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2019-05-01
Lu, X., Wan, X., Xiao, L., Tang, Y., Zhuang, W..  2018.  Learning-Based Rogue Edge Detection in VANETs with Ambient Radio Signals. 2018 IEEE International Conference on Communications (ICC). :1-6.
Edge computing for mobile devices in vehicular ad hoc networks (VANETs) has to address rogue edge attacks, in which a rogue edge node claims to be the serving edge in the vehicle to steal user secrets and help launch other attacks such as man-in-the-middle attacks. Rogue edge detection in VANETs is more challenging than the spoofing detection in indoor wireless networks due to the high mobility of onboard units (OBUs) and the large-scale network infrastructure with roadside units (RSUs). In this paper, we propose a physical (PHY)- layer rogue edge detection scheme for VANETs according to the shared ambient radio signals observed during the same moving trace of the mobile device and the serving edge in the same vehicle. In this scheme, the edge node under test has to send the physical properties of the ambient radio signals, including the received signal strength indicator (RSSI) of the ambient signals with the corresponding source media access control (MAC) address during a given time slot. The mobile device can choose to compare the received ambient signal properties and its own record or apply the RSSI of the received signals to detect rogue edge attacks, and determines test threshold in the detection. We adopt a reinforcement learning technique to enable the mobile device to achieve the optimal detection policy in the dynamic VANET without being aware of the VANET model and the attack model. Simulation results show that the Q-learning based detection scheme can significantly reduce the detection error rate and increase the utility compared with existing schemes.
2018-05-16
Utama, K. D. B., Al-Ghazali, Q. M. R., Mahendra, L. I. B., Shidik, G. F..  2017.  Digital signature using MAC address based AES-128 and SHA-2 256-bit. 2017 International Seminar on Application for Technology of Information and Communication (iSemantic). :72–78.

Digital signatures now become a crucial requirement in communication and digital messaging. Digital messaging is information that is very vulnerable to be manipulated by irresponsible people. Digital signatures seek to maintain the two security aspects that cryptography aims, such as integrity and non-repudiation. This research aims to applied MAC address with AES-128 and SHA-2 256 bit for digital signature. The use of MAC address in AES-128 could improve the security of the digital signature because of its uniqueness in every computer which could randomize the traditional processes of AES. SHA-2 256-bit will provides real unique randomized strings with reasonable speed. As result the proposed digital signature able to implement and work perfectly in many platforms.

2017-05-19
Zhou, Mengyu, Sui, Kaixin, Ma, Minghua, Zhao, Youjian, Pei, Dan, Moscibroda, Thomas.  2016.  MobiCamp: A Campus-wide Testbed for Studying Mobile Physical Activities. Proceedings of the 3rd International on Workshop on Physical Analytics. :1–6.

Ubiquitous WiFi infrastructure and smart phones offer a great opportunity to study physical activities. In this paper, we present MobiCamp, a large-scale testbed for studying mobility-related activities of residents on a campus. MobiCamp consists of \textasciitilde2,700 APs, \textasciitilde95,000 smart phones, and an App with \textasciitilde2,300 opt-in volunteer users. More specifically, we capture how mobile users interact with different types of buildings, with other users, and with classroom courses, etc. To achieve this goal, we first obtain a relatively complete coverage of the users' mobility traces by utilizing four types of information from SNMP and by relaxing the location granularity to roughly at the room level. Then the popular App provides user attributes (grade, gender, etc.) and fine-grained behavior information (phone usages, course timetables, etc.) of the sampled population. These detailed mobile data is then correlated with the mobility traces from the SNMP to estimate the entire campus population's physical activities. We use two applications to show the power of MobiCamp.

2017-04-20
Lee, Kyungroul, Yeuk, Hyeungjun, Yim, Kangbin, Kim, Suhyun.  2016.  Analysis on Manipulation of the MAC Address and Consequent Security Threats. Proceedings of the 8th ACM CCS International Workshop on Managing Insider Security Threats. :113–117.

In this paper, we analyze manipulation methods of the MAC address and consequent security threats. The Ethernet MAC address is known to be unchanged, and so is highly considered as platform-unique information. For this reason, various services are researched using the MAC address. These kinds of services are organized with MAC address as plat- form identifier or a password, and such a diverse range of security threats are caused when the MAC address is manipulated. Therefore, here we research on manipulation methods for MAC address at different levels on a computing platform and highlight the security threats resulted from modification of the MAC address. In this paper, we introduce manipulation methods on the original MAC address stored in the EEPROM on NIC (Network Interface Card) as hardware- based MAC spoofing attack, which are unknown to be general approaches. This means that the related services should struggle to detect the falsification and the results of this paper have deep significance in most MAC address-based services.