Quantum Secure Protocols for Multiparty Computations
Fuente:
arXiv
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| Autori principali: | , , , |
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| Natura: | Preprint |
| Pubblicazione: |
2023
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| _version_ | 1866911957651554304 |
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| author | Mohanty, Tapaswini Srivastava, Vikas Debnath, Sumit Kumar Stanica, Pantelimon |
| author_facet | Mohanty, Tapaswini Srivastava, Vikas Debnath, Sumit Kumar Stanica, Pantelimon |
| contents | Secure multiparty computation (MPC) schemes allow two or more parties to conjointly compute a function on their private input sets while revealing nothing but the output. Existing state-of-the-art number-theoretic-based designs face the threat of attacks through quantum algorithms. In this context, we present secure MPC protocols that can withstand quantum attacks. We first present the design and analysis of an information-theoretic secure oblivious linear evaluation (OLE), namely ${\sf qOLE}$ in the quantum domain, and show that our ${\sf qOLE}$ is safe from external attacks. In addition, our scheme satisfies all the security requirements of a secure OLE. We further utilize ${\sf qOLE}$ as a building block to construct a quantum-safe multiparty private set intersection (MPSI) protocol. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2312_16318 |
| institution | arXiv |
| publishDate | 2023 |
| record_format | arxiv |
| spellingShingle | Quantum Secure Protocols for Multiparty Computations Mohanty, Tapaswini Srivastava, Vikas Debnath, Sumit Kumar Stanica, Pantelimon Quantum Physics Cryptography and Security Secure multiparty computation (MPC) schemes allow two or more parties to conjointly compute a function on their private input sets while revealing nothing but the output. Existing state-of-the-art number-theoretic-based designs face the threat of attacks through quantum algorithms. In this context, we present secure MPC protocols that can withstand quantum attacks. We first present the design and analysis of an information-theoretic secure oblivious linear evaluation (OLE), namely ${\sf qOLE}$ in the quantum domain, and show that our ${\sf qOLE}$ is safe from external attacks. In addition, our scheme satisfies all the security requirements of a secure OLE. We further utilize ${\sf qOLE}$ as a building block to construct a quantum-safe multiparty private set intersection (MPSI) protocol. |
| title | Quantum Secure Protocols for Multiparty Computations |
| topic | Quantum Physics Cryptography and Security |
| url | https://arxiv.org/abs/2312.16318 |