An Improved Detection Algorithm for Ischemic Stroke NCCT Based on YOLOv5.

IF 3.3
Lifeng Zhang, Hongyan Cui, Anming Hu, Jiadong Li, Yidi Tang, Roy Elmer Welsch
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引用次数: 1

Abstract

Cerebral stroke (CS) is a heterogeneous syndrome caused by multiple disease mechanisms. Ischemic stroke (IS) is a subtype of CS that causes a disruption of cerebral blood flow with subsequent tissue damage. Noncontrast computer tomography (NCCT) is one of the most important IS detection methods. It is difficult to select the features of IS CT within computational image analysis. In this paper, we propose AC-YOLOv5, which is an improved detection algorithm for IS. The algorithm amplifies the features of IS via an NCCT image based on adaptive local region contrast enhancement, which then detects the region of interest via YOLOv5, which is one of the best detection algorithms at present. The proposed algorithm was tested on two datasets, and seven control group experiments were added, including popular detection algorithms at present and other detection algorithms based on image enhancement. The experimental results show that the proposed algorithm has a high accuracy (94.1% and 91.7%) and recall (85.3% and 88.6%) rate; the recall result is especially notable. This proves the excellent performance of the accuracy, robustness, and generalizability of the algorithm.

Abstract Image

Abstract Image

Abstract Image

基于YOLOv5改进的缺血性脑卒中NCCT检测算法
脑卒中是一种由多种疾病机制引起的异质性综合征。缺血性中风(IS)是CS的一种亚型,可导致脑血流中断并导致随后的组织损伤。非对比计算机断层扫描(NCCT)是最重要的is检测方法之一。在计算机图像分析中,is CT特征的选择是一个难点。本文提出了一种改进的is检测算法AC-YOLOv5。该算法通过基于自适应局部区域对比度增强的NCCT图像放大IS的特征,然后通过YOLOv5检测感兴趣的区域,这是目前最好的检测算法之一。算法在两个数据集上进行了测试,并增加了7个对照组实验,包括目前流行的检测算法和其他基于图像增强的检测算法。实验结果表明,该算法具有较高的准确率(94.1%和91.7%)和召回率(85.3%和88.6%);召回结果尤其引人注目。这证明了该算法具有良好的准确性、鲁棒性和泛化性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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