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1. CT Anatomical Analysis of C4 Pedicle and Lateral Mass in Children Aged 0–14 in Southern China

2. Prediction of additional hospital days in patients undergoing cervical spine surgery with machine learning methods

3. Prediction model for spinal cord injury in spinal tuberculosis patients using multiple machine learning algorithms: a multicentric study

4. Development and validation of a machine learning-based nomogram for predicting HLA-B27 expression

5. Development and validation of a diagnostic model to differentiate spinal tuberculosis from pyogenic spondylitis by combining multiple machine learning algorithms

6. Proteomic analysis to identification of hypoxia related markers in spinal tuberculosis: a study based on weighted gene co-expression network analysis and machine learning

7. To infer the probability of cervical ossification of the posterior longitudinal ligament and explore its impact on cervical surgery

8. Network pharmacology combined with molecular docking and experimental validation to explore the potential mechanism of Cinnamomi ramulus against ankylosing spondylitis

9. Identification of spinal tuberculosis subphenotypes using routine clinical data: a study based on unsupervised machine learning

10. Application of machine learning in prediction of bone cement leakage during single-level thoracolumbar percutaneous vertebroplasty

11. Epidemiological characteristics of ankylosing spondylitis in Guangxi Province of China from 2014 to 2021

12. The causal relationship between autoimmune diseases and osteoporosis: a study based on Mendelian randomization

13. Comprehensive AI-assisted tool for ankylosing spondylitis based on multicenter research outperforms human experts

14. Difference between the blood samples of patients with bone and joint tuberculosis and patients with tuberculosis studied using machine learning

15. Immune cell infiltration-related clinical diagnostic model for Ankylosing Spondylitis

16. Machine learning-based clustering in cervical spondylotic myelopathy patients to identify heterogeneous clinical characteristics

17. Upregulated of ANXA3, SORL1, and Neutrophils May Be Key Factors in the Progressionof Ankylosing Spondylitis

18. Dysregulation of SAA1, TUBA8 and Monocytes Are Key Factors in Ankylosing Spondylitis With Femoral Head Necrosis

19. A Predictive Clinical-Radiomics Nomogram for Differentiating Tuberculous Spondylitis from Pyogenic Spondylitis Using CT and Clinical Risk Factors

21. Development and validation of a machine learning-based nomogram for prediction of ankylosing spondylitis

22. CAPZA2 and TRIB1 genomes contribute to the pathogenesis of ankylosing spondylitis

24. Identification and Functional Analysis of the fruitless Gene in a Hemimetabolous Insect, Nilaparvata lugens

25. The Roles of transformer-2 (tra-2) in the Sex Determination and Fertility of Riptortus pedestris, a Hemimetabolous Agricultural Pest

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