Picture for Mhafuzul Islam

Mhafuzul Islam

Improving the Environmental Perception of Autonomous Vehicles using Deep Learning-based Audio Classification

Sep 09, 2022
Figure 1 for Improving the Environmental Perception of Autonomous Vehicles using Deep Learning-based Audio Classification
Figure 2 for Improving the Environmental Perception of Autonomous Vehicles using Deep Learning-based Audio Classification
Figure 3 for Improving the Environmental Perception of Autonomous Vehicles using Deep Learning-based Audio Classification
Figure 4 for Improving the Environmental Perception of Autonomous Vehicles using Deep Learning-based Audio Classification
Viaarxiv icon

Hybrid Quantum-Classical Neural Network for Cloud-supported In-Vehicle Cyberattack Detection

Oct 14, 2021
Figure 1 for Hybrid Quantum-Classical Neural Network for Cloud-supported In-Vehicle Cyberattack Detection
Figure 2 for Hybrid Quantum-Classical Neural Network for Cloud-supported In-Vehicle Cyberattack Detection
Figure 3 for Hybrid Quantum-Classical Neural Network for Cloud-supported In-Vehicle Cyberattack Detection
Figure 4 for Hybrid Quantum-Classical Neural Network for Cloud-supported In-Vehicle Cyberattack Detection
Viaarxiv icon

A Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles

Aug 19, 2021
Figure 1 for A Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Figure 2 for A Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Figure 3 for A Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Figure 4 for A Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Viaarxiv icon

Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles

Jun 05, 2021
Figure 1 for Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Figure 2 for Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Figure 3 for Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Figure 4 for Sensor Fusion-based GNSS Spoofing Attack Detection Framework for Autonomous Vehicles
Viaarxiv icon

Prediction-Based GNSS Spoofing Attack Detection for Autonomous Vehicles

Oct 16, 2020
Figure 1 for Prediction-Based GNSS Spoofing Attack Detection for Autonomous Vehicles
Figure 2 for Prediction-Based GNSS Spoofing Attack Detection for Autonomous Vehicles
Figure 3 for Prediction-Based GNSS Spoofing Attack Detection for Autonomous Vehicles
Figure 4 for Prediction-Based GNSS Spoofing Attack Detection for Autonomous Vehicles
Viaarxiv icon

Change Point Models for Real-time Cyber Attack Detection in Connected Vehicle Environment

Mar 05, 2020
Figure 1 for Change Point Models for Real-time Cyber Attack Detection in Connected Vehicle Environment
Figure 2 for Change Point Models for Real-time Cyber Attack Detection in Connected Vehicle Environment
Figure 3 for Change Point Models for Real-time Cyber Attack Detection in Connected Vehicle Environment
Figure 4 for Change Point Models for Real-time Cyber Attack Detection in Connected Vehicle Environment
Viaarxiv icon

Dynamic Error-bounded Lossy Compression (EBLC) to Reduce the Bandwidth Requirement for Real-time Vision-based Pedestrian Safety Applications

Jan 29, 2020
Figure 1 for Dynamic Error-bounded Lossy Compression (EBLC) to Reduce the Bandwidth Requirement for Real-time Vision-based Pedestrian Safety Applications
Figure 2 for Dynamic Error-bounded Lossy Compression (EBLC) to Reduce the Bandwidth Requirement for Real-time Vision-based Pedestrian Safety Applications
Figure 3 for Dynamic Error-bounded Lossy Compression (EBLC) to Reduce the Bandwidth Requirement for Real-time Vision-based Pedestrian Safety Applications
Figure 4 for Dynamic Error-bounded Lossy Compression (EBLC) to Reduce the Bandwidth Requirement for Real-time Vision-based Pedestrian Safety Applications
Viaarxiv icon

Vision-based Pedestrian Alert Safety System (PASS) for Signalized Intersections

Jul 02, 2019
Figure 1 for Vision-based Pedestrian Alert Safety System (PASS) for Signalized Intersections
Figure 2 for Vision-based Pedestrian Alert Safety System (PASS) for Signalized Intersections
Figure 3 for Vision-based Pedestrian Alert Safety System (PASS) for Signalized Intersections
Figure 4 for Vision-based Pedestrian Alert Safety System (PASS) for Signalized Intersections
Viaarxiv icon

In-Vehicle False Information Attack Detection and Mitigation Framework using Machine Learning and Software Defined Networking

Jun 24, 2019
Figure 1 for In-Vehicle False Information Attack Detection and Mitigation Framework using Machine Learning and Software Defined Networking
Figure 2 for In-Vehicle False Information Attack Detection and Mitigation Framework using Machine Learning and Software Defined Networking
Figure 3 for In-Vehicle False Information Attack Detection and Mitigation Framework using Machine Learning and Software Defined Networking
Figure 4 for In-Vehicle False Information Attack Detection and Mitigation Framework using Machine Learning and Software Defined Networking
Viaarxiv icon

Vision-based Navigation of Autonomous Vehicle in Roadway Environments with Unexpected Hazards

Sep 27, 2018
Figure 1 for Vision-based Navigation of Autonomous Vehicle in Roadway Environments with Unexpected Hazards
Figure 2 for Vision-based Navigation of Autonomous Vehicle in Roadway Environments with Unexpected Hazards
Figure 3 for Vision-based Navigation of Autonomous Vehicle in Roadway Environments with Unexpected Hazards
Figure 4 for Vision-based Navigation of Autonomous Vehicle in Roadway Environments with Unexpected Hazards
Viaarxiv icon