Enhanced Ultrasound Classification of Microemboli Using Convolutional Neural Network

Author:

Tafsast Abdelghani1ORCID,Khelalef Aziz1,Ferroudji Karim2,Hadjili Mohamed Laid3,Bouakaz Ayache4,Benoudjit Nabil1

Affiliation:

1. Laboratoire d’Automatique Avancée et d’Analyse des Systèmes, Université Batna 2, Batna, Algeria

2. Faculté des Sciences et Technologies, Département de Génie Electrique, Université LARBI Tebessi, Tebessa, Algeria

3. Ecole Supérieure d’Informatique, (HE2B-ESI), Brussels, Belgium

4. UMR Inserm U1253 Imagerie et cerveau, Université de Tours, Tours, France

Abstract

Classification of microemboli is important in predicting clinical complications. In this study, we suggest a deep learning-based approach using convolutional neural network (CNN) and backscattered radio-frequency (RF) signals for classifying microemboli. The RF signals are converted into two-dimensional (2D) spectrograms which are exploited as inputs for the CNN. To confirm the usefulness of RF ultrasound signals in the classification of microemboli, two in vitro setups are developed. For the two setups, a contrast agent consisting of microbubbles is used to imitate the acoustic behavior of gaseous microemboli. In order to imitate the acoustic behavior of solid microemboli, the tissue mimicking material surrounding the tube is used for the first setup. However, for the second setup, a Doppler fluid containing particles with scattering characteristics comparable to the red blood cells is used. Results have shown that the suggested approach achieved better classification rates compared to the results obtained in previous studies.

Publisher

World Scientific Pub Co Pte Ltd

Subject

Computer Science (miscellaneous),Computer Science (miscellaneous)

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