黑素瘤检测计算机视觉系统中的图像预处理

E. Vocaturo, E. Zumpano, P. Veltri
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引用次数: 31

摘要

皮肤肿瘤的特点是死亡率高。研究人员正在尝试从皮肤镜图像中自动早期诊断黑色素瘤,这是一种致命的皮肤癌。自动诊断提供了有效的“第二意见”,以支持医生决定皮肤病变是良性痣还是恶性黑色素瘤。确定有效的检测方法以降低诊断错误率是一项至关重要的挑战。计算机视觉系统有几个基本步骤。预处理是检测的第一阶段,起着基础性的作用:消除皮肤图像背景下的噪声和不相关部分,提高图像质量。本文的目的是综述可用于皮肤癌图像的预处理方法。目前对图像自动分析的兴趣,是由于能够提供病灶定量信息和实现自我诊断解决方案的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Image pre-processing in computer vision systems for melanoma detection
The tumors on the skin are characterized by a high mortality rate. Research is attempting the automatic early diagnosis of melanoma, a lethal form of skin cancer, from dermoscopic images. Automatic diagnostics provides a valid “second opinion“ to support physicians in deciding whether a skin lesion is a benign mole or a malignant melanoma. Determining effective detection methods to reduce the rate of error in diagnosis is a crucial challenge. Computer vision systems are characterized by several fundamental steps. Preprocessing is the first phase of detection and plays a fundamental role: the elimination of noise and irrelevant parts against the background of skin images to improve image quality. The purpose of this paper is to review the pre-processing approaches that can be used on skin cancer images. The current interest in the automatic analysis of images, is motivated by the possibility of being able to provide quantitative information on a lesion and to implement self diagnosis solutions.
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