Convolutional Neural Networks for Predictive Modeling of Lung Disease

Liang, Yingbin, Liu, Xiqing, Xia, Haohao, Cang, Yiru, Zheng, Zitao, Yang, Yuanfang

arXiv.org Artificial Intelligence 

In this paper, Pro-HRnet-CNN, an innovative model combining HRNet and void-convolution techniques, is proposed for disease prediction under lung imaging. Through the experimental comparison on the authoritative LIDC-IDRI dataset, we found that compared with the traditional ResNet-50, Pro-HRnet-CNN showed better performance in the feature extraction and recognition of small-size nodules, significantly improving the detection accuracy. Particularly within the domain of detecting smaller targets, the model has exhibited a remarkable enhancement in accuracy, thereby pioneering an innovative avenue for the early identification and prognostication of pulmonary conditions.

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