首页> 外文期刊>International Journal of Pattern Recognition and Artificial Intelligence >SUSPICIOUS REGION DETECTION AND IDENTIFICATION BASED ON INTRA-/INTER-FRAME ANALYSES AND FUZZY CLASSIFIER FOR BREAST MAGNETIC RESONANCE IMAGING
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SUSPICIOUS REGION DETECTION AND IDENTIFICATION BASED ON INTRA-/INTER-FRAME ANALYSES AND FUZZY CLASSIFIER FOR BREAST MAGNETIC RESONANCE IMAGING

机译:基于帧内/帧间分析和模糊分类器的核磁共振成像疑似区域识别

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摘要

Breast cancer is one of the leading causes of death from cancer in Taiwan. In this paper, we propose a feature-based scheme composed of preprocessing, feature extraction and a fuzzy classifier for suspicious region detection and identification. In the preprocessing stage, we first extract regions of interest and then coarsely determine suspicious regions via candidate screening. Some features are extracted based on intra-slice, texture and inter-slice analysis techniques for suspicious region identification. Intra-slice analysis evaluates the intensity and size of suspicious regions. To find a precise region, we propose a region growing algorithm based on ellipse-based approximation. In texture analysis, some texture cues are extracted from spatial and wavelet domains and integrated as a combined texture feature by using a neural network. Inter-slice analysis is based on the continuity characteristic and consistency of a suspicious region's size; the objective is to verify the static behavior of suspicious regions. Several magnetic resonance imaging (MRI) cases are utilized to evaluate the performance of the proposed scheme. Experimental results demonstrate that our scheme can not only extract regions of interest but also identify tumors well from magnetic resonance images.
机译:乳腺癌是台湾死于癌症的主要原因之一。本文提出了一种基于特征的方案,该方案由预处理,特征提取和模糊分类器组成,用于可疑区域的检测和识别。在预处理阶段,我们首先提取感兴趣的区域,然后通过候选筛选粗略地确定可疑区域。基于切片内,纹理和切片间分析技术提取一些特征以用于可疑区域识别。切片内分析评估可疑区域的强度和大小。为了找到精确的区域,我们提出了一种基于椭圆近似的区域增长算法。在纹理分析中,从空间域和小波域中提取一些纹理提示,并使用神经网络将其集成为组合的纹理特征。切片间分析基于可疑区域大小的连续性和一致性;目的是验证可疑区域的静态行为。利用几个磁共振成像(MRI)案例来评估所提出方案的性能。实验结果表明,我们的方案不仅可以提取感兴趣的区域,而且可以从磁共振图像中很好地识别肿瘤。

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