Intelligent measurement of adolescent idiopathic scoliosis x-ray coronal imaging parameters based on VB-Net neural network: a retrospective analysis of 2092 cases.

IF 2.8 3区 医学 Q1 ORTHOPEDICS Journal of Orthopaedic Surgery and Research Pub Date : 2025-01-03 DOI:10.1186/s13018-024-05383-7
Jinlong Liu, Haoran Zhang, Pei Dong, Danyang Su, Zhen Bai, Yuanbo Ma, Qiuju Miao, Shenyu Yang, Shuaikun Wang, Xiaopeng Yang
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Abstract

Background: Adolescent idiopathic scoliosis (AIS) is a complex three-dimensional deformity, and up to now, there has been no literature reporting the analysis of a large sample of X-ray imaging parameters based on artificial intelligence (AI) for it. This study is based on the accurate and rapid measurement of x-ray coronal imaging parameters in AIS patients by AI, to explore the differences and correlations, and to further investigate the risk factors in different groups, so as to provide a theoretical basis for the diagnosis and surgical treatment of AIS.

Methods: Retrospective analysis of 3192 patients aged 8-18 years who had a full-length orthopantomogram of the spine and were diagnosed with AIS at the First Affiliated Hospital of Zhengzhou University from January 2019 to March 2024. After screened 2092 cases were finally included. The uAI DR scoliosis analysis system with multi-resolution VB-Net convolution network architecture was used to measure CA, CBD, CV, RSH, T1 Tilt, PT, LLD, SS, AVT, and TS parameters. The results were organized and analyzed by using R Studio 4.2.3 software.

Results: The differences in CA, CBD, CV, RSH, TI tilt, PT, LLD and SS were statistically significant between male and female genders (p < 0.05); Differences in CA, CBD, T1 Tilt, PT, SS, AVT and TS were statistically significant in patients with AIS of different severity (p < 0.001), and T1 Tilt, AVT, TS were risk factors; Differences in CA, CBD, CV, RSH, T1 Tilt, PT, LLD, SS, AVT and TS were statistically significant (p < 0.05) in patients with AIS of different curve types, and TS was a risk factor; Analyzing the correlation between parameters revealed a highly linear correlation between CV and RSH (r = 0.826, p < 0.001), and a significant linear correlation between CBD and TS, and PT and SS (r = 0.561, p < 0.001; r = 0.637, p < 0.001).

Conclusion: Measurements based on VB-Net neural network found that x-ray coronal imaging parameters varied among AIS patients with different curve types and severities. In clinical practice, it is recommended to consider the discrepancy in parameters to enable a more accurate diagnosis and a personalized treatment plan.

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基于VB-Net神经网络的青少年特发性脊柱侧凸x线冠状面成像参数智能测量2092例回顾性分析
背景:青少年特发性脊柱侧凸(AIS)是一种复杂的三维畸形,迄今为止,尚未见基于人工智能(AI)对其进行大样本x射线成像参数分析的文献报道。本研究基于人工智能对AIS患者x线冠状面成像参数的准确、快速测量,探讨其差异及相关性,进一步探讨不同组间的危险因素,为AIS的诊断及手术治疗提供理论依据。方法:回顾性分析2019年1月至2024年3月郑州大学第一附属医院3192例8-18岁脊柱全体层析成像诊断为AIS的患者。经筛选,最终纳入2092例。采用多分辨率VB-Net卷积网络架构的uAI DR脊柱侧凸分析系统测量CA、CBD、CV、RSH、T1 Tilt、PT、LLD、SS、AVT和TS参数。使用R Studio 4.2.3软件对结果进行整理和分析。结果:CA、CBD、CV、RSH、TI倾斜、PT、LLD、SS在男女之间的差异均有统计学意义(p)。结论:基于VB-Net神经网络测量发现,不同曲线类型、不同严重程度AIS患者的x线冠状面成像参数存在差异。在临床实践中,建议考虑参数的差异,以便更准确的诊断和个性化的治疗方案。
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来源期刊
CiteScore
4.10
自引率
7.70%
发文量
494
审稿时长
>12 weeks
期刊介绍: Journal of Orthopaedic Surgery and Research is an open access journal that encompasses all aspects of clinical and basic research studies related to musculoskeletal issues. Orthopaedic research is conducted at clinical and basic science levels. With the advancement of new technologies and the increasing expectation and demand from doctors and patients, we are witnessing an enormous growth in clinical orthopaedic research, particularly in the fields of traumatology, spinal surgery, joint replacement, sports medicine, musculoskeletal tumour management, hand microsurgery, foot and ankle surgery, paediatric orthopaedic, and orthopaedic rehabilitation. The involvement of basic science ranges from molecular, cellular, structural and functional perspectives to tissue engineering, gait analysis, automation and robotic surgery. Implant and biomaterial designs are new disciplines that complement clinical applications. JOSR encourages the publication of multidisciplinary research with collaboration amongst clinicians and scientists from different disciplines, which will be the trend in the coming decades.
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