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Background: The assessment of diaphragm function is crucial for effective clinical management and the prevention of complications associated with diaphragmatic dysfunction. However, current measurement methodologies rely on manual techniques that are susceptible to human error: How does the performance of an automatic diaphragm measurement system based on a segmentation neural network focusing on diaphragm thickness and excursion compare with existing methodologies?
Methods: The proposed system integrates segmentation and parameter measurement, leveraging a newly established ultrasound diaphragm dataset. This dataset comprises B-mode ultrasound images and videos for diaphragm thickness assessment, as well as M-mode images and videos for movement measurement. We introduce a novel deep learning-based segmentation network, the Multi-ratio Dilated U-Net (MDRU-Net), to enable accurate diaphragm measurements. The system additionally incorporates a comprehensive implementation plan for automated measurement.
Results: Automatic measurement results are compared against manual assessments conducted by clinicians, revealing an average error of 8.12% in diaphragm thickening fraction measurements and a mere 4.3% average relative error in diaphragm excursion measurements. The results indicate overall minor discrepancies and enhanced potential for clinical detection of diaphragmatic conditions. Additionally, we design a user-friendly automatic measurement system for assessing diaphragm parameters and an accompanying method for measuring ultrasound-derived diaphragm parameters.
Conclusions: In this paper, we constructed a diaphragm ultrasound dataset of thickness and excursion. Based on the U-Net architecture, we developed an automatic diaphragm segmentation algorithm and designed an automatic parameter measurement scheme. A comparative error analysis was conducted against manual measurements. Overall, the proposed diaphragm ultrasound segmentation algorithm demonstrated high segmentation performance and efficiency. The automatic measurement scheme based on this algorithm exhibited high accuracy, eliminating subjective influence and enhancing the automation of diaphragm ultrasound parameter assessment, thereby providing new possibilities for diaphragm evaluation.
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http://dx.doi.org/10.1186/s12931-025-03325-3 | DOI Listing |
Nephrol Dial Transplant
September 2025
Department of Clinical Pharmacy and Pharmacology, University Medical Center Groningen, University of Groningen, Groningen, The Netherlands.
Background: We investigated circulating protein profiles and molecular pathways among various chronic kidney disease (CKD) etiologies to study its underlying molecular heterogeneity.
Methods: We conducted a proteomic biomarker analysis in the DAPA-CKD trial recruiting adults with and without type 2 diabetes with an eGFR of 25 to 75 mL/min/1.73m2 and a UACR of 200 to 5000 mg/g.
Cureus
August 2025
Department of Radiology, Aichi Medical University, Nagakute, JPN.
Background This study was conducted to examine the effects of moving the isocenter (IC) position from the lesion to the center of the brain on stereotactic radiosurgery (SRS) planning with volumetric-modulated arcs (VMA) using the High-Definition Dynamic Radiosurgery (HDRS) platform, a combination of the Agility multileaf collimator (MLC) (Elekta AB, Stockholm, Sweden) and the Monaco planning system (Elekta AB), for single brain metastases (BMs). Methodology The study subject included 36 clinical BMs with the gross tumor volume (GTV) ranging from 0.04 to 48.
View Article and Find Full Text PDFCureus
August 2025
Department of Radiology, Aichi Medical University, Nagakute, JPN.
Purpose This planning study aimed to clarify the significance of inverse planning with variable dose rate (VDR) and the segment shape optimization (SSO) in the quality and efficiency of dynamic conformal arcs (DCA) using the high-definition dynamic radiosurgery (HDRS) platform for stereotactic radiosurgery (SRS) of single brain metastases (BMs). Materials and methods Twenty clinical BMs were included, with the gross tumor volume (GTV) ranging from 0.33 cc to 48.
View Article and Find Full Text PDFJ Crit Care
September 2025
Universidade do Oeste de Santa Catarina, Campus de Joaçaba, Brazil; Hospital Universitário Santa Terezinha, Joaçaba, Brazil. Electronic address:
Background: Timely extubation is essential in ICU patients, yet traditional predictors such as the rapid shallow breathing index (RSBI) have limited accuracy. Diaphragm and lung ultrasound offer promising, non-invasive alternatives for assessing extubation readiness.
Methods: We conducted a prospective observational study nested within a randomized trial in a university ICU.
BMJ Open
September 2025
School of Rehabilitation Science, Shanghai University of Traditional Chinese Medicine, Shanghai, China
Introduction: Stroke causes neurological deficits and respiratory dysfunction, with prolonged bed rest exacerbating secondary pulmonary injury. This study evaluated the efficacy of pressure biofeedback training combined with Liuzijue Qigong (LQG) in improving functional outcomes and respiratory function in patients with tracheostomised stroke.
Methods And Analysis: This will be a parallel, single-centre randomised controlled trial involving 66 patients.