Detection of Lung Opacity and Treatment Planning with Three-Channel Fusion CNN Model.

Arab J Sci Eng

Department of Computer Technologies, Elmadağ Vocational School, Ankara University, 06780 Ankara, Turkey.

Published: April 2023

AI Article Synopsis

  • * A study employs a three-channel fusion CNN model for detecting lung opacity using a balanced dataset from public resources, integrating MobileNetV2, InceptionV3, and VGG19 architectures alongside ResNet for feature transfer.
  • * The proposed deep learning method is not only straightforward to implement but also offers significant cost and time benefits for physicians, achieving high accuracy rates of up to 92.52% for multiple classification classes.

Article Abstract

Lung opacities are extremely important for physicians to monitor and can have irreversible consequences for patients if misdiagnosed or confused with other findings. Therefore, long-term monitoring of the regions of lung opacity is recommended by physicians. Tracking the regional dimensions of images and classifying differences from other lung cases can provide significant ease to physicians. Deep learning methods can be easily used for the detection, classification, and segmentation of lung opacity. In this study, a three-channel fusion CNN model is applied to effectively detect lung opacity on a balanced dataset compiled from public datasets. The MobileNetV2 architecture is used in the first channel, the InceptionV3 model in the second channel, and the VGG19 architecture in the third channel. The ResNet architecture is used for feature transfer from the previous layer to the current layer. In addition to being easy to implement, the proposed approach can also provide significant cost and time advantages to physicians. Our accuracy values for two, three, four, and five classes on the newly compiled dataset for lung opacity classifications are found to be 92.52%, 92.44%, 87.12%, and 91.71%, respectively.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10103673PMC
http://dx.doi.org/10.1007/s13369-023-07843-4DOI Listing

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