作者
Angelo Genovese, Mahdi S Hosseini, Vincenzo Piuri, Konstantinos N Plataniotis, Fabio Scotti
发表日期
2021/6/6
研讨会论文
ICASSP 2021-2021 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)
页码范围
1205-1209
出版商
IEEE
简介
Computer Aided Diagnosis (CAD) systems are increasingly utilizing image analysis and Deep Learning (DL) techniques, due to their high accuracy in several medical imaging fields, including the detection of Acute Lymphoblastic (or Lymphocytic) Leukemia (ALL) from peripheral blood samples. However, no method in the literature has specifically analyzed the focus quality of ALL images or proposed a technique for sharpening the samples in an adaptive way for the purpose of classification. To address this issue, in this paper we propose the first machine learning-based approach able to enhance blood sample images by an adaptive unsharpening method. The method uses image processing techniques and DL to normalize the radius of the cell, estimate the focus quality, adaptively improve the sharpness of the images, and then perform the classification. We evaluated the methodology on a public database of …
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A Genovese, MS Hosseini, V Piuri, KN Plataniotis… - ICASSP 2021-2021 IEEE International Conference on …, 2021