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A new filter bank algorithm for enhancement of early signs of ischemic stroke in brain CT images

机译:一种新的筛选银行算法,用于增强脑CT图像中缺血性脑卒中早期迹象

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Brain CT images are very useful in diagnosis of cerebrovascular accidents (CVA). These images contain too many information. But most of the times, provided information is contaminated by noise and suffer from poor contrast. On the other hand, there are certain parts of the brain image that is really important to radiologist, while other image details are more or less confusing. This sparks the need for customized enhancement of brain CT images. Translation-invariant wavelet transform is being widely used in most of image processing tasks including image enhancement. This transform is calculated with a filter bank algorithm, called algorithme àtrous. In this paper we propose a filter bank structure similar to algorithme àtrous. This structure is more redundant and offers greater selectivity and flexibility to enhance desired features of brain CT images.
机译:脑CT图像在脑血管意外(CVA)的诊断中非常有用。这些图像包含太多信息。但大多数时候,提供的信息被噪音污染并遭受较差的对比度。另一方面,存在对放射科学家非常重要的脑图像的某些部分,而其他图像细节或多或少混淆。这引起了需要定制脑CT图像的增强。翻译 - 不变小波变换在大多数图像处理任务中被广泛使用,包括图像增强。使用滤波器组算法计算此转换,称为算法。在本文中,我们提出了一种类似于算法的滤波器组结构。这种结构更冗余,并提供更大的选择性和灵活性,以增强脑CT图像的期望特征。

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