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A Study on Automated Grading System for Early Prediction of Rheumatoid Arthritis

机译:类风湿性关节炎早期预测自动分级系统研究

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The medical diagnosis method is complex and consisting of a lot of vagueness due to imprecision and subjectivity, Magnetic resonance images have a great deal of resonance with this complexity due to its insightful nature. As rheumatoid arthritis is a chronic inflammatory condition, the modality of magnetic resonance imaging plays an important role in delivering in-depth research. Through gathering vast quantities of magnetic resonance data patterns, the early onset of rheumatoid arthritis can be studied. Artificial intelligence approaches have been used to help physicians in addressing these challenges and to make knowledgeable and accurate choices in the diagnosis of diseases. A variety of papers and diverse methods have been written to resolve concerns and problems. Inclusion and exclusion criteria are classified and evaluated to demonstrate the effect of artificial intelligence to enhance the diagnosis of the disease. The paper further explores the common classification methods for the diagnosis of rheumatoid arthritis. This analysis aims to explain new advances to increase the rate of identification and diagnosis of rheumatoid arthritis.
机译:由于不确定和主观性,医学诊断方法复杂,包括许多模糊性,由于其富有洞察力的性质,磁共振图像具有很大的共鸣。随着类风湿性关节炎是一种慢性炎症条件,磁共振成像的模型在提供深入研究方面发挥着重要作用。通过聚集大量磁共振数据模式,可以研究类风湿性关节炎的早期发作。人工智能方法已被用来帮助医生解决这些挑战,并在疾病的诊断中做出知识渊博和准确的选择。已经编写了各种论文和多样化的方法来解决问题和问题。包含和排除标准分类和评估,以证明人工智能提高疾病诊断的影响。本文进一步探讨了诊断类风湿性关节炎的常见分类方法。该分析旨在解释新进步,以提高类风湿性关节炎的鉴定和诊断速度。

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