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The clinical diagnosis of developmental dysplasia of the hip (DDH) typically involves manually measuring key radiological angles-Center-Edge (CE), Tönnis, and Sharp angles-from pelvic radiographs, a process that is time-consuming and susceptible to variability. This study aims to develop an automated system that integrates these measurements to enhance the accuracy and consistency of DDH diagnosis. We developed an end-to-end deep learning model for keypoint detection that accurately identifies eight anatomical keypoints from pelvic radiographs, enabling the automated calculation of CE, Tönnis, and Sharp angles. To support the diagnostic decision, we introduced a novel data-driven scoring system that combines the information from all three angles into a comprehensive and explainable diagnostic output. The system demonstrated superior consistency in angle measurements compared to a cohort of eight moderately experienced orthopedists. The intraclass correlation coefficients for the CE, Tönnis, and Sharp angles were 0.957 (95% CI: 0.952-0.962), 0.942 (95% CI: 0.937-0.947), and 0.966 (95% CI: 0.964-0.968), respectively. The system achieved a diagnostic F1 score of 0.863 (95% CI: 0.851-0.876), significantly outperforming the orthopedist group (0.777, 95% CI: 0.737-0.817, [Formula: see text]), as well as using clinical diagnostic criteria for each angle individually ([Formula: see text]). The proposed system provides reliable and consistent automated measurements of radiological angles and an explainable diagnostic output for DDH, outperforming moderately experienced clinicians.Clinical impact: This AI-powered solution reduces the variability and potential errors of manual measurements, offering clinicians a more consistent and interpretable tool for DDH diagnosis.
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http://dx.doi.org/10.1109/JTEHM.2025.3560877 | DOI Listing |
JACC Heart Fail
September 2025
Université de Lorraine, Inserm, Centre d'Investigations Cliniques Plurithématique 1433, Centre Hospitalier Régional Universitaire de Nancy, Nancy, France.
Phys Rev Lett
August 2025
McMaster University, Department of Physics and Astronomy, Hamilton, Ontario L8S 4M1, Canada.
Magnetic heat capacity measurements of a high-quality single crystal of the dipole-octupole pyrochlore Ce_{2}Hf_{2}O_{7} down to a temperature of T=0.02 K are reported. These show a two-peaked structure, with a Schottky-like peak at T_{1}∼0.
View Article and Find Full Text PDFPhys Rev Lett
August 2025
European Laboratory for Non Linear Spectroscopy (LENS), Istituto Nazionale di Ottica, Consiglio Nazionale delle Ricerche (CNR-INO), via Nello Carrara 1, 50019 Sesto Fiorentino, Italy and , via Nello Carrara 1, 50019 Sesto Fiorentino, Italy.
Single crystal x-ray diffraction measurements have been carried out on epsilon oxygen up to 30 GPa to examine the behavior of the constituent (O_{2})_{4} units. An isostructural phase transition is evidenced by lattice parameter and intracluster (O_{8}) distance discontinuities and clear changes in the equation of state at 18.1±0.
View Article and Find Full Text PDFDiabetologia
September 2025
Department of Diabetology and Internal Medicine, Medical University of Warsaw, Warsaw, Poland.
This review article, developed by the EASD Global Council, addresses the growing global challenges in diabetes research and care, highlighting the rising prevalence of diabetes, the increasing complexity of its management and the need for a coordinated international response. With regard to research, disparities in funding and infrastructure between high-income countries and low- and middle-income countries (LMICs) are discussed. The under-representation of LMIC populations in clinical trials, challenges in conducting large-scale research projects, and the ethical and legal complexities of artificial intelligence integration are also considered as specific issues.
View Article and Find Full Text PDFInt J Surg
September 2025
Department of Thoracic Surgery, Shanghai Pulmonary Hospital, School of Medicine, Tongji University, Shanghai, China.
Background: Phrenic nerve injury during mediastinal tumor resection can lead to significant postoperative diaphragmatic dysfunction. Current intraoperative protection techniques are imprecise and lack real-time feedback. We aimed to develop and validate a quantifiable, multimodal neuroprotective strategy.
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