利用图像处理机制预测和检测肺癌:综述

B. Ahmed
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引用次数: 5

摘要

如今,癌症已被认为是一种危险的疾病,许多人患有,尤其是肺癌。癌症是一种细胞生长迅速且异常的疾病,这就是为什么在某些情况下治疗它有些困难,但如果在最初阶段发现它是可以控制的。图像处理机制在预测和识别良性和恶性细胞中起着至关重要的作用,在生物医学领域广泛应用的分类器机制,如决策树(D-Tree)、a - nn、支持向量机(Support-Vector-Machine)和Naïve-Bayes分类器。这些分类器可用于对正常和不寻常的细胞进行分类。本研究旨在综述最著名的肺癌检测和预测的图像处理机制。简要介绍了通过图像采集、图像预处理(包括噪声消除和增强、分割、特征提取和二值化)等图像处理阶段提出有效系统的主要步骤。在文献中,几位研究人员的工作已经被回顾。本文对不同的研究文献进行了比较,这些文献提出了各种识别和估计肺癌结节的模型。基于图像处理机制,精度和分类器的比较,在每个审查的研究论文中使用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lung Cancer Prediction and Detection Using Image Processing Mechanisms: An Overview
Nowadays, cancer has counted as a hazardous disease that many people suffered from especially Lung-Cancer. Cancer is the disease that cell has grown rapidly and abnormally that is why treating it is somehow tough in some cases but it can be controlled if it is detected in the initial stage. Image Processing Mechanisms have a vital role in predicting and recognizing both benign and malignant cells with the help of classifier mechanisms such as Decision-Tree (D-Tree), A-NN, Support-Vector-Machine, and Naïve-Bayes classifier which are widely utilized in the biomedical field. These classifiers are available to classify the usual and unusual cells. This study aims to review the most well-known Image Processing Mechanisms for Lung-Cancer Detection and Prediction. Brief information about the main steps of proposing an effective system by using Image Processing stages like Image Acquisition, Pre-processing of the image which includes noise elimination and enhancement, Segmentation, Extracting Feature, and Binarization had been demonstrated. In the literature, several researchers' work had been reviewed. A comparison had been done among various reviewed research papers that proposed various models for recognizing and estimating the Lung-Cancer nodule. The comparison based on the Image Processing Mechanisms, accuracy, and classifier used in each reviewed research paper.
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