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Evolution of Artificial Intelligence in Bone Fracture Detection

机译:人工智能在骨折检测中的演进

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摘要

The objective of the paper is to present the techniques of artificial intelligence based on deep learning that can be applied to detect fractures in bones on x-rays. The paper comprises of discussions of various entities. Initially, there is a discussion on data formulation and processing. Following which, distinguished image processing techniques are presented for fracture detection. Later, there is an analysis of conventional and current neural network methodologies for fracture detection techniques. Furthermore, there is a comparative analysis for the same. Finally, in the end, a discussion is presented in the paper regarding problems and challenges confronted by researchers for fracture detection. The study shows deep learning techniques provide more accuracy in the diagnosis than the conventional methods in fracture detection on x-rays. The paper leads to a path for the researchers to deal with difficulties and issues encountered with the fracture detection on x-rays while using deep learning techniques.
机译:本文的目的是介绍基于深度学习的人工智能技术,该技术可用于检测 X 射线上的骨骼骨折。本文件包括对各实体的讨论。首先,讨论的是数据的制定和处理。随后,介绍了用于断裂检测的区分图像处理技术。稍后,分析了用于骨折检测技术的传统和当前神经网络方法。此外,还有相同的比较分析。最后,本文讨论了研究人员在骨折检测方面面临的问题和挑战。该研究表明,深度学习技术在X射线骨折检测方面比传统方法提供了更高的诊断准确性。这篇论文为研究人员提供了一条途径,可以在使用深度学习技术的同时处理X射线骨折检测中遇到的困难和问题。

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