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Prediction Model Using Reinforcement Deep Learning Technique for Osteoarthritis Disease Diagnosis 被引量:1

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摘要 Osteoarthritis is the most common class of arthritis that involves tears down the soft cartilage between the joints of the knee.The regeneration of this cartilage tissue is not possible,and thus physicians typically suggest therapeutic measures to prevent further deterioration over time.Normally,bringing about joint replacement is a remedial course of action.Expose itself in joint pain recog-nized with a normal X-ray.Deep learning plays a vital role in predicting the early stages of osteoarthritis by using the MRI pictures of muscles of the knee muscle.It can be used to accurately measure the shape and texture of biological structures can be measured consistently from X-ray images.Moreover,deep learning-based computation can be used to design framework to predict whether a given patient will develop osteoarthritis.Such a framework can identify clear biochemical changes in the focal point of ligaments of the knees of patients who have exhibit pre-indications in standard imaging.This study proposes framework to identify cases of osteoarthritis by using deep learning and reinforcement learning.It can be used as a clinical mechanism to predict the occurrence of osteoarthritis so that patients can benefit from early intervention.
出处 《Computer Systems Science & Engineering》 SCIE EI 2022年第7期257-269,共13页 计算机系统科学与工程(英文)
基金 supported by King Khalid University,Abha,Kingdom of Saudi Arabia through a General Research Project under Grant Number GRP 119/42.
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