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Sensitivity Analysis on Effect of Biomechanical Factors for Classifying Vertebral Deformities

机译:椎体畸形生物力学因素效果的敏感性分析

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Classification of degenerations prevalent in human population is considered to be a crucial task which is performed by a physician or the radiologist. With numerous data being generated and innumerable features getting extracted, identification of normal and pathological case becomes a daunting process. Data learning techniques provide valuable resources in automating the entire procedure easing the burden on the consultant physician. However, since the inception of various machine learning techniques, feasible solution at the cost of computational expense needs to be evaluated. Factors considered for classification play a significant role in defining the accuracy of a system. The current study aims at demonstrating the trade off achieved at the expense of accuracy amongst the number of features and instances. In this article, vertebral column dataset from UCI repository is used for training and testing. Effect of various data pre-processing techniques are presented alongside an extensive study on feature selection method. For validation, breast tissue dataset from the former repository is considered and analyzed.
机译:人口中普遍存在的退化的分类被认为是由医生或放射科学表达的重要任务。由于产生了许多数据,并且提取了无数的特征,识别正常和病理情况成为令人生畏的过程。数据学习技术提供了有价值的资源,使整个程序缓解顾问医师的负担。然而,由于各种机器学习技术的初始,因此需要评估计算费用成本的可行解决方案。考虑分类的因素在定义系统的准确性方面发挥着重要作用。目前的研究旨在展示以特征和实例的数量为代价的牺牲牺牲所取得的贸易。在本文中,UCI存储库的椎体列数据集用于培训和测试。各种数据预处理技术的效果在特征选择方法的广泛研究旁边呈现。对于验证,考虑和分析来自前者存储库的乳房组织数据集。

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