2019
DOI: 10.1155/2019/6134942
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Medical Image Segmentation Algorithm Based on Feedback Mechanism CNN

Abstract: With the development of computer vision and image segmentation technology, medical image segmentation and recognition technology has become an important part of computer-aided diagnosis. The traditional image segmentation method relies on artificial means to extract and select information such as edges, colors, and textures in the image. It not only consumes considerable energy resources and people’s time but also requires certain expertise to obtain useful feature information, which no longer meets the practi… Show more

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Cited by 30 publications
(16 citation statements)
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“…ey used CNN to segment the image and correct it. e result was verified on the public database e-ophtha EX database to prove the effectiveness of this method [20]. ere was also a study on carotid artery ultrasound image plaque recognition using deep learning, where FasterRCNN based on VGG16 and ResNet101 and YOLOv3 based on Darknet were used.…”
Section: Discussionmentioning
confidence: 83%
“…ey used CNN to segment the image and correct it. e result was verified on the public database e-ophtha EX database to prove the effectiveness of this method [20]. ere was also a study on carotid artery ultrasound image plaque recognition using deep learning, where FasterRCNN based on VGG16 and ResNet101 and YOLOv3 based on Darknet were used.…”
Section: Discussionmentioning
confidence: 83%
“…With the increasing adoption of CT technology in the medical field, image segmentation has become a research hotspot in medical image processing. Medical image segmentation is crucial for accurate disease positioning, 3D visualization, and subsequent treatment [9,10]. Due to the individual differences in the anatomical structure of lung tissue, there is also incomplete or low contrast of the lung fissure, which increases the difficulty of lung segmentation.…”
Section: Introductionmentioning
confidence: 99%
“…In recent years, the resolution of medical image is constantly improved with the rapid development of modern medical image technology, while the traditional segmentation technology is difficult to obtain satisfactory segmentation results. Image segmentation is a critical step for image analysis and three-dimensional reconstruction in medical imaging, and the realization of accurate segmentation helps doctors understand the actual condition of patients and make reasonable treatment plans [9,10]. Image segmentation technology based on graph theory is a hot research topic in the image segmentation in recent years [11].…”
Section: Introductionmentioning
confidence: 99%