Kabir Tomer

dblp:247/9433 · DBLP profile ↗
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7ranked-venue papers
1as first author
7since 2021 · last 2026
0009-0004-3716-5367ORCID · verified

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

Security and privacy · 4 · 4 since 2021Theory of computation · 3 · 1 first-author · 3 since 2021
YearPublicationVenuePosition
2026 A New Approach to Arguments of Quantum Knowledge
James Bartusek, Ruta Jawale, Justin Raizes, Kabir Tomer
CRYPTO (9)4
2026 Non-trivial Zero-Knowledge Implies One-Way Functions
Suvradip Chakraborty, James Hulett, Dakshita Khurana, Kabir Tomer
CRYPTO (1)4
2026 On the Cryptographic Futility of Non-collapsing Measurements
Alper Çakan, Dakshita Khurana, Tomoyuki Morimae, Yuki Shirakawa, Kabir Tomer, Takashi Yamakawa
EUROCRYPT (1)5
2026 On the Cryptographic Foundations of Interactive Quantum Advantage
abstract
In this work, we study the hardness required to achieve proofs of quantumness (PoQ), which in turn capture (potentially interactive) quantum advantage. A “trivial” or non-interactive PoQ simply assumes an (efficiently-verifiable) average-case hard problem for classical computers that is easy for quantum computers. However, there is much interest in “non-trivial” PoQs that actually rely on quantum hardness assumptions, instead of an assumed separation between quantum and classical computation for search problems, especially since these are often a starting point for more sophisticated protocols such as classical verification of quantum computation (CVQC). We show several lower-bounds for the hardness required to achieve non-trivial PoQ, specifically showing that they likely require cryptographic hardness, with different types of cryptographic hardness being required for different variations of non-trivial PoQ. In particular, our results help explain the challenges in using lattices to build publicly verifiable PoQ and its various extensions such as CVQC.
Kabir Tomer, Mark Zhandry
STOC1
2025 Founding Quantum Cryptography on Quantum Advantage, or, Towards Cryptography from #P Hardness
Dakshita Khurana, Kabir Tomer
STOC2
2024 Commitments from Quantum One-Wayness
abstract
One-way functions are central to classical cryptography. They are necessary for the existence of non-trivial classical cryptosystems, and also sufficient to realize meaningful primitives including commitments, pseudorandom generators and digital signatures. At the same time, a mounting body of evidence suggests that assumptions even weaker than one-way functions may suffice for many cryptographic tasks of interest in a quantum world, including bit commitments and secure multi-party computation. This work studies one-way state generators [Morimae-Yamakawa, CRYPTO 2022], a natural quantum relaxation of one-way functions. Given a secret key, a one-way state generator outputs a hard to invert quantum state. A fundamental question is whether this type of quantum one-wayness suffices to realize quantum cryptography. We obtain an affirmative answer to this question, by proving that one-way state generators with pure state outputs imply quantum bit commitments and secure multiparty computation. Along the way, we use efficient shadow tomography [Huang et. al., Nature Physics 2020] to build an intermediate primitive with classical outputs, which we call a (quantum) one-way puzzle. Our main technical contribution is a proof that one-way puzzles imply quantum bit commitments. This proof develops new techniques for pseudoentropy generation [Hastad et. al., SICOMP 1999] from arbitrary distributions, which may be of independent interest.
Dakshita Khurana, Kabir Tomer
STOC2
2023 Weak Zero-Knowledge via the Goldreich-Levin Theorem
Dakshita Khurana, Giulio Malavolta, Kabir Tomer
ASIACRYPT (2)3