The use of electronic health records for risk prediction models requires a sufficient quality of input data to ensure patient safety. The aim of our study was to evaluate the influence of incorrect administrative diabetes coding on the performance of a risk prediction model for delirium, as diabetes is known to be one of the most relevant variables for delirium prediction. We used four data sets varying in their correctness and completeness of diabetes coding as input for different machine learning algorithms. Although there was a higher prevalence of diabetes in delirium patients, the model performance parameters did not vary between the data sets. Hence, there was no significant impact of incorrect diabetes coding on the performance for our model predicting delirium.
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J Eat Disord
December 2024
Department of Psychiatry, Washington University School of Medicine, St. Louis, MO, USA.
Background: Training gaps regarding the diagnosis and management of eating disorders in diverse populations, including racial, ethnic, sexual, and gender minoritized groups, have not been thoroughly examined.
Objective: This study aimed to examine resident physicians' knowledge and attitudes regarding eating disorders in diverse populations, with a focus on areas for improved training and intervention.
Methods: Ninety-two resident physicians in internal medicine, emergency medicine, obstetrics/gynecology, psychiatry, and surgery at an academic center completed an online survey from 12/1/2020-3/1/2021, which comprised multiple choice and vignette-style open-ended questions to assess knowledge and attitudes toward the management and clinical presentations of eating disorders.
Objective: To understand the perinatal experiences of women with gestational diabetes mellitus (GDM) who intended to breastfeed.
Design: Qualitative descriptive study.
Setting/local Problem: Women with GDM and their infants benefit from breastfeeding but have lower exclusive breastfeeding rates than women without GDM, and the reasons for these differences are not entirely clear.
Turk J Med Sci
December 2024
Department of Cardiology, Faculty of Medicine, Mersin University, Mersin, Turkiye.
Background/aim: Heart failure (HF) is associated with a wide range of comorbidities that negatively impact clinical outcomes and cause high economic burden. We aimed to evaluate the frequency and burden of comorbidities in HF patients in Türkiye and their relationships with patients' demographic characteristics.
Materials And Methods: Based on ICD-10 codes in the national electronic database of the Turkish Ministry of Health covering the entire population of Türkiye (n = 85,279,553) from 1 January 2016 to 31 December 2022, data on the prevalence of comorbidities in HF patients were obtained.
Transgend Health
December 2024
University of Missouri-Kansas City School of Medicine, Kansas City, Missouri, USA.
Purpose: This study aims to assess the prevalence of intersex variations/differences in sex development (I/DSDs), associated adrenal conditions, and primary gonadal insufficiency in children with gender dysphoria.
Methods: We performed a comprehensive review of the medical records for individuals who carried the diagnostic codes for gender dysphoria in addition to intersex and/or other conditions associated with sex steroid variations among patients evaluated by pediatric endocrinologists from 2013 to 2022.
Results: We found that 9 of 612 (1.
Brain Behav Immun
December 2024
Cardiology Division, Massachusetts General Hospital and Harvard Medical School, Boston, MA, USA; Cardiovascular Imaging Research Center, Massachusetts General Hospital and Harvard Medical School, Boston, MA, USA. Electronic address:
Background: Individuals with posttraumatic stress disorder (PTSD) have high rates of cardiovascular disease (CVD) and increased cardiometabolic CVD risk factors (CVDRFs, e.g., hypertension, hyperlipidemia, or diabetes mellitus).
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