1.Development of Machine-Learning Models to Predict Ambulation Outcomes Following Spinal Metastasis Surgery
Piya CHAVALPARIT ; Sirichai WILARTRATSAMI ; Borriwat SANTIPAS ; Piyalitt ITTICHAIWONG ; Kanyakorn VEERAKANJANA ; Panya LUKSANAPRUKSA
Asian Spine Journal 2023;17(6):1013-1023
Methods:
This retrospective study included patients who underwent spinal metastasis at a university-based medical center in Thailand between January 2009 and November 2021. Collected data included preoperative parameters and ambulatory status 90 and 180 days following surgery. Thirteen machine-learning algorithms, namely, artificial neural network, logistic regression, CatBoost classifier, linear discriminant analysis, extreme gradient boosting, extra trees classifier, random forest classifier, gradient boosting classifier, light gradient boosting machine, naïve Bayes, K-neighbor classifier, Ada boost classifier, and decision tree classifier were developed to predict ambulatory status 90 and 180 days following surgery. Model performance was evaluated using the area under the receiver operating characteristic curve (AUC) and F1-score.
Results:
In total, 167 patients were enrolled. The number of patients classified as ambulatory 90 and 180 days following surgery was 140 (81.9%) and 137 (82.0%), respectively. The extreme gradient boosting algorithm was found to most accurately predict 180-day ambulatory outcome (AUC, 0.85; F1-score, 0.90), and the decision tree algorithm most accurately predicted 90-day ambulatory outcome (AUC, 0.94; F1-score, 0.88).
Conclusions
Machine-learning algorithms were effective in predicting ambulatory status following surgery for spinal metastasis. Based on our data, the extreme gradient boosting and decision tree best predicted postoperative ambulatory status 180 and 90 days after spinal metastasis surgery, respectively.
2.Development and internal validation of machine-learning models for predicting survival in patients who underwent surgery for spinal metastases
Borriwat SANTIPAS ; Kanyakorn VEERAKANJANA ; Piyalitt ITTICHAIWONG ; Piya CHAVALPARIT ; Sirichai WILARTRATSAMI ; Panya LUKSANAPRUKSA
Asian Spine Journal 2024;18(3):325-335
Methods:
A registry of patients who underwent surgery (instrumentation, decompression, or fusion) for spinal metastases between 2004 and 2018 was used. The outcome measure was survival at postoperative days 90, 180, and 365. Preoperative variables were used to develop machine-learning algorithms to predict survival chance in each period. The performance of the algorithms was measured using the area under the receiver operating characteristic curve (AUC).
Results:
A total of 389 patients were identified, with 90-, 180-, and 365-day mortality rates of 18%, 41%, and 45% postoperatively, respectively. The XGBoost algorithm showed the best performance for predicting 180-day and 365-day survival (AUCs of 0.744 and 0.693, respectively). The CatBoost algorithm demonstrated the best performance for predicting 90-day survival (AUC of 0.758). Serum albumin had the highest positive correlation with survival after surgery.
Conclusions
These machine-learning algorithms showed promising results in predicting survival in patients who underwent spinal palliative surgery for spinal metastasis, which may assist surgeons in choosing appropriate treatment and increasing awareness of mortality-related factors before surgery.
3.The Utilization of Navigation and Emerging Technologies With Endoscopic Spine Surgery: A Narrative Review
Abhinav K. SHARMA ; Rafael Garcia DE OLIVEIRA ; Siravich SUVITHAYASIRI ; Piya CHAVALPARIT ; Chien Chun CHANG ; Yong H. KIM ; Charla R. FISCHER ; Sang LEE ; Samuel CHO ; Jin-Sung KIM ; Don Young PARK
Neurospine 2025;22(1):105-117
Endoscopic spine surgery (ESS) is growing in popularity worldwide. An expanding body of literature demonstrates rapid functional recovery with reduced morbidity compared to open techniques. Both full endoscopic spine surgery, or uniportal endoscopy, and unilateral biportal endoscopy (UBE) can be employed in conjunction with various navigation and enabling technologies for assistance with localization of anatomic orientation and assessment of the intraoperative target spinal pathology. This review article describes various navigation technologies in ESS, including 2-dimensional (2D) fluoroscopic imaging, 2D fluoroscopic navigation, 3-dimensional C-arm navigation, augmented reality, and spinal robotics. Employment of enabling navigation and emerging technology with the registration of patient-specific anatomy enables clear delineation of anatomic landmarks and facilitation of a successful procedure. Additionally, avoidance of common pitfalls during use of navigation systems in ESS is discussed in this review.
4.The Utilization of Navigation and Emerging Technologies With Endoscopic Spine Surgery: A Narrative Review
Abhinav K. SHARMA ; Rafael Garcia DE OLIVEIRA ; Siravich SUVITHAYASIRI ; Piya CHAVALPARIT ; Chien Chun CHANG ; Yong H. KIM ; Charla R. FISCHER ; Sang LEE ; Samuel CHO ; Jin-Sung KIM ; Don Young PARK
Neurospine 2025;22(1):105-117
Endoscopic spine surgery (ESS) is growing in popularity worldwide. An expanding body of literature demonstrates rapid functional recovery with reduced morbidity compared to open techniques. Both full endoscopic spine surgery, or uniportal endoscopy, and unilateral biportal endoscopy (UBE) can be employed in conjunction with various navigation and enabling technologies for assistance with localization of anatomic orientation and assessment of the intraoperative target spinal pathology. This review article describes various navigation technologies in ESS, including 2-dimensional (2D) fluoroscopic imaging, 2D fluoroscopic navigation, 3-dimensional C-arm navigation, augmented reality, and spinal robotics. Employment of enabling navigation and emerging technology with the registration of patient-specific anatomy enables clear delineation of anatomic landmarks and facilitation of a successful procedure. Additionally, avoidance of common pitfalls during use of navigation systems in ESS is discussed in this review.
5.The Utilization of Navigation and Emerging Technologies With Endoscopic Spine Surgery: A Narrative Review
Abhinav K. SHARMA ; Rafael Garcia DE OLIVEIRA ; Siravich SUVITHAYASIRI ; Piya CHAVALPARIT ; Chien Chun CHANG ; Yong H. KIM ; Charla R. FISCHER ; Sang LEE ; Samuel CHO ; Jin-Sung KIM ; Don Young PARK
Neurospine 2025;22(1):105-117
Endoscopic spine surgery (ESS) is growing in popularity worldwide. An expanding body of literature demonstrates rapid functional recovery with reduced morbidity compared to open techniques. Both full endoscopic spine surgery, or uniportal endoscopy, and unilateral biportal endoscopy (UBE) can be employed in conjunction with various navigation and enabling technologies for assistance with localization of anatomic orientation and assessment of the intraoperative target spinal pathology. This review article describes various navigation technologies in ESS, including 2-dimensional (2D) fluoroscopic imaging, 2D fluoroscopic navigation, 3-dimensional C-arm navigation, augmented reality, and spinal robotics. Employment of enabling navigation and emerging technology with the registration of patient-specific anatomy enables clear delineation of anatomic landmarks and facilitation of a successful procedure. Additionally, avoidance of common pitfalls during use of navigation systems in ESS is discussed in this review.
6.The Utilization of Navigation and Emerging Technologies With Endoscopic Spine Surgery: A Narrative Review
Abhinav K. SHARMA ; Rafael Garcia DE OLIVEIRA ; Siravich SUVITHAYASIRI ; Piya CHAVALPARIT ; Chien Chun CHANG ; Yong H. KIM ; Charla R. FISCHER ; Sang LEE ; Samuel CHO ; Jin-Sung KIM ; Don Young PARK
Neurospine 2025;22(1):105-117
Endoscopic spine surgery (ESS) is growing in popularity worldwide. An expanding body of literature demonstrates rapid functional recovery with reduced morbidity compared to open techniques. Both full endoscopic spine surgery, or uniportal endoscopy, and unilateral biportal endoscopy (UBE) can be employed in conjunction with various navigation and enabling technologies for assistance with localization of anatomic orientation and assessment of the intraoperative target spinal pathology. This review article describes various navigation technologies in ESS, including 2-dimensional (2D) fluoroscopic imaging, 2D fluoroscopic navigation, 3-dimensional C-arm navigation, augmented reality, and spinal robotics. Employment of enabling navigation and emerging technology with the registration of patient-specific anatomy enables clear delineation of anatomic landmarks and facilitation of a successful procedure. Additionally, avoidance of common pitfalls during use of navigation systems in ESS is discussed in this review.
7.The Utilization of Navigation and Emerging Technologies With Endoscopic Spine Surgery: A Narrative Review
Abhinav K. SHARMA ; Rafael Garcia DE OLIVEIRA ; Siravich SUVITHAYASIRI ; Piya CHAVALPARIT ; Chien Chun CHANG ; Yong H. KIM ; Charla R. FISCHER ; Sang LEE ; Samuel CHO ; Jin-Sung KIM ; Don Young PARK
Neurospine 2025;22(1):105-117
Endoscopic spine surgery (ESS) is growing in popularity worldwide. An expanding body of literature demonstrates rapid functional recovery with reduced morbidity compared to open techniques. Both full endoscopic spine surgery, or uniportal endoscopy, and unilateral biportal endoscopy (UBE) can be employed in conjunction with various navigation and enabling technologies for assistance with localization of anatomic orientation and assessment of the intraoperative target spinal pathology. This review article describes various navigation technologies in ESS, including 2-dimensional (2D) fluoroscopic imaging, 2D fluoroscopic navigation, 3-dimensional C-arm navigation, augmented reality, and spinal robotics. Employment of enabling navigation and emerging technology with the registration of patient-specific anatomy enables clear delineation of anatomic landmarks and facilitation of a successful procedure. Additionally, avoidance of common pitfalls during use of navigation systems in ESS is discussed in this review.