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文献详情 >Predicting Lumbar Spondylolist... 收藏

Predicting Lumbar Spondylolisthesis: A Hybrid Deep Learning Approach

作     者:Deepika Saravagi Shweta Agrawal Manisha Saravagi Sanjiv K.Jain Bhisham Sharma Abolfazl Mehbodniya Subrata Chowdhury Julian L.Webber 

作者机构:Department of Computer ApplicationSAGE UniversityIndore452012Madhya PradeshIndia IACSAGE UniversityIndore452012Madhya PradeshIndia Shivang College of PhysiotherapyRatlam4570021Madhya PradeshIndia Medi-Caps UniversityRau IndoreMadhya Pradesh453331India Chitkara University Institute of Engineering and TechnologyChitkara UniversityPunjabIndia Department of Electronics and Communication EngineeringKuwait College of Science and Technology(KCST)DohaKuwait Department of Computer Science and EngineeringSreenivasa Institute of Technology and Management StudiesChittoorAndra PradeshIndia 

出 版 物:《Intelligent Automation & Soft Computing》 (智能自动化与软计算(英文))

年 卷 期:2023年第37卷第8期

页      面:2133-2151页

核心收录:

学科分类:12[管理学] 1201[管理学-管理科学与工程(可授管理学、工学学位)] 081104[工学-模式识别与智能系统] 08[工学] 0835[工学-软件工程] 0811[工学-控制科学与工程] 0812[工学-计算机科学与技术(可授工学、理学学位)] 

主  题:Gradio lumbar spondylolisthesis transfer learning VGG16 machine learning deep learning 

摘      要:Spondylolisthesis is a chronic disease,and a timely diagnosis of it may help in avoiding *** identification in x-ray radiographs is very *** the feature extraction tool in VGG16 has improved the classification *** the fully connected layers of VGG16 are not efficient at capturing the positional structure of an object in *** network(CapsNet)works with capsules(neuron clusters)rather than a single neuron to grasp the properties of the provided image to match the *** this study,an integrated model that is a combination of VGG16 and CapsNet(S-VCNet)is *** the model,VGG16 is used as a feature *** feature extraction,the output is fed to CapsNet for disease identification.A private dataset is used that contains 466 X-ray radiographs,including 186 images displaying a spine with spondylolisthesis and 280 images depicting a normal *** suggested model is the first step towards developing a web-based radiological diagnosis tool that can be utilized in outpatient clinics where there are not enough qualified medical *** results demonstrate that the developed model outperformed the other models that are used for lumbar spondylolisthesis diagnosis with 98%*** the performance check,the model has been successfully deployed on the Gradio web app platform to produce the outcome in less than 20 s.

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