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Quantum Encryption with Certified Deletion, Revisited: Public Key, Attribute-Based, and Classical Communication

Authors :
Hiroka, Taiga
Morimae, Tomoyuki
Nishimaki, Ryo
Yamakawa, Takashi
Source :
In: Tibouchi M., Wang H. (eds) Advances in Cryptology - ASIACRYPT 2021 - LNCS 13090. Springer
Publication Year :
2021

Abstract

Broadbent and Islam (TCC '20) proposed a quantum cryptographic primitive called quantum encryption with certified deletion. In this primitive, a receiver in possession of a quantum ciphertext can generate a classical certificate that the encrypted message is deleted. Although their construction is information-theoretically secure, it is limited to the setting of one-time symmetric key encryption (SKE), where a sender and receiver have to share a common key in advance and the key can be used only once. Moreover, the sender has to generate a quantum state and send it to the receiver over a quantum channel in their construction. Although deletion certificates are privately verifiable, which means a verification key for a certificate has to be kept secret, in the definition by Broadbent and Islam, we can also consider public verifiability. In this work, we present various constructions of encryption with certified deletion. - Quantum communication case: We achieve (reusable-key) public key encryption (PKE) and attribute-based encryption (ABE) with certified deletion. Our PKE scheme with certified deletion is constructed assuming the existence of IND-CPA secure PKE, and our ABE scheme with certified deletion is constructed assuming the existence of indistinguishability obfuscation and one-way function. These two schemes are privately verifiable. - Classical communication case: We also achieve PKE with certified deletion that uses only classical communication. We give two schemes, a privately verifiable one and a publicly verifiable one. The former is constructed assuming the LWE assumption in the quantum random oracle model. The latter is constructed assuming the existence of one-shot signatures and extractable witness encryption.<br />Comment: 51 pages

Details

Database :
arXiv
Journal :
In: Tibouchi M., Wang H. (eds) Advances in Cryptology - ASIACRYPT 2021 - LNCS 13090. Springer
Publication Type :
Report
Accession number :
edsarx.2105.05393
Document Type :
Working Paper
Full Text :
https://doi.org/10.1007/978-3-030-92062-3_21