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Feature Enhancement in Medical Ultrasound Videos Using Multifractal and Contrast Adaptive Histogram Equalization Techniques

机译:利用多重分形和对比度自适应直方图均衡技术增强医学超声视频的特征

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Speckle noise reduction algorithms are extensively used in the field of ultrasound image analysis with the aim of improving image quality and diagnostic accuracy. However, significant speckle filtering induces blurring, and this would require enhancement of features and fine details. In this paper, we consider the applications of multifractal features and contrast limit adaptive histogram equalization method for improving texture features, contrast, resolvable details, and image structures to which the human visual system is sensitive in ultrasound video frames. The experimental analysis considered various types of ultrasound video scans of the human anatomy e.g. breast cancer, uterine fibroids, transvaginal ovary, ovarian cyst, heart, and chest pleural effusion scan. Subjective assessments by four radiologists and experimental validation using three quality metrics clearly indicate that the proposed algorithm is able to reduce speckle effectively while preserving essential information and enhancing the overall visual quality.
机译:斑点噪声减少算法广泛用于超声图像分析领域,以提高图像质量和诊断准确性。但是,大量的斑点过滤会引起模糊,这将需要增强特征和细节。在本文中,我们考虑了多重分形特征和对比度极限自适应直方图均衡化方法在改善超声视频帧中人类视觉系统敏感的纹理特征,对比度,可分辨细节和图像结构方面的应用。实验分析考虑了人体解剖学的各种类型的超声视频扫描,例如乳腺癌,子宫肌瘤,经阴道卵巢,卵巢囊肿,心脏和胸腔积液扫描。四位放射科医生的主观评估和使用三项质量指标的实验验证清楚地表明,所提出的算法能够有效减少斑点,同时保留必要的信息并提高整体视觉质量。

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