Pattern Recognition in Medical Images Through Innovative Edge Detection with Robert's Method

P. Simangunsong, Paska Marto Hasugian
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Abstract

This research introduces an innovative approach for pattern recognition in medical images through the application of Robert's edge detection method. Pattern recognition in medical images has great significance in disease diagnosis and patient care management. Edge detection is an important stage in image processing which aims to determine the boundaries of objects in the image. Robert's edge detection method is one of the classic methods that has been used in image processing. However, improving edge detection performance is needed to improve accuracy in pattern recognition in medical images. In this study, we propose a modified variation of Robert's method to increase the accuracy in finding edges in medical images. The proposed innovative approach is tested using a large and diverse medical image dataset. Evaluation is carried out by comparing the edge detection results using the conventional Robert method with the results using the proposed modified method. Quantitative analysis is carried out to measure the performance improvements achieved. Experimental results show that the modified Robert edge detection method produces significant improvements in precision and accuracy in finding edges in medical images. These results indicate that the proposed innovative approach has the potential to improve pattern recognition in medical images and can make valuable contributions in the diagnosis and management of diseases.
通过罗伯特方法的创新边缘检测实现医学图像的模式识别
这项研究通过应用罗伯特边缘检测法,介绍了一种创新的医学图像模式识别方法。医学图像中的模式识别在疾病诊断和病人护理管理中具有重要意义。边缘检测是图像处理中的一个重要阶段,旨在确定图像中物体的边界。罗伯特边缘检测法是图像处理中常用的经典方法之一。然而,要提高医学图像模式识别的准确性,就必须改进边缘检测性能。在本研究中,我们提出了一种罗伯特方法的改进变体,以提高在医学图像中发现边缘的准确性。我们使用一个大型、多样化的医学图像数据集对所提出的创新方法进行了测试。通过比较使用传统罗伯特方法和使用所提出的改进方法的边缘检测结果来进行评估。通过定量分析来衡量所取得的性能改进。实验结果表明,修改后的罗伯特边缘检测方法在医疗图像中寻找边缘的精确度和准确度方面都有显著提高。这些结果表明,所提出的创新方法具有改进医学图像模式识别的潜力,可为疾病的诊断和管理做出宝贵贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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