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Mriganka Mandal

Publications and source records attributed to Mriganka Mandal.

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Registered Attribute-Based Encryption with Publicly Verifiable Certified Deletion, Everlasting Security, and More

Certified deletion ensures that encrypted data can be irreversibly deleted, preventing future recovery even if decryption keys are later exposed. Although existing works have achieved certified deletion across various cryptographic primitives, they rely on central authorities, leading to inherent escrow vulnerabilities. This raises the question of whether certified deletion can be achieved in decentralized frameworks such as Registered Attribute-Based Encryption (RABE) that combines fine-grained access control with user-controlled key registration. This paper presents the first RABE schemes supporting certified deletion and certified everlasting security. Specifically, we obtain the following: - We first design a privately verifiable RABE with Certified Deletion (RABE-CD) scheme by combining our newly proposed shadow registered ABE (Shad-RABE) with one-time symmetric key encryption with certified deletion. - We then construct a publicly verifiable RABE-CD scheme using Shad-RABE, witness encryption, and one-shot signatures, allowing any party to validate deletion certificates without accessing secret keys. - We also extend to privately verifiable RABE with Certified Everlasting Deletion (RABE-CED) scheme, integrating quantum-secure RABE with the certified everlasting lemma. Once a certificate is produced, message privacy becomes information-theoretic even against unbounded adversaries. -We finally realize a publicly verifiable RABE-CED scheme by employing digital signatures for the BB84 states, allowing universal verification while ensuring that deletion irreversibly destroys information relevant to decryption.

cs.CR

Multipartite Hardy paradox unlocks device-independent key sharing

We introduce a device-independent quantum key distribution protocol for N parties, using the multipartite Hardy paradox to certify genuine multipartite nonlocality. Unlike traditional multipartite protocols that extract the key from measurement outcomes, our approach generates the shared secret key directly from the parties' choices of measurement settings. This settings-based method, certified by the maximal violation of the multipartite Hardy paradox, achieves a positive key rate and offers a fresh perspective on secure key distribution. Notably, the Hardy paradox enables any two parties to create a secret key with a rate much higher than the N-party key, due to more robust pairwise correlations. This unique capability, inherent to the multipartite Hardy paradox, allows for tailored key distribution within the group, enhancing flexibility. Our work establishes a new paradigm for device-independent conference key agreement, where keys are generated directly from measurement settings using non-maximally entangled states. This approach ensures robust security in untrusted quantum networks and enables pairwise key rates that surpass the N-party rate, offering unprecedented flexibility in key distribution. By challenging conventional methods, it paves the way for scalable, noise-resilient multiparty quantum communication systems.

quant-ph