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Plasmodium Candidate Detection on Thin Blood Smear Images with Luminance Noise Reduction

机译:具有亮度降噪的薄血液涂片图像上的疟原虫候选

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Malaria is one of the deadliest diseases over the world. It leads to a serious vector-borne disease caused by a blood parasite of the Plasmodium genus. WHO declared that microscopy-based has become “the gold standard” in detecting malaria. However, manual procedure conducted by human experts may cause fatigue and leads to human error in assessment. Several computer aided detection (CAD) systems to assist parasitologists in detecting malaria have been published. However, the presence of illuminant noise is still a challenge for researchers. This paper proposes a new malaria detection scheme efficiently abled in microscopy image presented illumination noise. By using GGB normalization and gamma enhancement, the parasites are easier to detect. The proposed scheme achieves the best of sensitivity value compared the previous schemes. This result indicates that the proposed scheme in detecting parasite has a potential contribution in the development of CAD for Plasmodium detection.
机译:疟疾是世界上最致命的疾病之一。它导致由疟原虫属的血液寄生虫引起的严重染色疾病。谁宣称基于显微镜的术语已成为检测疟疾的“金标准”。但是,人类专家进行的手动程序可能会导致疲劳并导致评估中的人为错误。几次计算机辅助检测(CAD)系统辅助寄生学家检测疟疾的检测。然而,发光噪音的存在仍然是研究人员的挑战。本文提出了一种新的疟疾检测方案,其在显微镜图像上有效地呈现照明噪声。通过使用GGB标准化和伽马增强,寄生虫更容易检测。该方案比较先前的方案实现了最佳的灵敏度值。该结果表明,检测寄生虫中所提出的方案对疟原虫检测的CAD发育具有潜在的贡献。

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