Satrajit Ghosh

dblp:08/10311 · DBLP profile ↗
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11ranked-venue papers
4as first author
5since 2021 · last 2025
—ORCID · conflict

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

Security and privacy · 9 · 4 first-author · 3 since 2021Artificial intelligence and machine learning · 2 · 2 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021
YearPublicationVenuePosition
2025 TERRA: Trojan-Resilient Reverse-Firewall for Cryptographic Applications
Chandan Kumar Chaudhary, Nimish Mishra, Suvradip Chakraborty, Satrajit Ghosh, Debdeep Mukhopadhyay
ESORICS (2)4
2024 Developing Multi-Disorder Voice Protocols: A team science approach involving clinical expertise, bioethics, standards, and DEI
Anaïs Rameau, Satrajit Ghosh, Alexandros Sigaras, Olivier Elemento, Jean-Christophe Bélisle-Pipon, Vardit Ravitsky, Maria Powell, Alistair Johnson, David A. Dorr, Philip R. O. Payne, Micah Boyer, Stephanie Watts, Ruth Bahr, Frank Rudzicz, Jordan Lerner-Ellis, Shaheen Awan, Don Bolser, Yael Bensoussan
INTERSPEECH2
2023 Improved Distributed RSA Key Generation Using the Miller-Rabin Test
abstract
Secure distributed generation of RSA moduli (e.g., generating N=pq where none of the parties learns anything about p or q) is an important cryptographic task, that is needed both in threshold implementations of RSA-based cryptosystems and in other, advanced cryptographic protocols that assume that all the parties have access to a trusted RSA modulo. In this paper, we provide a novel protocol for secure distributed RSA key generation based on the Miller-Rabin test. Compared with the more commonly used Boneh-Franklin test (which requires many iterations), the Miller-Rabin test has the advantage of providing negligible error after even a single iteration of the test for large enough moduli (e.g., 4096 bits).
Jakob Burkhardt, Ivan Damgård, Tore Kasper Frederiksen, Satrajit Ghosh, Claudio Orlandi
CCS4
2022 Practical Non-malleable Codes from Symmetric-Key Primitives in 2-Split-State Model
Anit Kumar Ghosal, Satrajit Ghosh, Dipanwita Roychowdhury
ProvSec2
2021 Uncertainty-Aware Boosted Ensembling in Multi-Modal Settings
abstract
Reliability of machine learning (ML) systems is crucial in safety-critical applications such as healthcare, and uncertainty estimation is a widely researched method to highlight the confidence of ML systems in deployment. Sequential and parallel ensemble techniques have shown improved performance of ML systems in multi-modal settings by leveraging the feature sets together. We propose an uncertainty-aware boosting technique for multi-modal ensembling in order to focus on the data points with higher associated uncertainty estimates, rather than the ones with higher loss values. We evaluate this method on healthcare tasks related to Dementia and Parkinson's disease which involve real-world multi-modal speech and text data, wherein our method shows an improved performance. Additional analysis suggests that introducing uncertainty-awareness into the boosted ensembles decreases the overall entropy of the system, making it more robust to heteroscedasticity in the data, as well as better calibrating each of the modalities along with high quality prediction intervals. We open-source our entire codebase at https://github.com/usarawgi911//Uncertainty-aware-boosting.
Utkarsh Sarawgi, Rishab Khincha, Wazeer Zulfikar, Satrajit Ghosh, Pattie Maes
IJCNN4
2020 Improved Primitives for MPC over Mixed Arithmetic-Binary Circuits
Daniel Escudero 0001, Satrajit Ghosh, Marcel Keller, Rahul Rachuri, Peter Scholl
CRYPTO (2)2
2019 The Communication Complexity of Threshold Private Set Intersection
Satrajit Ghosh, Mark Simkin 0001
CRYPTO (2)1
2019 An Algebraic Approach to Maliciously Secure Private Set Intersection
Satrajit Ghosh, Tobias Nilges
EUROCRYPT (3)1
2017 Maliciously Secure Oblivious Linear Function Evaluation with Constant Overhead
Satrajit Ghosh, Jesper Buus Nielsen, Tobias Nilges
ASIACRYPT (1)1
2017 TinyOLE: Efficient Actively Secure Two-Party Computation from Oblivious Linear Function Evaluation
abstract
We introduce a new approach to actively secure two-party computation based on so-called oblivious linear function evaluation (OLE), a natural generalisation of oblivious transfer (OT) and a special case of the notion of oblivious polynomial evaluation introduced by Naor and Pinkas at STOC 1999. OLE works over a finite field F. In an OLE the sender inputs two field elements a ƒ F and b ƒ F, and the receiver inputs a field element x ∈ F and learns only ƒx) = ax + b. Our protocol can evaluate an arithmetic circuit over a finite field F given black-box access to OLE for F. The protocol is unconditionally secure and consumes only a constant number of OLEs per multiplication gate. An OLE over a field F of size O(2κ) be implemented with communication O(κ). This gives a protocol with communication complexity O(C κ) for large enough fields, where C is an arithmetic circuit computing the desired function.
Nico Döttling, Satrajit Ghosh, Jesper Buus Nielsen, Tobias Nilges, Roberto Trifiletti
CCS2
2015 Post-Quantum Forward-Secure Onion Routing - (Future Anonymity in Today's Budget)
Satrajit Ghosh, Aniket Kate
ACNS1