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Quality enhancement of multispectral images for skin cancer optical diagnostics

机译:用于皮肤癌光学诊断的多光谱图像的质量增强

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Melanoma is the least common but deadliest skin cancer, accounting for only about 1% of all cases, but is the cause of the vast majority of skin cancer death. In some parts of the world, especially among western countries, melanoma is becoming more common every year. The detection of melanoma in early stage can be helpful to cure it. Unfortunately, long ques and high prices for dermatology service can result in the skin cancer diagnosis at its later stage, thus increasing the risk of mortality for the patient. It is important to provide a non-invasive optical device for primary care physicians to help diagnose different skin malformation based on obtained optical images. Such device will be able to automatically classify different skin malformations, but the results of classification strongly rely on obtained image quality. This study aims at finding solutions of image quality problems in the area of biophotonics. The resulting image quality depends on hardware capabilities of the object illumination, image sensor, optical system and image post processing (image storage format). Although several of the quality problems of the imaging systems may be prevented in advance, some flaws may not be removed as easily. For example, uneven illumination cases, where skin is not flat (for example: nose, ear). Due to that, it is not possible to create uniform illumination field and the resulting optical image has noticeable differences across it. Sometimes, it is the skin texture that could cause problems for the automatic malformation classification and diagnosis. In this case, image quality enhancement can be helpful for removing different image flaws and raise the precision of malformation classification. In this research methods for solving different image quality problems in multispectral images of skin malformations are proposed. Multispectral image acquisition and proposed methods are tested on noncontact skin cancer analyzing device prototype2. Nevertheless, it could be applied on other multispectral image analysis algorithms. Pilot studies of filtering methods show good results when trying to deal with uneven lighting problems in images3. Quality enhancement methods include high pass filtering, extraction of nonskin fragments (hair, markers, etc.), image stabilization and other methods. The image quality enhancement techniques were clinically tested on multispectral images of different skin malformations and the results of the study are presented in this paper.
机译:黑色素瘤是最不常见但致命的皮肤癌,仅占所有病例的1%,但却是绝大多数皮肤癌死亡的原因。在世界的某些地区,尤其是在西方国家,黑色素瘤每年都变得越来越普遍。早期发现黑色素瘤有助于治愈。不幸的是,长期的咨询和高昂的价格可能会导致皮肤癌诊断的后期阶段,从而增加患者死亡的风险。重要的是提供一种用于初级保健医生的非侵入性光学设备,以基于获得的光学图像来帮助诊断不同的皮肤畸形。这种设备将能够自动对不同的皮肤畸形进行分类,但是分类的结果很大程度上取决于获得的图像质量。这项研究旨在寻找生物光子学领域中图像质量问题的解决方案。产生的图像质量取决于对象照明,图像传感器,光学系统和图像后处理(图像存储格式)的硬件功能。尽管可以预先防止成像系统的几个质量问题,但是某些缺陷可能无法轻易消除。例如,在光照不均匀的情况下,皮肤不平坦(例如:鼻子,耳朵)。因此,不可能创建均匀的照明场,并且所得到的光学图像在整个图像上都具有明显的差异。有时,可能是皮肤纹理导致自动畸形分类和诊断出现问题。在这种情况下,增强图像质量有助于消除不同的图像缺陷并提高畸形分类的精度。在该研究中,提出了用于解决皮肤畸形的多光谱图像中的不同图像质量问题的方法。在非接触式皮肤癌分析设备原型2上测试了多光谱图像采集和提出的方法。然而,它可以应用于其他多光谱图像分析算法。尝试处理图像中不均匀的照明问题时,过滤方法的初步研究显示了良好的结果3。质量增强方法包括高通滤波,提取非皮肤碎片(头发,标记等),图像稳定化和其他方法。在不同皮肤畸形的多光谱图像上对图像质量增强技术进行了临床测试,并给出了研究结果。

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