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Yasin Yilmaz

Researcher at University of South Florida

Publications -  123
Citations -  2038

Yasin Yilmaz is an academic researcher from University of South Florida. The author has contributed to research in topics: Computer science & Anomaly detection. The author has an hindex of 18, co-authored 87 publications receiving 1128 citations. Previous affiliations of Yasin Yilmaz include University of Michigan & Columbia University.

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Quickest Detection of False Data Injection Attack in Wide-Area Smart Grids

TL;DR: A sequential detector based on the generalized likelihood ratio is proposed to be robust to a variety of attacking strategies, and load situations in the power system, and its computational complexity linearly scales with the number of meters.
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Deep Reinforcement Learning for Intelligent Transportation Systems: A Survey

TL;DR: This survey extensively summarizes existing works in this field by categorizing them with respect to application types, control models and studied algorithms and discusses the challenges and open questions regarding deep RL-based transportation applications.
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Distributed Quickest Detection of Cyber-Attacks in Smart Grid

TL;DR: Online detection of false data injection attacks and denial of service attacks in the smart grid is studied and a novel event-based sampling scheme called level-crossing sampling with hysteresis is proposed that is shown to exhibit significant advantages compared with the conventional uniform-in-time sampling scheme.
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Cooperative Sequential Spectrum Sensing Based on Level-Triggered Sampling

TL;DR: Simulation results show that the proposed scheme, using even 1 bit, can outperform its uniform sampling counterpart that uses infinite number of bits under changing target error probabilities, SNR values, and number of SUs.
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Real-Time Detection of Hybrid and Stealthy Cyber-Attacks in Smart Grid

TL;DR: In this paper, a robust online detection algorithm for (possibly combined) false data injection and jamming attacks, that also provides online estimates of the unknown and time-varying attack parameters and recovered state estimates.