzzles with Efficient Batch Solving
Jesko Dujmovic, Rachit Garg 0001, Giulio Malavolta
EUROCRYPT (2)1
2024 Lower-Bounds on Public-Key Operations in PIR
Jesko Dujmovic, Mohammad Hajiabadi
EUROCRYPT (6)1
2024 Space-Lock Puzzles and Verifiable Space-Hard Functions from Root-Finding in Sparse Polynomials
Nico Döttling, Jesko Dujmovic, Antoine Joux
TCC (3)2
2023 Algebraic Restriction Codes and Their Applications
abstract
Abstract Consider the following problem: You have a device that is supposed to compute a linear combination of its inputs, which are taken from some finite field. However, the device may be faulty and compute arbitrary functions of its inputs. Is it possible to encode the inputs in such a way that only linear functions can be evaluated over the encodings? I.e., learning an arbitrary function of the encodings will not reveal more information about the inputs than a linear combination. In this work, we introduce the notion of algebraic restriction codes (AR codes), which constrain adversaries who might compute any function to computing a linear function. Our main result is an information-theoretic construction AR codes that restrict any class of function with a bounded number of output bits to linear functions. Our construction relies on a seed which is not provided to the adversary. While interesting and natural on its own, we show an application of this notion in cryptography. In particular, we show that AR codes lead to the first construction of rate-1 oblivious transfer with statistical sender security from the Decisional Diffie–Hellman assumption, and the first-ever construction that makes black-box use of cryptography. Previously, such protocols were known only from the LWE assumption, using non-black-box cryptographic techniques. We expect our new notion of AR codes to find further applications, e.g., in the context of non-malleability, in the future.
Divesh Aggarwal, Nico Döttling, Jesko Dujmovic, Mohammad Hajiabadi, Giulio Malavolta, Maciej Obremski
Algorithmica3
2022 Algebraic Restriction Codes and Their Applications
Divesh Aggarwal, Nico Döttling, Jesko Dujmovic, Mohammad Hajiabadi, Giulio Malavolta, Maciej Obremski
ITCS3
2022 Rate-1 Incompressible Encryption from Standard Assumptions
Pedro Branco 0005, Nico Döttling, Jesko Dujmovic
TCC (2)3