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Intelligent Segmentation of Medical Images Using Fuzzy Bitplane Thresholding

机译:基于模糊位平面阈值的医学图像智能分割

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The performance of assessment in medical image segmentation is highly correlated with the extraction of anatomic structures from them, and the major task is how to separate the regions of interests from the background and soft tissues successfully. This paper proposes a fuzzy logic based bitplane method to automatically segment the background of images and to locate the region of interest of medical images. This segmentation algorithm consists of three steps, namely identification, rule firing, and inference. In the first step, we begin by identifying the bitplanes that represent the lungs clearly. For this purpose, the intensity value of a pixel is separated into bitplanes. In the second step, the triple signum function assigns an optimum threshold based on the grayscale values for the anatomical structure present in the medical images. Fuzzy rules are formed based on the available bitplanes to form the membership table and are stored in a knowledge base. Finally, rules are fired to assign final segmentation values through the inference process. The proposed new metrics are used to measure the accuracy of the segmentation method. From the analysis, it is observed that the proposed metrics are more suitable for the estimation of segmentation accuracy. The results obtained from this work show that the proposed method performs segmentation effectively for the different classes of medical images.
机译:医学图像分割中评估的性能与从中提取解剖结构高度相关,而主要任务是如何成功地将感兴趣区域与背景和软组织分离。本文提出了一种基于模糊逻辑的位平面方法来自动分割图像背景并定位医学图像的关注区域。该分割算法包括三个步骤,即识别,规则触发和推理。第一步,我们首先确定清楚代表肺的位平面。为此,将像素的强度值分离为位平面。在第二步中,三重信号函数基于医学图像中存在的解剖结构的灰度值分配最佳阈值。基于可用位平面形成模糊规则以形成成员资格表并将其存储在知识库中。最后,触发规则以通过推理过程分配最终的细分值。拟议的新指标用于衡量分割方法的准确性。从分析中可以看出,所提出的度量标准更适合于分割精度的估计。从这项工作中获得的结果表明,所提出的方法可以有效地对不同类别的医学图像进行分割。

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