Search Results for author: Hadi Ghauch

Found 9 papers, 0 papers with code

CAN-BERT do it? Controller Area Network Intrusion Detection System based on BERT Language Model

no code implementations17 Oct 2022 Natasha Alkhatib, Maria Mushtaq, Hadi Ghauch, Jean-Luc Danger

Due to the rising number of sophisticated customer functionalities, electronic control units (ECUs) are increasingly integrated into modern automotive systems.

Anomaly Detection Language Modelling +1

Unsupervised Network Intrusion Detection System for AVTP in Automotive Ethernet Networks

no code implementations31 Jan 2022 Natasha Alkhatib, Maria Mushtaq, Hadi Ghauch, Jean-Luc Danger

Hence, in this paper, we compare the performance of different unsupervised deep and machine learning based anomaly detection algorithms, for real-time detection of anomalies on the Audio Video Transport Protocol (AVTP), an application layer protocol implemented in the recent Automotive Ethernet based in-vehicle network.

Anomaly Detection BIG-bench Machine Learning +1

SOME/IP Intrusion Detection using Deep Learning-based Sequential Models in Automotive Ethernet Networks

no code implementations4 Aug 2021 Natasha Alkhatib, Hadi Ghauch, Jean-Luc Danger

Intrusion Detection Systems are widely used to detect cyberattacks, especially on protocols vulnerable to hacking attacks such as SOME/IP.

Intrusion Detection

Dual Optimization for Kolmogorov Model Learning Using Enhanced Gradient Descent

no code implementations11 Jul 2021 Qiyou Duan, Hadi Ghauch, Taejoon Kim

To make our method more scalable to large-dimensional problems, we propose two acceleration schemes, namely, the eigenvalue decomposition (EVD) elimination strategy and an approximate EVD algorithm.

Enhanced Beam Alignment for Millimeter Wave MIMO Systems: A Kolmogorov Model

no code implementations27 Jul 2020 Qiyou Duan, Taejoon Kim, Hadi Ghauch

We present an enhancement to the problem of beam alignment in millimeter wave (mmWave) multiple-input multiple-output (MIMO) systems, based on a modification of the machine learning-based criterion, called Kolmogorov model (KM), previously applied to the beam alignment problem.

Two-sample testing

A Hybrid Model-based and Data-driven Approach to Spectrum Sharing in mmWave Cellular Networks

no code implementations19 Mar 2020 Hossein S. Ghadikolaei, Hadi Ghauch, Gabor Fodor, Mikael Skoglund, Carlo Fischione

Inter-operator spectrum sharing in millimeter-wave bands has the potential of substantially increasing the spectrum utilization and providing a larger bandwidth to individual user equipment at the expense of increasing inter-operator interference.

Learning Kolmogorov Models for Binary Random Variables

no code implementations6 Jun 2018 Hadi Ghauch, Mikael Skoglund, Hossein Shokri-Ghadikolaei, Carlo Fischione, Ali H. Sayed

We summarize our recent findings, where we proposed a framework for learning a Kolmogorov model, for a collection of binary random variables.

BIG-bench Machine Learning Interpretable Machine Learning +1

A Unified Framework for Training Neural Networks

no code implementations23 May 2018 Hadi Ghauch, Hossein Shokri-Ghadikolaei, Carlo Fischione, Mikael Skoglund

The lack of mathematical tractability of Deep Neural Networks (DNNs) has hindered progress towards having a unified convergence analysis of training algorithms, in the general setting.

General Classification regression

Learning-Based Resource Allocation Scheme for TDD-Based CRAN System

no code implementations29 Aug 2016 Sahar Imtiaz, Hadi Ghauch, M. Mahboob Ur Rahman, George Koudouridis, James Gross

Since, the trajectory of movement for high-mobility users is predictable; therefore, fairly accurate position estimates for those users can be obtained, and can be used for resource allocation to serve the considered users.

Position

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