An Approach Towards Physics Informed Lung Ultrasound Image Scoring Neural Network for Diagnostic Assistance in COVID-19
Mahesh Raveendranatha Panicker, Yale Tung Chen, Gayathri M,, Madhavanunni A N, Kiran Vishnu Narayan, C Kesavadas, A P Vinod

TL;DR
This paper introduces LUSNet, a neural network that uses physics-based acoustic features and U-net architecture to classify COVID-19 lung ultrasound images into severity levels, achieving high accuracy and aiding diagnosis.
Contribution
The work presents a novel physics-informed feature extraction method combined with a U-net based neural network for automatic COVID-19 lung severity classification.
Findings
Achieved 97% accuracy, 93% sensitivity, 98% specificity in classification.
Physics-based features improve neural network performance with limited and diverse datasets.
Method effectively tracks COVID-19 progression from infection to recovery.
Abstract
Ultrasound is fast becoming an inevitable diagnostic tool for regular and continuous monitoring of the lung with the recent outbreak of COVID-19. In this work, a novel approach is presented to extract acoustic propagation-based features to automatically highlight the region below pleura, which is an important landmark in lung ultrasound (LUS). Subsequently, a multichannel input formed by using the acoustic physics-based feature maps is fused to train a neural network, referred to as LUSNet, to classify the LUS images into five classes of varying severity of lung infection to track the progression of COVID-19. In order to ensure that the proposed approach is agnostic to the type of acquisition, the LUSNet, which consists of a U-net architecture is trained in an unsupervised manner with the acoustic feature maps to ensure that the encoder-decoder architecture is learning features in the…
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Taxonomy
TopicsCOVID-19 diagnosis using AI · Ultrasound in Clinical Applications · Phonocardiography and Auscultation Techniques
MethodsConcatenated Skip Connection · Max Pooling · Convolution · *Communicated@Fast*How Do I Communicate to Expedia? · U-Net
