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Purpose: This study aimed to validate pivotal pre-test probability (PTP)-coronary artery disease (CAD) models (CAD consortium model and IJC-CAD model).
Materials And Methods: Traditional PTP models-CAD consortium models: two traditional PTP models were used under the CAD consortium framework, namely CAD1 and CAD2. Machine learning (ML)-based PTP models: two ML-based PTP models were derived from CAD1 and CAD2, and used to enhance predictive capabilities [ML-CAD2 and ML-IJC (IJC-CAD)]. The primary endpoint was obstructive CAD. The performance evaluation of these PTP models was conducted using receiver-operating characteristic analysis.
Results: The study included 238 participants, among whom 157 individuals (65.9% of the total sample) had CAD. The IJC-CAD model demonstrated the highest performance with an area under the curve (AUC) of 0.860 [95% confidence interval (CI): 0.812-0.909]. Following this, the ML-CAD2 model exhibited an AUC of 0.814 (95% CI: 0.758-0.870), CAD1 showed an AUC of 0.767 (95% CI: 0.705-0.830), and CAD2 had an AUC of 0.785 (95% CI: 0.726-0.845). Each of the PTP models was adjusted to have a CAD score cutoff that classified cases with a sensitivity of over 95%. The respective cutoff values were as follows: CAD1 and CAD2 >12, ML-CAD2 >0.380, and IJC-CAD >0.367. All PTP models achieved a CAD sensitivity of over 95%. Similar to the AUC performance, the accuracy of the PTP models was highest for IJC-CAD, reaching 80.3%. The accuracy of ML-CAD2 was 77.7%, while that for CAD1 and CAD2 was 74.8% and 75.2%, respectively.
Conclusion: ML-CAD2 and IJC-CAD showed superior performance compared to traditional existing models (CAD1 and CAD2).
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http://dx.doi.org/10.3349/ymj.2024.0067 | DOI Listing |
Herzschrittmacherther Elektrophysiol
September 2025
Deutsche Stiftung für chronisch Kranke (DScK), Fürth, Deutschland.
The German healthcare system is facing challenges in diagnosing coronary artery disease (CAD). These include high mortality rates, even when advanced medical technology is used, and an excessive number of coronary angiographies. A key issue is that current guideline models inaccurately estimate pretest probability (PTP).
View Article and Find Full Text PDFProbiotics Antimicrob Proteins
August 2025
School of Food Science and Technology, Nanchang University, No. 235 Nanjing East Road, Nanchang, Jiangxi, 330047, PR China.
Type 2 diabetes (T2D) and its associated complications have emerged as significant global public health challenges. Postbiotics have shown potential benefits in managing T2D. To identify effective postbiotics for T2D amelioration and elucidate the material basis underlying their efficacy, this study developed an anti-hyperglycemic evaluation model.
View Article and Find Full Text PDFWorld Neurosurg
August 2025
Department of Neurosurgery, Liaocheng People's Hospital, Liaocheng , Shangdong, China. Electronic address:
Objective: Patients with traumatic intracranial haemorrhage (TICH) have been shown to be at high risk of developing venous thromboembolism (VTE), yet the safety and optimal timing of early pharmacologic thromboprophylaxis (PTP) remains a subject of debate. The objective of this study was to evaluate and summarise the impact of PTP initiation time point on patient-related clinical outcomes.
Methods: The databases of PubMed, EMBASE and Cochrane were systematically retrieved (the database was established until 31 December 2024), and the studies comparing very early (<24 hours) and delayed PTP were included.
This article considers the PTP tracking control problem for a class of unknown nonlinear discrete-time systems with output saturation. A novel data-driven FILC algorithm is proposed to achieve bounded tracking errors within limited iteration. First, considering the case that the model of the nonlinear discrete-time system is unknown, the relationship between the output of the system and the control inputs at these given points is derived using recursive evolution in the time domain.
View Article and Find Full Text PDFACS Nano
August 2025
State Key Laboratory of Natural Medicines, School of Pharmacy, China Pharmaceutical University, Nanjing 210009, China.
Precise control of the morphology of self-assembling drugs is critical for optimizing their pharmacokinetics and therapeutic efficacy. However, adapting a single drug for diverse therapeutic applications by tailoring its structure remains a central challenge. Here, we report a hydrogen-bond-guided strategy to program the morphology of a paclitaxel derivative, PTP, by introducing a phosphate group to promote supramolecular organization.
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