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이주영 교수

JooYoung Lee

KAIST 전산학부 · 컴퓨터과학

연구실 소개

이주영 교수의 연구실은 암호학 및 정보 보안 분야에서 핵심적인 연구를 수행하고 있습니다. 주로 키 예약 기반의 센서 네트워크 설계, 특히 조합적 설계(Combinatorial Designs)를 활용한 효율적이고 안정적인 키 분배 기법에 초점을 맞추고 있으며, 이는 네트워크의 연결성과 내공성 향상에 기여합니다. 또한, 인증 키 교환 프로토콜과 해시 함수의 보안성 분석을 통해 실질적인 암호 프로토콜의 보안 보증에도 기여하고 있습니다. 특히, CDH 가정 기반의 보안 프로토콜 설계 및 Abreast-DM과 같은 압축 함수의 보안 증명 등 강력한 이론적 기반을 바탕으로 한 연구가 두드러집니다.

키 예약 기반 설계조합적 설계보안 프로토콜해시 함수 보안암호 프로토콜 증명

연구 현황

논문 수
106
총 인용 수
1,884
최근 5년 논문
22
주요 분야
컴퓨터과학

연구 성과 추이

표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수
22총합
2021
2022
2023
2024
2025
5개년 연도별 피인용 수
174총합
20212022202320242025

주요 논문

15
1
논문|인용수 203·2008
On the Construction of Practical Key Predistribution Schemes for Distributed Sensor Networks Using Combinatorial Designs
Jooyoung Lee, Douglas R. Stinson
ACM Transactions on Information and System Security

In this paper, we discuss the use of combinatorial set systems (combinatorial designs) in the design of key predistribution schemes (KPSs) for sensor networks. We show that the performance of a KPS can be improved by carefully choosing a certain class of set systems as “key ring spaces”. Especially, we analyze KPSs based on a type of combinatorial design known as a <it>transversal design</it>. We employ two types of transversal designs, which are represented by the set of all linear

Computer Networks and CommunicationsComputer Science
2
book chapter|인용수 202·2004
Deterministic Key Predistribution Schemes for Distributed Sensor Networks
Jooyoung Lee, Douglas R. Stinson
SJR Q2Lecture notes in computer scienceOA
Computer Networks and CommunicationsComputer Science
3
논문|인용수 186·2005
A combinatorial approach to key predistribution for distributed sensor networks
Jooyoung Lee, Douglas R. Stinson

We discuss the use of combinatorial set systems in the design of deterministic key predistribution schemes for distributed sensor networks. We concentrate on analyzing combinatorial properties of the set systems that relate to the connectivity and resilience of the resulting distributed sensor networks.

Computer Networks and CommunicationsComputer Science
4
논문|인용수 60·2005
Deterministic key predistribution schemes for distributed sensor networks
Jooyoung Lee, Stinson
SJR Q2Lecture notes in computer science
Computer Networks and CommunicationsComputer Science
5
book chapter|인용수 51·2011
The Collision Security of Tandem-DM in the Ideal Cipher Model
Jooyoung Lee, Martijn Stam, John Steinberger
SJR Q2Lecture notes in computer science
Artificial IntelligenceComputer Science
6
논문|인용수 48·1993
New Monte Carlo Algorithm: Entropic Sampling
Jooyoung Lee
SJR Q1Physical Review LettersOA
Artificial IntelligenceComputer Science
7
preprint|인용수 47·2008
Authenticated Key Exchange Secure under the Computational Diffie-Hellman Assumption.
Jooyoung Lee, Je Hong Park
IACR Cryptology ePrint Archive

Abstract. In this paper, we present a new authenticated key exchange(AKE) protocol and prove its security under the random oracle assumption and the computational Diffie-Hellman(CDH) assumption. In the extended Canetti-Krawczyk model, there has been no known AKE protocol based on the CDH assumption. Our protocol, called NAXOS+, is obtained by slightly modifying the NAXOS protocol proposed by LaMacchia, Lauter and Mityagin. We establish a formal security proof of NAXOS+ in the extended Canetti-Kr

Computer Networks and CommunicationsComputer Science
8
book chapter|인용수 41·2011
MJH: A Faster Alternative to MDC-2
Jooyoung Lee, Martijn Stam
SJR Q2Lecture notes in computer science
Artificial IntelligenceComputer Science
9
논문|인용수 37·2011
The Security of Abreast-DM in the Ideal Cipher Model
Jooyoung Lee, Daesung Kwon
SJR Q3IEICE Transactions on Fundamentals of Electronics Communications and Computer Sciences

As old as Tandem-DM, the compression function Abreast-DM is one of the most well-known constructions for double block length compression functions. In this paper, we give a security proof for Abreast-DM in terms of collision resistance and preimage resistance. The bounds on the number of queries for collision resistance and preimage resistance are given by Ω(2n). Based on a novel technique using query-response cycles, our security proof is simpler than those for MDC-2 and Tandem-DM. We also pres

Artificial IntelligenceComputer Science
10
book chapter|인용수 30·2013
Towards Key-Length Extension with Optimal Security: Cascade Encryption and Xor-cascade Encryption
Jooyoung Lee
SJR Q2Lecture notes in computer scienceOA
Artificial IntelligenceComputer Science
11
book chapter|인용수 28·2018
Provable Security of (Tweakable) Block Ciphers Based on Substitution-Permutation Networks
Benoît Cogliati, Yevgeniy Dodis, Jonathan Katz, Jooyoung Lee, John Steinberger, Aishwarya Thiruvengadam, Zhe Zhang
SJR Q2Lecture notes in computer scienceOA
Artificial IntelligenceComputer Science
12
논문|인용수 22·2015
An exploratory study of factors influencing repurchase behaviors toward game items: A field study
Jooyoung Lee, Junyeong Lee, Heeseok Lee, Jongwon Lee
SJR Q1Computers in Human Behavior
Sociology and Political ScienceSocial Sciences
13
book chapter|인용수 21·2010
Multi-property-preserving Domain Extension Using Polynomial-Based Modes of Operation
Jooyoung Lee, John Steinberger
SJR Q2Lecture notes in computer scienceOA
Artificial IntelligenceComputer Science
14
논문|인용수 19·2011
Collision Resistance of the JH Hash Function
Jooyoung Lee, Deukjo Hong
SJR Q1IEEE Transactions on Information Theory

In this paper, we analyze collision resistance of the JH hash function in the ideal primitive model. The JH hash function is one of the five SHA-3 candidates accepted for the final round of evaluation. The JH hash function uses a mode of operation based on a permutation, while its security has been elusive even in the random permutation model. One can find a collision for the JH compression function only with two backward queries to the basing primitive. However, the security is significantly en

Artificial IntelligenceComputer Science
15
preprint|인용수 18·2009
The Security of Abreast-DM in the Ideal Cipher Model.
Jooyoung Lee, Daesung Kwon
IACR Cryptology ePrint Archive

Abstract. In this paper, we give a security proof for Abreast-DM in terms of collision resistance and preimage resistance. As old as Tandem-DM, the compression function Abreast-DM is one of the most well-known constructions for double block length compression functions. The bounds on the number of queries for collision resistance and preimage resistance are given by O (2 n). Based on a novel technique using query-response cycles, our security proof is simpler than those for MDC-2 and Tandem-DM.

Artificial IntelligenceComputer Science

대표 연구 분야

Artificial IntelligenceComputer Networks and CommunicationsCell BiologyMolecular BiologySocial PsychologySafety, Risk, Reliability and Quality

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