
Divesh Aggarwal
Divesh Aggarwal received his PhD degree in Computer Science from ETH Zurich in 2012. From 2012 to 2016, he spent two years each as a postdoctoral researcher at New York University and at EPFL. Since 2016, he is an Assistant Professor in the Department of Computer Science, and a Principal Investigator in the Centre for Quantum Technologies at the National University of Singapore. His research interests include lattices, pseudorandomness, cryptography, coding theory, algorithms, and computational complexity.
Preprints & Publications
Two-Source Non-Malleable Extractors and Applications to Privacy Amplification with Tamperable Memory
Algebraic Restriction Codes and their Applications
A constant rate non-malleable code in the split-state model
How to Extract Useful Randomness from Unreliable Sources
Extractor Lower Bounds, Revisited
Extractors Lower Bounds, Revisited
A Quantum-Proof Non-Malleable Extractor, With Application to Privacy Amplification against Active Quantum Adversaries
Continuous non-malleable codes in the 8-split-state model
Stronger Leakage-Resilient and Non-Malleable Secret-Sharing Schemes for General Access Structures
Just Take the Average! An Embarrassingly Simple $2^n$-Time Algorithm for SVP (and CVP)
A new public-key cryptosystem via Mersenne numbers
Improved algorithms for the Shortest Vector Problem and the Closest Vector Problem in the infinity norm
(Gap/S)ETH Hardness of SVP
Inception makes non-malleable codes stronger
Affine-malleable extractors, spectrum doubling, and application to privacy amplification
Improved hardness results for unique shortest vector problem
Breaking RSA Generically Is Equivalent to Factoring
A Note on Discrete Gaussian Combinations of Lattice Vectors
Computational and Information-Theoretic Two-Source (Non-Malleable) Extractors
Improved (Provable) Algorithms for the Shortest Vector Problem via Bounded Distance Decoding
An improved constant in Banaszczyk’s transference theorem
Slide Reduction, Revisited—Filling the Gaps in SVP Approximation
Quantum Measurement Adversary
Quantum secure non-malleable codes in the split-state model
Non-malleable Codes with rate 1/3 via Rate Boosters