Intak Hwang

dblp:357/9973 · DBLP profile ↗
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8ranked-venue papers
6as first author
8since 2021 · last 2026
0009-0005-3870-2096ORCID · corroborated

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

Security and privacy · 8 · 6 first-author · 8 since 2021
YearPublicationVenuePosition
2026 HERDS: Multi-key Fully Homomorphic Encryption with Sublinear Bootstrapping
Binwu Xiang, Seonhong Min, Intak Hwang, Haoqi He, Yuanju Wei, Kang Yang 0002, Jiang Zhang 0001, Yi Deng 0002, Yu Yu 0001
EUROCRYPT (4)3
2025 Carousel: Fully Homomorphic Encryption with Bootstrapping over Automorphism Group
Intak Hwang, Seonhong Min, Yongsoo Song
ASIACRYPT (7)1
2025 On the Security and Privacy of CKKS-Based Homomorphic Evaluation Protocols
Intak Hwang, Seonhong Min, Jinyeong Seo, Yongsoo Song
ASIACRYPT (7)1
2025 Practical Zero-Knowledge PIOP for Maliciously Secure Multiparty Homomorphic Encryption
abstract
Homomorphic encryption (HE) is a foundational technology in privacy-enhancing cryptography, enabling computation over encrypted data. Recently, generalized HE primitives designed for multi-party applications, such as multi-party HE (MPHE), have garnered significant research interest. While constructing secure multi-party protocols from MPHE in the semi-honest model is straightforward, achieving malicious security remains challenging as it requires zero-knowledge arguments of knowledge (ZKAoKs) for MPHE ciphertexts and public keys.
Intak Hwang, Hyeonbum Lee, Jinyeong Seo, Yongsoo Song
CCS1
2025 Practical TFHE Ciphertext Sanitization for Oblivious Circuit Evaluation
abstract
Homomorphic encryption (FHE) enables the computation of arbitrary circuits over encrypted data. A widespread application of HE is oblivious circuit evaluation, where a sender evaluates its private circuit over a receiver's encrypted data, covering scenarios such as oblivious inference and oblivious PRF protocols. However, while the security of HE guarantees the receiver's privacy against the sender, the privacy of the sender's circuit is not solely derived from the security of HE.
Intak Hwang, Seonhong Min, Jinyeong Seo, Yongsoo Song
CCS1
2025 Efficient Full Domain Functional Bootstrapping from Recursive LUT Decomposition
Intak Hwang, Shinwon Lee, Seonhong Min, Yongsoo Song
SAC1
2025 MatriGear: Accelerating Authenticated Matrix Triple Generation with Scalable Prime Fields via Optimized HE Packing
abstract
The SPDZ protocol family is a popular choice for secure multi-party computation (MPC) in a dishonest majority setting with active adversaries. Over the past decade, a series of studies have focused on improving its offline phase, where special additive shares called authenticated triples are gener-ated. However, to accommodate recent demands for matrix operations in secure machine learning and big integer arith-metic in distributed RSA key generation, updates to the offline phase are required. In this work, we propose a new protocol for the SPDZ offline phase, MatriGear, which improves upon the previous state-of-the-art construction, TopGear (Baum et al., SAC '19), and its variant for matrix triples (Chen et al., Asiacrypt '20). Our protocol aims to achieve a speedup in matrix triple generation and support for larger prime fields up to 4096 bits in size. To achieve this, we devise a variant of the BFV scheme and a new homomorphic matrix multiplication algorithm optimized for our purpose. As a result, our protocol achieves about 3.6x speedup for generating scalar triples in a 1024-bit prime field and about 34x speedup for generating 128x128 matrix triples. In addition, we reduce the size of evaluation keys from 27.4 GB to 0.22 GB and the communication cost for MAC key generation from 816 MB to 16.6 MB.
Hyunho Cha, Intak Hwang, Seonhong Min, Jinyeong Seo, Yongsoo Song
SP2
2024 Concretely Efficient Lattice-Based Polynomial Commitment from Standard Assumptions
Intak Hwang, Jinyeong Seo, Yongsoo Song
CRYPTO (10)1