• Title/Summary/Keyword: eavesdropping

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Group hashing for Secure Communications m Wireless Sensor Network (무선 센서 네트워크 환경에서 안전한 통신을 위한 그룹 해싱 기법)

  • Lee, Hee-man;Kang, Jung-Ho;Kim, Jung-ho;Jun, Moon-Seog
    • Proceedings of the Korea Information Processing Society Conference
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    • 2014.11a
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    • pp.470-472
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    • 2014
  • 무선 센서 네트워크에서 무선 전송 매체를 통한 통신으로 유선 네트워크에 비해 보안이 매우 취약하며 Sensor Node는 매우 제한된 통신, 계산 능력으로 기존에 다양한 암호화 방식 적용이 어렵기 때문에 데이터의 eavesdropping와 capture가 발생할 수 있다. 본 논문은 이러한 환경에서 지역적으로 같은 보안방식을 사용하여 한 지역 패킷이 노출되면 그룹 전체에 노출로 이어지는 취약점을 방지하기 위해서 BaseStation은 각 그룹의 ClusterHeader가 사용할 서로 다른 해시 알고리즘을 주기적으로 갱신하여 악의적인 사용자의 노드 eavesdropping 및 capture를 방지하고 안전한 통신을 수행하고자 한다. 제안된 기법은 기존 논문들의 비해 프로토콜의 효율성과 안전성을 보였다.

A Study on the VoIP Security Countermeasure of SIP-based (SIP(Session Initiation Protocol) 기반의 VoIP 보안 대책 연구)

  • Tae, Jang-Won;Kwak, Jin-Suk
    • Journal of Advanced Navigation Technology
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    • v.17 no.4
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    • pp.421-428
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    • 2013
  • Voice over IP refers to technology that enables routing of voice conversations over the Internet or a TCP/IP network. VoIP communication costs cheaper than traditional analog phone. Phone calls can be made to anywhere / anyone: Both to VoIP numbers as well as people with normal phone numbers. VoIP protocol equipment available today follows the SIP standard. Older VoIP equipment though would follow H 323, MGCP, Megaco/H.248. A SIP server is the main component of an IP PBX, dealing with the setup of all SIP calls in the TCP/IP network. A SIP server is also referred to a Asterisk IP-PBX. A VoIP telephone, also known as a SIP phone or a softphone, allows the user to make phone calls to any softphone, mobile or PC by using App store. A VoIP telephone can be a simple software-based softphone. However, the SIP Server and the program is vulnerable to VoIP attacks. In this paper, eavesdropping attacks tested by using the Asterisk SIP server. Eavesdropping attacks and TLS security methods apply to VoIP system. TLS can be applied to determine whether the eavesdropping available for VoIP Environments.

Backward Channel Protection Method For RFID Tag Security in the Randomized Tree Walking Algorithm (랜덤화된 트리워킹 알고리즘에서의 RFID 태그 보안을 위한 백워드 채널 보호 방식)

  • Choi Wonjoon;Roh Byeong-hee;Yoo S. W.;Oh Young Cheol
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.30 no.5C
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    • pp.415-421
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    • 2005
  • Passive RFID tag does not have its own power, so it has very poor computation abilities and it can deliver signals in very short range. From the facts, most RFID Tag security schemes assumed that the backward channel from tags to a reader is safe from eavesdropping. However, eavesdroppers near a tag can overhear message from a tag illegally. In this paper, we propose a method to protect the backward channel from eavesdropping by illegal readers. The proposed scheme can overcome the problems of conventional schemes such as randomized tree walking, which have been proposed to secure tag information in tree-walking algorithm as an anti-collision scheme for RFID tags. We showed the efficiency of our proposed method by using an analytical model, and it is also shown that the proposed method can provide the probability of eavesdropping in some standardized RFID tag system such as EPCglobal, ISO, uCode near to '0'.

Attack and Defense Plan, Attack Scenarios on Voice of Internet Protocol (인터넷전화의 공격 시나리오 및 공격과 방어 방안)

  • Chun, Woo-Sung;Park, Dea-Woo;Chang, Young-Hyun
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2011.10a
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    • pp.245-248
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    • 2011
  • Voice over Internet protocol(VoIP) is call's contents using the existing internet. Thus, in common with the Internet service has the same vulnerability. In addition, unlike traditional PSTN remotely without physical access to hack through the eavesdropping is possible. Cyber terrorism by anti-state groups take place when the agency's computer network and telephone system at the same time work is likely to get upset. In this paper is penetration testing for security threats(Call interception, eavesdropping, misuse of services) set out in the NIS in the VoIP. In addition, scenario writing and penetration testing, hacking through the Voice over Internet protocol at the examination center will study discovered vulnerabilities. Vulnerability discovered in Voice over Internet protocol presents an attack and defense plan.

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Generation of Dummy Messages Depending Upon the Location Privacy Level in Sensor Networks (센서 네트워크에서 위치 기밀 수준에 따른 더미 메시지 생성)

  • Tscha, Yeong-Hwan
    • The Journal of the Korea institute of electronic communication sciences
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    • v.11 no.9
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    • pp.861-868
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    • 2016
  • Dummy messages are usually generated for faking in preserving the location privacy of a sink or source against the global eavesdropping in wireless networks. In this paper, we propose a new method in which a certain number of nodes determined by considering the required privacy level are made to transit to the dormant state doing nothing so that the total number of dummy messages is reduced, while the paths from the sink to the sources are ensured. Through simulation we verify the success ratio of path establishments between the sink and a set of sources and the location privacy level of them.

Improved An RFID Mutual Authentication Protocol Based on Hash Function (개선된 해시기반의 RFID 상호인증 프로토콜)

  • Shin, Ju-Seok;Oh, Se-Jin;Jeong, Cheol-Ho;Chung, Kyung-Ho;Ahn, Kwang-Seon
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.37 no.3C
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    • pp.241-250
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    • 2012
  • In 2010, Jeon-Kim proposed HMAP(Hash-based Mutual Authentication Protocol for RFID Environment) to resolve a variety of problem related to security using Mutual authentication scheme, the hash function and secret key is used to update in RFID system. Jeon-Kim proved RMAP was safe for a variety of attacks including eavesdropping attacks through safety analysis. However, unlike the claims of the proposed protocol is vulnerable to next session of the secret key exposure due to eavesdropping. In this paper, we analyze the problem of RMAP and proves it through security analysis. And we also propose improved an RFID Mutual Authentication Protocol based on Hash Function to solve problems of HMAP.

Concealing Communication Paths in Wireless Sensor Networks (무선 센서 네트워크에서의 통신 경로 은닉)

  • Tscha, Yeong-Hwan
    • The Journal of the Korea institute of electronic communication sciences
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    • v.9 no.12
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    • pp.1353-1358
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    • 2014
  • Tremendous amount of dummy packets are generally generated for faking over a wireless sensor network so as to keep the location privacy of nodes on the communication paths against the global eavesdropping. In this paper, a scoped-flooding protocol is designed for transferring data between each source and mobile sink(aka, basestation) where, the only nodes within the scope are allowed to issue dummy packets at every idle time so that the location privacy of the nodes on the paths is kept and the amount of dummy packets is reduced to the extend of the flooding scope. The size of the flooding diameter can be taken into consideration of the privacy level and the communication cost. We design a detailed specification of the protocol and verify several properties.

Concealing Communication Source and Destination in Wireless Sensor Networks(Part I) : Protocol Design (무선 센서 네트워크에서의 통신 근원지 및 도착지 은닉(제1부) : 프로토콜 설계)

  • Tscha, Yeong-Hwan
    • The Journal of the Korea institute of electronic communication sciences
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    • v.8 no.2
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    • pp.219-226
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    • 2013
  • Against the global eavesdropping in wireless sensor networks, tremendous amount of dummy packets for faking are likely to be continuously generated in order to keep the location privacy of the communication source and destination. In our approach only certain disk-shaped zones of encompassing sources and destination are allowed to issue dummy packets during the data transfer so that the amount of generated packets is reduced while the location privacy of the source and destination remains secret. To this end we design a routing protocol and propose a detailed formal specification of it, and verify major characteristics.

An RFID Mutual Authentication Protocol Using One-Time Random Number (일회성 난수를 사용한 RFID 상호인증 프로토콜)

  • Oh, Se-Jin;Chung, Kyung-Ho;Yun, Tae-Jin;Abn, Kwang-Seon
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.36 no.7B
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    • pp.858-867
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    • 2011
  • The RFID(Radio-Frequency IDentification) systems have many security problem such as eavesdropping, a replay attack, location tracking and DoS(Denial of Service) attacks. Because RFID systems use radio-frequency. So research are being made to solve the problem of RFID systems, one of which is AES algorithm. This paper presents an authentication protocol using AES and one-time random number to secure other attacks like eavesdropping, a replay attack, location tracking, In addtion, RSMAP uses OTP(One-Time Pad) in order to safely transmit.

The efficiency of the quantum key distribution depends on the characteristics of the detector system (양자암호화 키 전송에서 검출기 특성에 따른 전송효율)

  • 조기현;강장원;윤선현
    • Korean Journal of Optics and Photonics
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    • v.12 no.2
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    • pp.71-76
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    • 2001
  • We studied quantum cryptography based on the quantum nature of light. We must reduce the intensity of the light pulse to the single photon regime for quantum cryptographic communication. Considering the noise and the quantum efficiency of the detector, however, we have to fmd a criterion for which we are able to distinguish the error caused by eavesdropping from other system noises. By changing the bias voltage of the detector and the threshold of the signal voltage, we find the safe region for which we can distribute the quantum key with positive proof of no-eavesdropping. The quantum key we used is a four state quantum key (BB84). BB84).

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