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A Comparative study and analysis of Contrast Enhancement algorithms for MRI Brain Image sequences

机译:MRI脑图像序列对比增强算法的比较研究与分析

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Brain tumor extraction is a challenging task in medical imaging research because its structure is complicated and can be diagnosed appropriately only by expert radiologists. Magnetic Resonance Imaging (MRI) is a commonly used modality to effectively diagnose, treat and monitor brain disease. Contrast enhancement is an important pre-processing step in which perceptual information is improved to obtain detailed information in the image. The motivation of this paper is to perform a comparative study and analysis of five different contrast enhancement algorithms such as Histogram Equalization which is a global contrast enhancement method, Adaptive histogram equalization perform local contrast enhancement by transforming each pixel based on the histogram of surrounding pixels. Morphological enhancement, Morphological filtering performed at single scale and at multiple scales of structuring element and to identify the suitability of a particular algorithm for each type of MR sequences for trans-axial orientation. Analysis was performed on the international database collected from Whole brain Atlas. The performance was evaluated using the standard measures Root Mean Square Error (RMSE), Peak Signal to Noise Ratio (PSNR), and Tenengrad Measure (TGD).
机译:脑肿瘤提取是医学成像研究中的一个具有挑战性的任务,因为它的结构是复杂的,并且可以仅由专家放射科医师进行适当的诊断。磁共振成像(MRI)是有效诊断,治疗和监测脑疾病的常用模态。对比度增强是一种重要的预处理步骤,其中改善了感知信息以获得图像中的详细信息。本文的动机是对五种不同的对比增强算法进行比较研究和分析,例如直方图均衡,这是全局对比增强方法,自适应直方图均衡通过基于周围像素的直方图转换每个像素来执行局部对比度增强。形态学增强,在单尺度和尺度的多个结构元件中进行的形态学过滤,并识别针对跨轴向取向的每种类型MR序列的特定算法的适用性。对从全脑地图集收集的国际数据库进行分析。使用标准测量的均方误差(RMSE),峰值信号(PSNR)和Tenengrad测量(TGD)进行评估性能。

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