ArticleEuropean journal of nutrition2024
Dietary patterns associated with the incidence of hypertension among adult Japanese males: application of machine learning to a cohort study.
Article in European journal of nutrition, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers, 1 of them a synthesis that pooled it.
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Who cites it
8 citing papers in PubMed, 1 synthesis or guideline pooled it.
- Artificial Intelligence in Cardiovascular Medicine: Focus on Hypertension.Hypertension (Dallas, Tex. : 1979) · 2026Pooled it
- Impact of dietary component clusters identified by K-means++ on renal function decline in a Taiwanese cohort.Renal failure · 2026Article
- Time-varying eating behaviors and long-term risk of incident hypertension in a Japanese cohort.Hypertension research : official journal of the Japanese Society of Hypertension · 2026Article
- NIH-FDA Nutrition Regulatory Science Workshop: advancing research and policy.The American journal of clinical nutrition · 2026Article
- Machine Learning-Driven Precision Nutrition: A Paradigm Evolution in Dietary Assessment and Intervention.Nutrients · 2025Review
- Assessing hypertension knowledge and its association with sociodemographic variables among hypertensive patients in Bangladesh.Scientific reports · 2025Article
- Dietary patterns and obesity are associated with type 2 diabetes risk in elderly Chinese men: a machine learning approach.Frontiers in nutrition · 2025Article
- Associations of ACE I/D and AGTR1 rs5182 polymorphisms with diabetes and their effects on lipids in an elderly Chinese population.Lipids in health and disease · 2024Article
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7 authors.
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Abstract
purposeThe previous studies that examined the effectiveness of unsupervised machine learning methods versus traditional methods in assessing dietary patterns and their association with incident hypertension showed contradictory results. Consequently, our aim is to explore the correlation between the incidence of hypertension and overall dietary patterns that were extracted using unsupervised machine learning techniques.
methodsData were obtained from Japanese male participants enrolled in a prospective cohort study between August 2008 and August 2010. A final dataset of 447 male participants was used for analysis. Dimension reduction using uniform manifold approximation and projection (UMAP) and subsequent K-means clustering was used to derive dietary patterns. In addition, multivariable logistic regression was used to evaluate the association between dietary patterns and the incidence of hypertension.
resultsWe identified four dietary patterns: 'Low-protein/fiber High-sugar,' 'Dairy/vegetable-based,' 'Meat-based,' and 'Seafood and Alcohol.' Compared with 'Seafood and Alcohol' as a reference, the protective dietary patterns for hypertension were 'Dairy/vegetable-based' (OR 0.39, 95% CI 0.19-0.80, P = 0.013) and the 'Meat-based' (OR 0.37, 95% CI 0.16-0.86, P = 0.022) after adjusting for potential confounding factors, including age, body mass index, smoking, education, physical activity, dyslipidemia, and diabetes. An age-matched sensitivity analysis confirmed this finding.
conclusionThis study finds that relative to the 'Seafood and Alcohol' pattern, the 'Dairy/vegetable-based' and 'Meat-based' dietary patterns are associated with a lower risk of hypertension among men.
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