Dominique Ginhac
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Recent Grants
Grant: Close
Event camera for the perception of fast objects around Autonomous vehicles – CERBERE
Open Date: 2022-01-20
Close Date: 2026-01-19
Grant: Close
Material communicating with the BIM (McBIM) – McBIM
Open Date: 2017-09-20
Close Date: 2021-03-19
Grant: Close
ACHIEVE - AdvanCed HW/SW Components for Integrated/Embedded Vision SystEms and the Vision-Enabled Internet of Things
Open Date: 2017-01-01
Close Date: 2021-01-01
Grant: Close
EXIST - EXtending Image Sensing Technologies
Open Date: 2015-01-01
Close Date: 2018-01-01
Articles (11)
A Retinal Oct-Angiography and Cardiovascular STAtus (RASTA) Dataset of Swept-Source Microvascular Imaging for Cardiovascular Risk Assessment
In the context of exponential demographic growth, the imbalance between human resources and public health problems impels us to envision other solutions to the difficulties faced in the diagnosis, prevention, and large-scale management of the most common diseases. Cardiovascular diseases represent the leading cause of morbidity and mortality worldwide. A large-scale screening program would make it possible to promptly identify patients with high cardiovascular risk in order to manage them adequately. Optical coherence tomography angiography (OCT-A), as a window into the state of the cardiovascular system, is a rapid, reliable, and reproducible imaging examination that enables the prompt identification of at-risk patients through the use of automated classification models. One challenge that limits the development of computer-aided diagnostic programs is the small number of open-source OCT-A acquisitions available. To facilitate the development of such models, we have assembled a set of images of the retinal microvascular system from 499 patients. It consists of 814 angiocubes as well as 2005 en face images. Angiocubes were captured with a swept-source OCT-A device of patients with varying overall cardiovascular risk. To the best of our knowledge, our dataset, Retinal oct-Angiography and cardiovascular STAtus (RASTA), is the only publicly available dataset comprising such a variety of images from healthy and at-risk patients. This dataset will enable the development of generalizable models for screening cardiovascular diseases from OCT-A retinal images.
Year:
2023
Cross-Layer Federated Learning for Lightweight IoT Intrusion Detection Systems
With the proliferation of IoT devices, ensuring the security and privacy of these devices and their associated data has become a critical challenge. In this paper, we propose a federated sampling and lightweight intrusion-detection system for IoT networks that use K-meansfor sampling network traffic and identifying anomalies in a semi-supervised way. The system is designed to preserve data privacy by performing local clustering on each device and sharing only summary statistics with a central aggregator. The proposed system is particularly suitable for resource-constrained IoT devices such as sensors with limited computational and storage capabilities. We evaluate the system’s performance using the publicly available NSL-KDD dataset. Our experiments and simulations demonstrate the effectiveness and efficiency of the proposed intrusion-detection system, highlighting the trade-offs between precision and recall when sharing statistics between workers and the coordinator. Notably, our experiments show that the proposed federated IDS can increase the true-positive rate up to 10% when the workers and the coordinator collaborate.
Year:
2023
Collaborators (9)
Matthias Ivantsits
Charité - Universitätsmedizin Berlin
Olivier Chevallier
-
Teresa Correia
Visiting Lecturer
King's College London
Joseph Azar
Marie and Louis Pasteur University
Marleen de Bruijne
Professor
Erasmus MC
Christophe Guyeux
Université de Franche-Comté
Charles Guenancia
Full Professor of Medicine
Centre Hospitalier Universitaire Vaudois
Michel Salomon
Associate professor
Université de Franche-Comté
Louis Arnould
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