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A novel fuzzy curvature method for recognition of anterior forearm subcutaneous veins by thermal imaging

机译:一种通过热成像识别前臂皮下前静脉的模糊曲率新方法

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Anterior forearm recognition systems emerged in last decades to identify the vein systems and to decide the venipuncture sites. Basically, identification and also real-time visualization of the forearm veins are commonly accomplished by near-infrared (NIR) camera systems in the literature and also in applied medicine; however what we propose in this paper is easier and reliable alternative by thermal imaging. While identifying vein systems, the common drawback of visible spectrum and NIR camera solutions is lack of recognition possibility of rather hidden veins in the forearms. In other words, while these solutions are so useful for identification of superficial veins like Median Cubital and Median Antebrachial veins; yet they are not so efficient for subcutaneous veins like Cephalic vein. Therefore, we introduce a novel fuzzy directional curvature methodology to recognize the whole vein system of anterior forearm using infrared thermal (IR-T) imaging. Initially, the forearm image captured by a thermal camera is segmented by crisp 2-means and filtered by Gaussian high-pass filter for smoothing and contrast enhancement. Four types of directional curvatures, achieved by second order derivatives including vertical, horizontal and two diagonal directions, are reproduced as four single images from scratch. The images are subsequently fused by fuzzy curvature method to produce the final images representing the complete vein system in the forearm. The fusion procedure by fuzzy inference system as an expert system could be stated as the main novelty in infrared thermal imaging which is also so flexible thanks to the parametric design. The intelligent recognition system also provides various clear screenings of the whole vein system in forearms depending on the parameters selected, even though the veins are totally invisible. (C) 2018 Elsevier Ltd. All rights reserved.
机译:前臂识别系统在过去的几十年中出现,以识别静脉系统并确定静脉穿刺部位。基本上,前臂静脉的识别和实时可视化通常通过文献和应用医学中的近红外(NIR)摄像系统完成。但是,我们在本文中提出的建议是通过热成像更轻松,更可靠的替代方法。在识别静脉系统时,可见光谱和NIR相机解决方案的共同缺点是前臂中隐藏的静脉缺乏识别的可能性。换句话说,尽管这些解决方案对于识别浅表静脉(如肘中静脉和前臂前静脉)非常有用;但是它们对于诸如头静脉的皮下静脉并不是那么有效。因此,我们引入了一种新颖的模糊方向曲率方法,利用红外热成像(IR-T)识别前臂的整个静脉系统。最初,将热像仪捕获的前臂图像用清晰的2均值进行分割,然后用高斯高通滤波器进行滤波,以实现平滑和增强对比度。由二阶导数(包括垂直,水平和两个对角线方向)实现的四种类型的方向曲率从头开始被复制为四个单幅图像。随后通过模糊曲率方法融合图像,以产生代表前臂中完整静脉系统的最终图像。模糊推理系统作为专家系统的融合过程可以说是红外热成像的主要新颖之处,它的参数化设计也使其具有很高的灵活性。智能识别系统还可以根据选择的参数对前臂的整个静脉系统进行各种清晰的检查,即使静脉是完全不可见的。 (C)2018 Elsevier Ltd.保留所有权利。

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