Epistasis detection is vital for understanding disease susceptibility in genetics. Multiobjective multifactor dimensionality reduction (MOMDR) was previously proposed to detect epistasis. MOMDR was performed using binary classification to distinguish the high-risk (H) and low-risk (L) groups to reduce multifactor dimensionality. However, the binary classification does not reflect the uncertainty of the H and L classification. In this study, we proposed an empirical fuzzy MOMDR (EFMOMDR) to address the limitations of binary classification using the degree of membership through an empirical fuzzy approach. The EFMOMDR can simultaneously consider two incorporated fuzzy-based measures, including correct classification rate and likelihood rate, and does not require parameter tuning. Simulation studies revealed that EFMOMDR has higher 7.14% detection success rates than MOMDR, indicating that the limitations of binary classification of MOMDR have been successfully improved by empirical fuzzy. Moreover, EFMOMDR was used to analyze coronary artery disease in the Wellcome Trust Case Control Consortium dataset.
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http://dx.doi.org/10.1109/TCBB.2022.3144303 | DOI Listing |
Nutrition
November 2024
Graduate Program in Nutrition, Josué de Castro Institute of Nutrition, Federal University of Rio de Janeiro, Rio de Janeiro, Brazil; Research and Innovation Laboratory in Sports and Nutrition Sciences, Institute of Food and Nutrition, Multidisciplinary Center - Federal University of Rio de Janeiro, Macaé, Brazil.
Objective: To analyze the impact of the association between the consumption of ultra-processed foods (UPF), excess weight, and dyslipidemia in schoolchildren.
Methods: This is a cross-sectional study in which 420 schoolchildren aged 6 to 10 years from public schools in the municipality of Rio das Ostras, Brazil, were evaluated. Food consumption was assessed using the Previous Day Food Questionnaire (PDFQ-3), and physical activity (PA) was assessed using the Previous Day Physical Activity and Food Questionnaire (PDPAFQ).
Front Comput Neurosci
December 2024
Department of Information and Communication Engineering, Yeungnam University, Gyeongsan, Republic of Korea.
Facial emotion recognition (FER) can serve as a valuable tool for assessing emotional states, which are often linked to mental health. However, mental health encompasses a broad range of factors that go beyond facial expressions. While FER provides insights into certain aspects of emotional well-being, it can be used in conjunction with other assessments to form a more comprehensive understanding of an individual's mental health.
View Article and Find Full Text PDFJ Hunger Environ Nutr
January 2024
College of Population Health, University of New Mexico, Albuquerque, NM.
We examined discordant food security (FS) status classification between the USDA 10-item and six-item FS Survey Modules (FSSMs) among students at a U.S. university.
View Article and Find Full Text PDFWorld J Cardiol
December 2024
Department of Tumor and Immunology, Beijing Pediatric Research Institute, Beijing Children's Hospital, Capital Medical University, National Center for Children's Health, Beijing 100045, China.
Background: Timely and accurate evaluation of the patient's pulmonary arterial pressure (PAP) is of great significance for the treatment of congenital heart disease. Currently, there is no non-invasive gold standard method for evaluating PAP.
Aim: To assess the prognostic value of lipocalin-2 (LCN2) in relation to PAP in patients with congenital heart disease associated with pulmonary artery hypertension.
Neuroimage
December 2024
Hospital del Mar Research Institute; 08003 Barcelona, Spain; Universitat Pompeu Fabra; 08003 Barcelona, Spain; Epilepsy Unit - Neurology Dept. Hospital del Mar; 08003 Barcelona, Spain.
The rate of success of epilepsy surgery, ensuring seizure-freedom, is limited by the lack of epileptogenicity biomarkers. Previous evidence supports the critical role of functional connectivity during seizure generation to characterize the epileptogenic network (EN). However, EN dynamics is highly variable across patients, hindering the development of diagnostic biomarkers.
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