AI Article Synopsis

  • - Artificial intelligence, particularly deep learning, has made significant advancements in various fields, notably medicine and industrial anomaly detection, improving efficiency and accuracy in tasks.
  • - This study focuses on using deep learning and image processing to accurately measure spinal canal and vertebral foramen dimensions, achieving high mean Average Precision (95.6%) for identifying structures like intervertebral foramen and discs using YOLOv4.
  • - Techniques like Resnet50 combined with U-Net were utilized to achieve Intersection over Union (IoU) scores of 79.11% and 80.89%, showcasing the effectiveness of these advanced methods in medical imaging analysis.

Article Abstract

Artificial intelligence has garnered significant attention in recent years as a rapidly advancing field of computer technology. With the continual advancement of computer hardware, deep learning has made breakthrough developments within the realm of artificial intelligence. Over the past few years, applying deep learning architecture in medicine and industrial anomaly inspection has significantly contributed to solving numerous challenges related to efficiency and accuracy. For excellent results in radiological, pathological, endoscopic, ultrasonic, and biochemical examinations, this paper utilizes deep learning combined with image processing to identify spinal canal and vertebral foramen dimensions. In existing research, technologies such as corrosion and expansion in magnetic resonance image (MRI) processing have also strengthened the accuracy of results. Indicators such as area and Intersection over Union (IoU) are also provided for assessment. Among them, the mean Average Precision (mAP) for identifying intervertebral foramen (IVF) and intervertebral disc (IVD) through YOLOv4 is 95.6%. Resnet50 mixing U-Net was employed to identify the spinal canal and intervertebral foramen and achieved IoU scores of 79.11% and 80.89%.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11504142PMC
http://dx.doi.org/10.3390/bioengineering11100981DOI Listing

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