VLDB 2026 Research / reviewers in the wild / expert
Prabhanjan Vijendra Ananth
dblp:22/8772 · also Prabhanjan Ananth
· DBLP profile ↗
60ranked-venue papers
56as first author
29since 2021 · last 2026
0000-0001-5387-5730ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 50 · 49 first-author · 23 since 2021Theory of computation · 23 · 21 first-author · 10 since 2021Artificial intelligence and machine learning · 1 · 1 since 2021Databases, data management, data science and information retrieval · 1 · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Less is More: On Copy Complexity in Quantum Cryptography
Prabhanjan Vijendra Ananth, Eli Goldin |
CRYPTO (5) | 1 |
| 2026 | Copy-Protection from Unclonable Puncturable Obfuscation, Revisited
Prabhanjan Vijendra Ananth, Amit Behera, Zikuan Huang, Fuyuki Kitagawa, Takashi Yamakawa |
EUROCRYPT (1) | 1 |
| 2025 | Pseudorandom Unitaries in the Haar Random Oracle Model
Prabhanjan Vijendra Ananth, John Bostanci, Aditya Gulati, Yao-Ting Lin |
CRYPTO (2) | 1 |
| 2025 | Pseudorandomness in the (Inverseless) Haar Random Oracle Model
Prabhanjan Vijendra Ananth, John Bostanci, Aditya Gulati, Yao-Ting Lin |
EUROCRYPT (7) | 1 |
| 2025 | Simultaneous Haar Indistinguishability with Applications to Unclonable CryptographyabstractUnclonable cryptography is concerned with leveraging the no-cloning principle to build cryptographic primitives that are otherwise impossible to achieve classically. Understanding the feasibility of unclonable encryption, one of the key unclonable primitives, satisfying indistinguishability security in the plain model has been a major open question in the area. So far, the existing constructions of unclonable encryption are either in the quantum random oracle model or are based on new conjectures. We present a new approach to unclonable encryption via a reduction to a novel question about nonlocal quantum state discrimination: how well can non-communicating -- but entangled -- players distinguish between different distributions over quantum states? We call this task simultaneous state indistinguishability. Our main technical result is showing that the players cannot distinguish between each player receiving independently-chosen Haar random states versus all players receiving the same Haar random state. We leverage this result to present the first construction of unclonable encryption satisfying indistinguishability security, with quantum decryption keys, in the plain model. We also show other implications to single-decryptor encryption and leakage-resilient secret sharing. Prabhanjan Vijendra Ananth, Fatih Kaleoglu, Henry Yuen |
ITCS | 1 |
| 2025 | Ideal Pseudorandom Codes
Omar Alrabiah, Prabhanjan Vijendra Ananth, Miranda Christ, Yevgeniy Dodis, Sam Gunn |
STOC | 2 |
| 2025 | On the Limitations of Pseudorandom Unitaries - Or: Cryptographic Applications of LOCC Indistinguishability of Identical Versus Independent Haar Unitaries
Prabhanjan Vijendra Ananth, Aditya Gulati, Yao-Ting Lin |
TCC (3) | 1 |
| 2025 | Towards Accountability in CRS GenerationabstractAbstract It is well known that several cryptographic primitives cannot be achieved without a common reference string (CRS). Those include, for instance, non-interactive zero-knowledge for NP, or maliciously secure computation in fewer than four rounds. The security of those primitives heavily relies on the assumption that the trusted authority, who generates the CRS, does not misuse the randomness used in the CRS generation. However, we argue that there is no such thing as an unconditionally trusted authority and every authority must be held accountable for any trust to be well-founded. Indeed, a malicious authority can, for instance, recover private inputs of honest parties given transcripts of the protocols executed with respect to the CRS it has generated. While eliminating trust in the trusted authority may not be entirely feasible, can we at least move towards achieving some notion of accountability? We propose a new notion in which, if the CRS authority releases the private inputs of protocol executions to others, we can then provide a publicly-verifiable proof that certifies that the authority misbehaved. We study the feasibility of this notion in the context of non-interactive zero knowledge and two-round secure two-party computation. Prabhanjan Vijendra Ananth, Gilad Asharov, Hila Dahari, Vipul Goyal |
J. Cryptol. | 1 |
| 2024 | Unclonable Secret Sharing
Prabhanjan Vijendra Ananth, Vipul Goyal, Jiahui Liu 0003, Qipeng Liu 0001 |
ASIACRYPT (9) | 1 |
| 2024 | A Modular Approach to Unclonable Cryptography
Prabhanjan Vijendra Ananth, Amit Behera |
CRYPTO (7) | 1 |
| 2024 | ORTOA: A Family of One Round Trip Protocols For Operation-Type Obliviousness
Sujaya Maiyya, Yuval Steinhart, Adrian Davila, Jason Du, Divyakant Agrawal, Prabhanjan Vijendra Ananth, Amr El Abbadi |
EDBT | 6 |
| 2024 | Pseudorandom Isometries
Prabhanjan Vijendra Ananth, Aditya Gulati, Fatih Kaleoglu, Yao-Ting Lin |
EUROCRYPT (4) | 1 |
| 2024 | Provable Robust Watermarking for AI-Generated TextabstractWe study the problem of watermarking large language models (LLMs) generated text — one of the most promising approaches for addressing the safety challenges of LLM usage. In this paper, we propose a rigorous theoretical framework to quantify the effectiveness and robustness of LLM watermarks. We propose a robust and high-quality watermark method, Unigram-Watermark, by extending an existing approach with a simplified fixed grouping strategy. We prove that our watermark method enjoys guaranteed generation quality, correctness in watermark detection, and is robust against text editing and paraphrasing. Experiments on three varying LLMs and two datasets verify that our Unigram-Watermark achieves superior detection accuracy and comparable generation quality in perplexity, thus promoting the responsible use of LLMs. Xuandong Zhao, Prabhanjan Vijendra Ananth, Lei Li 0005, Yu-Xiang Wang 0003 |
ICLR | 2 |
| 2024 | Pseudorandom Strings from Pseudorandom Quantum StatesabstractWe study the relationship between notions of pseudorandomness in the quantum and classical worlds. Pseudorandom quantum state generator (PRSG), a pseudorandomness notion in the quantum world, is an efficient circuit that produces states that are computationally indistinguishable from Haar random states. PRSGs have found applications in quantum gravity, quantum machine learning, quantum complexity theory, and quantum cryptography. Pseudorandom generators, on the other hand, a pseudorandomness notion in the classical world, is ubiquitous to theoretical computer science. While some separation results were known between PRSGs, for some parameter regimes, and PRGs, their relationship has not been completely understood. In this work, we show that a natural variant of pseudorandom generators called quantum pseudorandom generators (QPRGs) can be based on the existence of logarithmic output length PRSGs. Our result along with the previous separations gives a better picture regarding the relationship between the two notions. We also study the relationship between other notions, namely, pseudorandom function-like state generators and pseudorandom functions. We provide evidence that QPRGs can be as useful as PRGs by providing cryptographic applications of QPRGs such as commitments and encryption schemes. Our primary technical contribution is a method for pseudodeterministically extracting uniformly random strings from Haar-random states. Prabhanjan Vijendra Ananth, Yao-Ting Lin, Henry Yuen |
ITCS | 1 |
| 2024 | Cryptography in the Common Haar State Model: Feasibility Results and Separations
Prabhanjan Vijendra Ananth, Aditya Gulati, Yao-Ting Lin |
TCC (2) | 1 |
| 2024 | Quantum Key-Revocable Dual-Regev Encryption, Revisited
Prabhanjan Vijendra Ananth, Zikuan Huang |
TCC (3) | 1 |
| 2023 | On the (Im)plausibility of Public-Key Quantum Money from Collision-Resistant Hash Functions
Prabhanjan Vijendra Ananth, Henry Yuen |
ASIACRYPT (8) | 1 |
| 2023 | Cloning Games: A General Framework for Unclonable Primitives
Prabhanjan Vijendra Ananth, Fatih Kaleoglu, Qipeng Liu 0001 |
CRYPTO (5) | 1 |
| 2023 | Revocable Cryptography from Learning with Errors
Prabhanjan Vijendra Ananth, Alexander Poremba, Vinod Vaikuntanathan |
TCC (4) | 1 |
| 2022 | Collusion-Resistant Functional Encryption for RAMs
Prabhanjan Vijendra Ananth, Kai-Min Chung, Xiong Fan, Luowen Qian |
ASIACRYPT (1) | 1 |
| 2022 | On the Feasibility of Unclonable Encryption, and More
Prabhanjan Vijendra Ananth, Fatih Kaleoglu, Xingjian Li 0006, Qipeng Liu 0001, Mark Zhandry |
CRYPTO (2) | 1 |
| 2022 | Cryptography from Pseudorandom Quantum States
Prabhanjan Vijendra Ananth, Luowen Qian, Henry Yuen |
CRYPTO (1) | 1 |
| 2022 | Pre-Constrained Encryption
Prabhanjan Vijendra Ananth, Abhishek Jain 0002, Zhengzhong Jin, Giulio Malavolta |
ITCS | 1 |
| 2022 | Pseudorandom (Function-Like) Quantum State Generators: New Definitions and Applications
Prabhanjan Vijendra Ananth, Aditya Gulati, Luowen Qian, Henry Yuen |
TCC (1) | 1 |
| 2021 | On the Concurrent Composition of Quantum Zero-Knowledge
Prabhanjan Vijendra Ananth, Kai-Min Chung, Rolando L. La Placa |
CRYPTO (1) | 1 |
| 2021 | Towards Accountability in CRS Generation
Prabhanjan Vijendra Ananth, Gilad Asharov, Hila Dahari, Vipul Goyal |
EUROCRYPT (3) | 1 |
| 2021 | Unbounded Multi-party Computation from Learning with Errors
Prabhanjan Vijendra Ananth, Abhishek Jain 0002, Zhengzhong Jin, Giulio Malavolta |
EUROCRYPT (2) | 1 |
| 2021 | Secure Software Leasing
Prabhanjan Vijendra Ananth, Rolando L. La Placa |
EUROCRYPT (2) | 1 |
| 2021 | Unclonable Encryption, Revisited
Prabhanjan Vijendra Ananth, Fatih Kaleoglu |
TCC (1) | 1 |
| 2020 | Towards Efficiency-Preserving Round Compression in MPC - Do Fewer Rounds Mean More Computation?
Prabhanjan Vijendra Ananth, Arka Rai Choudhuri, Aarushi Goel, Abhishek Jain 0002 |
ASIACRYPT (3) | 1 |
| 2020 | Multi-key Fully-Homomorphic Encryption in the Plain Model
Prabhanjan Vijendra Ananth, Abhishek Jain 0002, Zhengzhong Jin, Giulio Malavolta |
TCC (1) | 1 |
| 2020 | Secure Quantum Extraction Protocols
Prabhanjan Vijendra Ananth, Rolando L. La Placa |
TCC (3) | 1 |
| 2019 | Towards Attribute-Based Encryption for RAMs from LWE: Sub-linear Decryption, and More
Prabhanjan Vijendra Ananth, Xiong Fan, Elaine Shi |
ASIACRYPT (1) | 1 |
| 2019 | Indistinguishability Obfuscation Without Multilinear Maps: New Paradigms via Low Degree Weak Pseudorandomness and Security Amplification
Prabhanjan Vijendra Ananth, Aayush Jain, Huijia Lin, Christian Matt 0002, Amit Sahai |
CRYPTO (3) | 1 |
| 2019 | Two Round Information-Theoretic MPC with Malicious Security
Prabhanjan Vijendra Ananth, Arka Rai Choudhuri, Aarushi Goel, Abhishek Jain 0002 |
EUROCRYPT (2) | 1 |
| 2019 | From FE Combiners to Secure MPC and Back
Prabhanjan Vijendra Ananth, Saikrishna Badrinarayanan, Aayush Jain, Nathan Manohar, Amit Sahai |
TCC (1) | 1 |
| 2019 | Fully Homomorphic NIZK and NIWI Proofs
Prabhanjan Vijendra Ananth, Apoorvaa Deshpande, Yael Tauman Kalai, Anna Lysyanskaya |
TCC (2) | 1 |
| 2019 | Optimal Bounded-Collusion Secure Functional Encryption
Prabhanjan Vijendra Ananth, Vinod Vaikuntanathan |
TCC (1) | 1 |
| 2018 | Round-Optimal Secure Multiparty Computation with Honest Majority
Prabhanjan Vijendra Ananth, Arka Rai Choudhuri, Aarushi Goel, Abhishek Jain 0002 |
CRYPTO (2) | 1 |
| 2018 | Private Circuits: A Modular Approach
Prabhanjan Vijendra Ananth, Yuval Ishai, Amit Sahai |
CRYPTO (3) | 1 |
| 2018 | Succinct Garbling Schemes from Functional Encryption Through a Local Simulation Paradigm
Prabhanjan Vijendra Ananth, Alex Lombardi |
TCC (2) | 1 |
| 2017 | Indistinguishability Obfuscation for Turing Machines: Constant Overhead and Amortization
Prabhanjan Vijendra Ananth, Abhishek Jain 0002, Amit Sahai |
CRYPTO (2) | 1 |
| 2017 | A New Approach to Round-Optimal Secure Multiparty Computation
Prabhanjan Vijendra Ananth, Arka Rai Choudhuri, Abhishek Jain 0002 |
CRYPTO (1) | 1 |
| 2017 | Cryptography with Updates
Prabhanjan Vijendra Ananth, Aloni Cohen, Abhishek Jain 0002 |
EUROCRYPT (2) | 1 |
| 2017 | Robust Transforming Combiners from Indistinguishability Obfuscation to Functional Encryption
Prabhanjan Vijendra Ananth, Aayush Jain, Amit Sahai |
EUROCRYPT (1) | 1 |
| 2017 | Patchable Indistinguishability Obfuscation: iO for Evolving Software
Prabhanjan Vijendra Ananth, Abhishek Jain 0002, Amit Sahai |
EUROCRYPT (3) | 1 |
| 2017 | Projective Arithmetic Functional Encryption and Indistinguishability Obfuscation from Degree-5 Multilinear Maps
Prabhanjan Vijendra Ananth, Amit Sahai |
EUROCRYPT (1) | 1 |
| 2017 | On Secure Two-Party Computation in Three Rounds
Prabhanjan Vijendra Ananth, Abhishek Jain 0002 |
TCC (1) | 1 |
| 2016 | Universal Constructions and Robust Combiners for Indistinguishability Obfuscation and Witness Encryption
Prabhanjan Vijendra Ananth, Aayush Jain, Moni Naor, Amit Sahai, Eylon Yogev |
CRYPTO (2) | 1 |
| 2015 | From Selective to Adaptive Security in Functional Encryption
Prabhanjan Vijendra Ananth, Zvika Brakerski, Gil Segev 0001, Vinod Vaikuntanathan |
CRYPTO (2) | 1 |
| 2015 | Indistinguishability Obfuscation from Compact Functional Encryption
Prabhanjan Vijendra Ananth, Abhishek Jain 0002 |
CRYPTO (1) | 1 |
| 2014 | Optimizing Obfuscation: Avoiding Barrington's TheoremabstractIn this work, we seek to optimize the efficiency of secure general-purpose obfuscation schemes. We focus on the problem of optimizing the obfuscation of Boolean formulas and branching programs -- this corresponds to optimizing the "core obfuscator" from the work of Garg, Gentry, Halevi, Raykova, Sahai, and Waters (FOCS 2013), and all subsequent works constructing general-purpose obfuscators. This core obfuscator builds upon approximate multilinear maps, where efficiency in proposed instantiations is closely tied to the maximum number of "levels" of multilinearity required. Prabhanjan Vijendra Ananth, Divya Gupta 0001, Yuval Ishai, Amit Sahai |
CCS | 1 |
| 2014 | Interactive Proofs under Continual Memory Leakage
Prabhanjan Vijendra Ananth, Vipul Goyal, Omkant Pandey |
CRYPTO (2) | 1 |
| 2014 | Lower Bounds in the Hardware Token Model
Shashank Agrawal, Prabhanjan Vijendra Ananth, Vipul Goyal, Manoj Prabhakaran 0001, Alon Rosen |
TCC | 2 |
| 2013 | Non Observability in the Random Oracle Model
Prabhanjan Vijendra Ananth, Raghav Bhaskar |
ProvSec | 1 |
| 2013 | On the (In)security of Fischlin's Paradigm
Prabhanjan Vijendra Ananth, Raghav Bhaskar, Vipul Goyal, Vanishree Rao |
TCC | 1 |
| 2012 | An Algebraic Characterization of Rainbow Connectivity
Prabhanjan Vijendra Ananth, Ambedkar Dukkipati |
CASC | 1 |
| 2012 | Complexity of Gröbner basis detection and border basis detection
Prabhanjan Vijendra Ananth, Ambedkar Dukkipati |
Theor. Comput. Sci. | 1 |
| 2011 | Rainbow Connectivity: Hardness and TractabilityabstractA path in an edge colored graph is said to be a rainbow path if no two edges on the path have the same color. An edge colored graph is (strongly) rainbow connected if there exists a (geodesic) rainbow path between every pair of vertices. The (strong) rainbow connectivity of a graph G, denoted by (src(G), respectively) rc(G) is the smallest number of colors required to edge color the graph such that G is (strongly) rainbow connected. In this paper we study the rainbow connectivity problem and the strong rainbow connectivity problem from a computational point of view. Our main results can be summarised as below: 1) For every fixed k >= 3, it is NP-Complete to decide whether src(G) <= k even when the graph G is bipartite. 2) For every fixed odd k >= 3, it is NP-Complete to decide whether rc(G) <= k. This resolves one of the open problems posed by Chakraborty et al. (J. Comb. Opt., 2011) where they prove the hardness for the even case. 3) The following problem is fixed parameter tractable: Given a graph G, determine the maximum number of pairs of vertices that can be rainbow connected using two colors. 4) For a directed graph G, it is NP-Complete to decide whether rc(G) <= 2. Prabhanjan Vijendra Ananth, Meghana Nasre, Kanthi K. Sarpatwar |
FSTTCS | 1 |
| 2011 | Border basis detection is NP-completeabstractBorder basis detection (BBD) is described as follows: given a set of generators of an ideal, decide whether that set of generators is a border basis of the ideal with respect to some order ideal. The motivation for this problem comes from a similar problem related to Grobner bases termed as Grobner basis detection (GBD) which was proposed by Gritzmann and Sturmfels (1993). GBD was shown to be NP-hard by Sturmfels and Wiegelmann (1996). In this paper, we investigate the computational complexity of BBD and show that it is NP-complete. Prabhanjan Vijendra Ananth, Ambedkar Dukkipati |
ISSAC | 1 |