Sourav Mukhopadhyay

dblp:31/3850 · DBLP profile ↗
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42ranked-venue papers
2as first author
9since 2021 · last 2025
0000-0002-4015-1386ORCID · corroborated

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

Security and privacy · 23 · 4 since 2021Computer networks · 7 · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 3 · 3 since 2021Theory of computation · 3 · 1 since 2021Systems, architecture and hardware · 2 · 1 first-authorArtificial intelligence and machine learning · 1Applied, interdisciplinary, general and emerging computing · 1 · 1 first-author
YearPublicationVenuePosition
2025 Securing data in the cloud using pairing-free inner product functional encryption with unbounded vector size
Subhranil Dutta, Ratna Dutta, Sourav Mukhopadhyay
Theor. Comput. Sci.3
2024 Key-homomorphic and revocable ciphertext-policy attribute based key encapsulation mechanism for multimedia applications
Anushree Belel, Ratna Dutta, Sourav Mukhopadhyay
Multim. Tools Appl.3
2024 Post-quantum secure recipient revocable broadcast encryption supporting anonymity
Kamalesh Acharya, Sourav Mukhopadhyay
Multim. Tools Appl.3
2023 Hierarchical Identity-Based Inner Product Functional Encryption for Unbounded Hierarchical Depth
Anushree Belel, Ratna Dutta, Sourav Mukhopadhyay
SSS3
2023 Constructions of broadcast encryption with personalized messages from bilinear map
Kamalesh Acharya, Sourav Mukhopadhyay
Comput. Commun.3
2023 Short attribute-based signatures for arbitrary Turing machines from standard assumptions
abstract
Abstract This paper presents the first attribute-based signature () scheme supporting signing policies representable by Turing machines (), based on well-studied computational assumptions. Our work supports arbitrarys as signing policies in the sense that the s can accept signing attribute strings of unbounded polynomial length and there is no limit on their running time, description size, or space complexity. Moreover, we are able to achieve input-specific running time for the signing algorithm. All other known expressive schemes could at most support signing policies realizable by either arbitrary polynomial-size circuits or s having a pre-determined upper bound on the running time. Consequently, those schemes can only deal with signing attribute strings whose lengths are a priori bounded, as well as suffers from the worst-case running time problem. On a more positive note, for the first time in the literature, the signature size of our scheme only depends on the size of the signed message and is completely independent of the size of the signing policy under which the signature is generated. This is a significant achievement from the point of view of communication efficiency. Our construction makes use of indistinguishability obfuscation () for polynomial-size circuits and certain -compatible cryptographic tools. Note that, all of these building blocks including for polynomial-size circuits are currently known to be realizable under well-studied computational assumptions.
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
Des. Codes Cryptogr.3
2022 Key Encapsulation Mechanism in Ciphertext-policy Attribute based Setting Featuring Revocation and Key-homomorphic Property
Anushree Belel, Ratna Dutta, Sourav Mukhopadhyay
SECRYPT3
2021 Lattice-based nominative signature using pseudorandom function
abstract
Abstract A nominative signature (NS) is a cryptographic primitive where two parties collude to produce a signature. It is a user certification system and has applications in a variety of sectors where nominee cannot trust heavily on the nominator to validate the nominee's certificate and only targeted entities are allowed to verify the signature on sensitive data. A new construction for NS from standard assumptions on lattice is provided. The authors’ construction relies on collision‐resistant preimage sampleable function and symmetric key primitives like collision‐resistant pseudorandom function and zero knowledge proof system ZKB ++ for Boolean circuits. The authors provide detailed security analysis and show that their construction achieves security under unforgeability , invisibility , impersonation , and non‐repudiation in the existing model. Furthermore, our construction exhibits non‐transferability . The security under non‐repudiation is achieved in the quantum random oracle model using Unruh transform to ZKB ++ .
Meenakshi Kansal, Ratna Dutta, Sourav Mukhopadhyay
IET Inf. Secur.3
2021 Blockchain-based multimedia content distribution with the assured system update mechanism
Saurabh Rana, Dheerendra Mishra, Sourav Mukhopadhyay
Multim. Tools Appl.3
2019 Constrained Pseudorandom Functions for Turing Machines Revisited: How to Achieve Verifiability and Key Delegation
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
Algorithmica3
2019 Succinct Predicate and Online-Offline Multi-Input Inner Product Encryptions under Standard Static Assumptions
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
J. Inf. Secur. Appl.3
2018 Functional Signcryption
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
J. Inf. Secur. Appl.3
2017 Secure and efficient user authentication scheme for multi-gateway wireless sensor networks
Jangirala Srinivas, Sourav Mukhopadhyay, Dheerendra Mishra
Ad Hoc Networks2
2017 A privacy preserving biometric-based three-factor remote user authenticated key agreement scheme
Ankita Chaturvedi, Dheerendra Mishra, Jangirala Srinivas, Sourav Mukhopadhyay
J. Inf. Secur. Appl.4
2017 Strongly full-hiding inner product encryption
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
Theor. Comput. Sci.3
2016 Design of a secure smart card-based multi-server authentication scheme
Ankita Chaturvedi, Ashok Kumar Das, Dheerendra Mishra, Sourav Mukhopadhyay
J. Inf. Secur. Appl.4
2016 A secure and efficient ECC-based user anonymity-preserving session initiation authentication protocol using smart card
Dheerendra Mishra, Ashok Kumar Das, Sourav Mukhopadhyay
Peer-to-Peer Netw. Appl.3
2016 An anonymous and secure biometric-based enterprise digital rights management system for mobile environment
abstract
In 1 the authorship was originally shown as “Ashok Kumar Das, Dheerendra Mishra and Sourav Mukhopadhyay”. This has now been corrected to “Dheerendra Mishra, Ashok Kumar Das and Sourav Mukhopadhyay”. We apologize for any inconvenience caused.
Dheerendra Mishra, Ashok Kumar Das, Sourav Mukhopadhyay
Secur. Commun. Networks3
2015 Fully Secure Online/Offline Predicate and Attribute-Based Encryption
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
ISPEC3
2015 New Constructions of T-function
Dibyendu Roy 0001, Ankita Chaturvedi, Sourav Mukhopadhyay
ISPEC3
2015 General Circuit Realizing Compact Revocable Attribute-Based Encryption from Multilinear Maps
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
ISC3
2015 Functional Signcryption: Notion, Construction, and Applications
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
ProvSec3
2015 Design of a lightweight two-factor authentication scheme with smart card revocation
Dheerendra Mishra, Ankita Chaturvedi, Sourav Mukhopadhyay
J. Inf. Secur. Appl.3
2015 A secure password-based authentication and key agreement scheme using smart cards
Dheerendra Mishra, Ashok Kumar Das, Ankita Chaturvedi, Sourav Mukhopadhyay
J. Inf. Secur. Appl.4
2015 An anonymous and secure biometric-based enterprise digital rights management system for mobile environment
abstract
Abstract Internet‐based content distribution facilitates an efficient platform to sell the digital content to the remote users. However, the digital content can be easily copied and redistributed over the network, which causes huge loss to the right holders. On the contrary, the digital rights management (DRM) systems have been introduced in order to regulate authorized content distribution. Enterprise DRM (E‐DRM) system is an application of DRM technology, which aims to prevent illegal access of data in an enterprise. Earlier works on E‐DRM do not address anonymity, which may lead to identity theft. Recently, Chang et al. proposed an efficient E‐DRM mechanism. Their scheme provides greater efficiency and protects anonymity. Unfortunately, we identify that their scheme does not resist the insider attack and password‐guessing attack. In addition, Chang et al.'s scheme has some design flaws in the authorization phase. We then point out the requirements of E‐DRM system and present the cryptanalysis of Chang et al.'s scheme. In order to remedy the security weaknesses found in Chang et al.'s scheme, we aim to present a secure and efficient E‐DRM scheme. The proposed scheme supports the authorized content key distribution and satisfies the desirable security attributes. Additionally, our scheme offers low communication and computation overheads and user's anonymity as well. Through the rigorous formal and informal security analyses, we show that our scheme is secure against possible known attacks. Furthermore, the simulation results for the formal security analysis using the widely accepted Automated Validation of Internet Security Protocols and Applications tool ensure that our scheme is also secure. Copyright © 2015 John Wiley & Sons, Ltd.
Ashok Kumar Das, Dheerendra Mishra, Sourav Mukhopadhyay
Secur. Commun. Networks3
2014 Universally Composable Efficient Priced Oblivious Transfer from a Flexible Membership Encryption
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
ACISP3
2014 Fully Secure Self-Updatable Encryption in Prime Order Bilinear Groups
Pratish Datta, Ratna Dutta, Sourav Mukhopadhyay
ISC3
2014 A Probabilistic Algebraic Attack on the Grain Family of Stream Ciphers
Pratish Datta, Dibyendu Roy 0001, Sourav Mukhopadhyay
NSS3
2014 A secure user anonymity-preserving biometric-based multi-server authenticated key agreement scheme using smart cards
Dheerendra Mishra, Ashok Kumar Das, Sourav Mukhopadhyay
Expert Syst. Appl.3
2013 Secure Content Delivery in DRM System with Consumer Privacy
Dheerendra Mishra, Sourav Mukhopadhyay
ISPEC2
2013 A Pairing-Free Identity Based Authentication Framework for Cloud Computing
Dheerendra Mishra, Vinod Kumar 0003, Sourav Mukhopadhyay
NSS3
2013 A Certificateless Authenticated Key Agreement Protocol for Digital Rights Management System
Dheerendra Mishra, Sourav Mukhopadhyay
QSHINE2
2013 Key Pre-distribution in a Non-uniform Network Using Combinatorial Design
Sarbari Mitra, Sourav Mukhopadhyay
QSHINE2
2011 Towards a Deterministic Hierarchical Key Predistribution for WSN Using Complementary Fano Plane
Sarbari Mitra, Ratna Dutta, Sourav Mukhopadhyay
SecureComm3
2010 Computationally secure self-healing key distribution with revocation in wireless ad hoc networks
Ratna Dutta, Sourav Mukhopadhyay, Martin Collier
Ad Hoc Networks2
2008 Generalized Self-healing Key Distribution Using Vector Space Access Structure
Ratna Dutta, Sourav Mukhopadhyay, Amitabha Das, Sabu Emmanuel
Networking2
2007 Efficient Self-healing Key Distribution with Revocation for Wireless Sensor Networks Using One Way Key Chains
Ratna Dutta, Ee-Chien Chang, Sourav Mukhopadhyay
ACNS3
2007 Constant Storage Self-Healing Key Distribution with Revocation in Wireless Sensor Network
abstract
A self-healing key distribution scheme enables a large group of users (sensor nodes) to establish a session key dynamically over an unreliable, or lossy wireless network. The main property of self-healing ensures that the qualified users can recover the lost session keys on their own from the broadcast packets and some private information, without any additional communication with the group manager, thus decreasing the load on the group manager. The only requirement for a user to recover the lost session keys, is its membership in the group both before and after the sessions in which the broadcast packets containing the keys are sent. Self-healing approach of key distribution is stateless in the sense that a user who has been off-line for some period is able to recover the lost session keys immediately after coming back on-line. This paper presents a new self-healing key distribution scheme with revocation capability that requires constant storage of personal keys for each user and we feel, it is more efficient than the previous schemes in terms of communication complexity. The novelty of this scheme is to use a different and more efficient self-healing mechanism compared to the ones in the literature. The scheme is supported by a proper security analysis in an appropriate security model. It is unconditionally secure and achieves both forward and backward secrecy. Moreover, unlike previous works, proposed self-healing key distribution is not restricted to m sessions in Setup phase.
Ratna Dutta, Yongdong Wu, Sourav Mukhopadhyay
ICC3
2007 Designing Scalable Self-healing Key Distribution Schemes with Revocation Capability
Ratna Dutta, Sourav Mukhopadhyay
ISPA2
2007 Improved Self-Healing Key Distribution with Revocation in Wireless Sensor Network
abstract
In this paper, we develop and analyze a new self-healing key distribution scheme with revocation capability, scalable to very large groups in unreliable ad hoc wireless environment. The main emphasis of our proposed scheme is that it has significant improvement in terms of both storage and communication overhead compared to the previous works. The storage overhead of our self-healing key distribution with t revocation capability is O((t + 1) log q), and the communication complexity is O((t+1+j) log q), where q is a large prime and j is the current session number. In contrast to the previous schemes, we use a different and more efficient self-healing technique. On a more positive note, our scheme enables reuse of personal key of a user to next m sessions and consequently, overcomes the restriction of m sessions in setup phase, unlike previous works. Moreover, we analyze our scheme in an appropriate security framework and proved that it is unconditionally secure and achieves both forward secrecy and backward secrecy.
Ratna Dutta, Sourav Mukhopadhyay
WCNC2
2006 Application of LFSRs for Parallel Sequence Generation in Cryptologic Algorithms
Sourav Mukhopadhyay, Palash Sarkar 0001
ICCSA (3)1
2006 Hardware architecture and trade-offs for generic inversion of one-way functions
abstract
Time-memory trade-off (TMTO) is a twenty five years old technique for inverting one-way functions. The most feasible implementation of TMTO is in special purpose hardware. Till date the work on hardware architecture for TMTO has been somewhat sketchy. In this paper, we describe a systematic architecture for implementing TMTO. We break down the offline and online phases into simpler tasks and identify opportunities for pipelining and parallelism. This results in a sufficiently detailed top-level architecture. To the best of our knowledge, such architecture does not appear in the literature
Sourav Mukhopadhyay, Palash Sarkar 0001
ISCAS1