EDBT 2026 Demo / reviewers in the wild / expert
Akash Shah
dblp:179/9900
· DBLP profile ↗
13ranked-venue papers
3as first author
12since 2021 · last 2026
—ORCID · conflict
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 10 · 9 since 2021Artificial intelligence and machine learning · 1 · 1 first-author · 1 since 2021Systems, architecture and hardware · 1 · 1 first-author · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 first-author · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | DeepURLGuard: A comprehensive bidirectional recurrent neural network for multiclass malicious uniform resource locator classification with advanced features and explainability
Akash Shah, Sapna Varshney, Monica Mehrotra |
Eng. Appl. Artif. Intell. | 1 |
| 2025 | Multiparty Garbling from OT with Linear Scaling and RAM Support
David Heath 0001, Vladimir Kolesnikov, Varun Narayanan, Rafail Ostrovsky, Akash Shah |
CRYPTO (4) | 5 |
| 2025 | Black-Box Constant-Round Secure 2PC with Succinct Communication
Michele Ciampi, Ankit Kumar Misra, Rafail Ostrovsky, Akash Shah |
EUROCRYPT (5) | 4 |
| 2025 | Query-Reusable Proof Systems
Yuval Ishai, Eyal Kushilevitz, Varun Narayanan, Rafail Ostrovsky, Akash Shah |
EUROCRYPT (4) | 5 |
| 2025 | Zero-Knowledge RAM: Doubly Efficient and Black-Box
Yuval Ishai, Rafail Ostrovsky, Akash Shah |
EUROCRYPT (4) | 3 |
| 2025 | Threats on online social network platforms: classification, detection, and prevention techniques
Akash Shah, Sapna Varshney, Monica Mehrotra |
Multim. Tools Appl. | 1 |
| 2024 | DeepMUI: A novel method to identify malicious users on online social network platformsabstractSummary The use of online social network (OSN) platforms has become an essential component of contemporary society, facilitating global connectivity, and information sharing among individuals. The proliferation of malicious users has emerged as a noteworthy obstacle, exerting a detrimental effect on the authenticity of the data disseminated through these channels. A malicious profile is created with the intention of disseminating false information, manipulating perspectives, and executing harmful actions, including phishing schemes, identity theft, and the propagation of malware. Consequently, the identification of malicious users has emerged as an essential undertaking for both OSN platforms and researchers. The objective of this study is to investigate the issue of identifying malicious users on OSN platforms. The DeepMUI model has been introduced as a new approach to identifying malicious users on OSN platforms, utilizing user profile metadata‐derived characteristics. The DeepMUI architecture is composed of long short‐term memory and convolutional neural network models. Additionally, it integrates alterations to the pooling layer to improve its overall efficacy. The experiments have demonstrated that DeepMUI exhibits promising results in the task of identifying malicious users, with greater accuracy and minimal loss compared to existing methods. Akash Shah, Sapna Varshney, Monica Mehrotra |
Concurr. Comput. Pract. Exp. | 1 |
| 2023 | Succinct Arguments for RAM Programs via Projection Codes
Yuval Ishai, Rafail Ostrovsky, Akash Shah |
CRYPTO (2) | 3 |
| 2022 | Garbled Circuits with Sublinear Evaluator
Abida Haque, David Heath 0001, Vladimir Kolesnikov, Steve Lu 0001, Rafail Ostrovsky, Akash Shah |
EUROCRYPT (1) | 6 |
| 2022 | SIMC: ML Inference Secure Against Malicious Clients at Semi-Honest Cost
Nishanth Chandran, Divya Gupta 0001, Sai Lakshmi Bhavana Obbattu, Akash Shah |
USENIX Security Symposium | 4 |
| 2022 | Circuit-PSI With Linear Complexity via Relaxed Batch OPPRFabstractAbstract In 2-party Circuit-based Private Set Intersection (Circuit-PSI), P 0 and P 1 hold sets S 0 and S 1 respectively and wish to securely compute a function f over the set S 0 ∩ S 1 (e.g., cardinality, sum over associated attributes, or threshold intersection). Following a long line of work, Pinkas et al. (PSTY, Eurocrypt 2019) showed how to construct a concretely efficient Circuit-PSI protocol with linear communication complexity. However, their protocol requires super-linear computation. In this work, we construct concretely efficient Circuit-PSI protocols with linear computational and communication cost. Further, our protocols are more performant than the state-of-the-art, PSTY – we are ≈ 2.3 × more communication efficient and are up to 2.8 × faster. We obtain our improvements through a new primitive called Relaxed Batch Oblivious Programmable Pseudorandom Functions (RB-OPPRF) that can be seen as a strict generalization of Batch OPPRFs that were used in PSTY. This primitive could be of independent interest. Nishanth Chandran, Divya Gupta 0001, Akash Shah |
Proc. Priv. Enhancing Technol. | 3 |
| 2021 | Efficient Linear Multiparty PSI and Extensions to Circuit/Quorum PSIabstractMultiparty Private Set Intersection (mPSI), enables n parties, each holding private sets (each of size m) to securely compute the intersection of these private sets. While several protocols are known for this task, the only concretely efficient protocol is due to the work of Kolesnikov et al. (KMPRT, CCS 2017), who gave a semi-honest secure protocol with communication complexity O(nmtƛ), where t < n is the number of corrupt parties and ƛ is the security parameter. In this work, we make the following contributions: Nishanth Chandran, Nishka Dasgupta, Divya Gupta 0001, Sai Lakshmi Bhavana Obbattu, Sruthi Sekar, Akash Shah |
CCS | 6 |
| 2020 | Efficient backward private searchable encryptionabstractDynamic Searchable Symmetric Encryption ([Formula: see text]), apart from providing support for search operation, allows a client to perform update operations on outsourced database efficiently. Two security properties, viz., forward privacy and backward privacy are desirable from a [Formula: see text] scheme. The former captures that the newly updated entries cannot be related to previous search queries and the latter ensures that search queries should not leak matching entries after they have been deleted. These security properties are formalized in terms of the information leakage that can be incurred by the respective constructions. Existing backward private constructions either have a non-optimal communication overhead or they make use of heavy cryptographic primitives. Our main contribution consists of two efficient backward private schemes [Formula: see text] and [Formula: see text] that aim to achieve practical efficiency by using light weight symmetric cryptographic components only. In the process, we also revisit the existing definitions of information leakage for backward privacy [Bost et al. (In ACM CCS ( 2017 ) 1465–1482 ACM Press)] and propose a relaxed formulation. [Formula: see text] is the first construction to achieve backward privacy in the general setting with optimal communication complexity. Our second construction, [Formula: see text], is the first single round-trip scheme achieving backward privacy in a restricted setting with optimal communication complexity using light weight symmetric cryptographic primitives. The prototype implementations of our schemes depict the practicability of the proposed constructions and indicate that the cost of achieving backward privacy over forward privacy is substantially small. The performance results also show that the proposed constructions outperform the currently most efficient scheme achieving backward privacy. Sanjit Chatterjee, Shravan Kumar Parshuram Puria, Akash Shah |
J. Comput. Secur. | 3 |