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In this study, we have proposed and validated that histogram of a good-quality bone scan image can enhance a poor-quality bone scan image. The histograms of two good-quality technetium-99m methyl diphosphonate bone scan images I and I recommended by nuclear medicine physicians (NMPs) were used to enhance 87 poor-quality bone scan images. Processed images and their corresponding input images were compared visually by two NMPs with scoring and also quantitatively using entropy, Structural similarity index measure, edge-based contrast measure, and absolute brightness mean error. Barnard's unconditional test was applied with a null hypothesis that the histogram of both I and I produces similar output image at α =0.05. The mean values of quantitative metrices of the processed images obtained using I and I were compared using Kolmogorov-Smirnov test. Histogram of a good-quality bone scan image can enhance a poor-quality bone scan image. Visually, histogram of I improved statistically significantly higher proportion ( < 0.0001) of images (86/87) as compared to histogram of I (51/87). Quantitatively, I performed better than I and the Chi-square distance of input and I was smaller than that of I. In addition, a statistically significant ( < 0.05) difference in all the quantitative metrics among the outputs obtained using I and I was observed. In our study, reference histogram of good-quality bone scan images transformed the majority of poor-quality bone scan images (98.85%) into visually good-quality images acceptable by NMPs.
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http://dx.doi.org/10.4103/wjnm.WJNM_66_19 | DOI Listing |
Acta Ortop Mex
September 2025
Servicio de Ortopedia y Traumatología, Hospital de San Rafael, Hospitales Pascual. Cádiz, España.
Introduction: anatomical deformities such as developmental dysplasia of the hip (DDH) and Perthes disease represent a challenge for reconstruction. The use of 3D-printed models can be helpful for assessing the deformity, bone mass, implant size, and orientation.
Objectives: to prospectively evaluate the outcomes of 3D simulation in primary total hip arthroplasty.
J Obes
September 2025
School of Natural Sciences, University of Lincoln, Lincoln, UK.
To investigate the genetic determinants of fat distribution across anatomical sites and their implications for health outcomes. We analyzed neck-to-knee MRI data from the UK Biobank ( = 37,589) to measure fat at various locations and used Mendelian randomization to assess effects on 26 obesity-related diseases and 94 biomarkers from FinnGen and other consortia. We identified genetic loci associated with 10 fat depots: abdominal subcutaneous adipose tissue ( = 2 loci), thigh subcutaneous adipose tissue (25), thigh intermuscular adipose tissue (15), visceral adipose tissue (7), liver proton density fat fraction (PDFF) (8), pancreas PDFF (11), paraspinal adipose tissue (9), pelvic bone marrow fat (28), thigh bone marrow fat (27), and vertebrae bone marrow fat (5).
View Article and Find Full Text PDFMedicine (Baltimore)
September 2025
Department of Internal Medicine, Lahore General Hospital, Lahore, Punjab, Pakistan.
Rationale: Brown tumor (osteitis fibrosa cystica) is a benign bone lesion associated with hyperparathyroidism that can affect multiple bones in patients with end-stage renal disease (ESRD).
Patient Concerns: We present the case of a 32-year-old female with ESRD on maintenance hemodialysis who experienced body aches, muscle weakness, constipation, and mood swings for 3 months.
Diagnoses: Initial tests revealed elevated parathyroid hormone (PTH), serum calcium, and phosphorus levels.
Eur Spine J
September 2025
Department of Diagnostic and Interventional Radiology, University Hospital Ulm, Ulm, Germany.
J Med Imaging (Bellingham)
September 2025
Otto von Guericke University, Institute for Medical Engineering and Research Campus STIMULATE, Magdeburg, Germany.
Purpose: The combination of multi-layer flat panel detector (FPDT) X-ray imaging and physics-based material decomposition algorithms allows for the removal of anatomical structures. However, the reliability of these algorithms may be compromised by unaccounted materials or scattered radiation.
Approach: We investigated the two-material decomposition performance of a multi-layer FPDT in the context of 2D chest radiography without and with a 13:1 anti-scatter grid employed.