{"id":3962,"date":"2026-08-17T10:34:00","date_gmt":"2026-08-17T10:34:00","guid":{"rendered":"https:\/\/futurenews24.com\/index.php\/2026\/08\/17\/seeing-beyond-bmi-estimating-cardiometabolic-risk-with-smartphone-imagery\/"},"modified":"2026-08-19T16:59:05","modified_gmt":"2026-08-19T16:59:05","slug":"seeing-beyond-bmi-estimating-cardiometabolic-risk-with-smartphone-imagery","status":"publish","type":"post","link":"https:\/\/futurenews24.com\/index.php\/2026\/08\/17\/seeing-beyond-bmi-estimating-cardiometabolic-risk-with-smartphone-imagery\/","title":{"rendered":"Seeing past BMI: Estimating cardiometabolic threat with smartphone imagery"},"content":{"rendered":"<p><br \/>\n<\/p>\n<div data-gt-id=\"rich_text\" data-gt-component-name=\"\">\n<h3 data-block-key=\"ngs82\">Insulin resistance classification<\/h3>\n<p data-block-key=\"5m1it\">Subsequent, we in contrast how effectively completely different combos of information predicted insulin resistance, stacking our baseline demographics towards combining it with customary tape measurements, smartwatch BIA sensors, PhotoScan, and gold-standard DXA scans.<\/p>\n<p data-block-key=\"5irvk\">We examined our fashions on the MetabolicMosaic cohort utilizing a gradient boosting classifier to establish topics with insulin resistance. To make sure our outcomes have been fully unbiased and leak-free, we carried out a rigorous testing course of that repeatedly evaluated the mannequin on unseen knowledge. We additionally made certain every take a look at group was evenly balanced by each BMI and insulin resistance standing, guaranteeing a good and life like efficiency take a look at. With this strong framework in place, we systematically fed the classifier 5 distinct function units to match their predictive energy, baseline demographics like age, intercourse, and physique mass index, customary tape measure anthropometrics, smartwatch bioelectrical impedance, our smartphone PhotoScan metrics, and the medical gold-standard DXA scans. By evaluating how the mannequin carried out with every of those remoted inputs, we established the medical worth of our smartphone optical phenotyping.<\/p>\n<p data-block-key=\"6eoq\">To guage our fashions, we centered on two key metrics: the Space Underneath the Receiver Working Attribute curve (AUROC) and the Web Reclassification Index (NRI). Merely put, AUROC measures how precisely a mannequin can distinguish between somebody who has insulin resistance and somebody who doesn&#8217;t (larger is best). NRI, however, quantifies precisely how a lot our new digital metrics enhance our potential to appropriately categorize individuals in comparison with our previous baseline mannequin. Because the determine beneath signifies, our baseline demographic mannequin achieved an AUROC of 0.692. Once we added the photoscan-based physique composition options (demo + photoscan), the classification accuracy improved to an AUROC to 0.760 and NRI improved to 0.593, almost as efficient as utilizing medical DXA knowledge itself, which topped out at an AUROC of 0.773 and an NRI of 0.748. In distinction, including BIA with demographics (demo + bia beneath) yielded no enchancment in AUROC or NRI for insulin resistance classification for IR classification, as BIA solely gives BF% estimation, whose function significance is considerably decrease than A\/G ratio and V\/S ratio within the demo + photoscan mannequin.<\/p>\n<\/div>\n<p><br \/>\n<br \/><a href=\"https:\/\/research.google\/blog\/seeing-beyond-bmi-estimating-cardiometabolic-risk-with-smartphone-imagery\/\">Source link <\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Insulin resistance classification Subsequent, we in contrast how effectively completely different combos of information predicted insulin resistance, stacking our baseline demographics towards combining it with customary tape measurements, smartwatch BIA sensors, PhotoScan, and gold-standard DXA scans. We examined our fashions on the MetabolicMosaic cohort utilizing a gradient boosting classifier to establish topics with insulin resistance. [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":3964,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"fifu_image_url":"https:\/\/storage.googleapis.com\/gweb-research2023-media\/images\/HO_previewImage1.width-800.format-jpeg.jpg","fifu_image_alt":"","jnews-multi-image_gallery":[],"jnews_single_post":[],"jnews_primary_category":[],"jnews_override_bookmark_settings":[],"jnews_social_meta":[],"jnews_override_counter":[],"footnotes":""},"categories":[2],"tags":[4257,4259,4258,4141,281,4260],"class_list":["post-3962","post","type-post","status-publish","format-standard","has-post-thumbnail","hentry","category-ai-research-breakthroughs","tag-bmi","tag-cardiometabolic","tag-estimating","tag-imagery","tag-risk","tag-smartphone"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.7 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Seeing past BMI: Estimating cardiometabolic threat with smartphone imagery - Future News 24<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/futurenews24.com\/index.php\/2026\/08\/17\/seeing-beyond-bmi-estimating-cardiometabolic-risk-with-smartphone-imagery\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Seeing past BMI: Estimating cardiometabolic threat with smartphone imagery - Future News 24\" \/>\n<meta property=\"og:description\" content=\"Insulin resistance classification Subsequent, we in contrast how effectively completely different combos of information predicted insulin resistance, stacking our baseline demographics towards combining it with customary tape measurements, smartwatch BIA sensors, PhotoScan, and gold-standard DXA scans. We examined our fashions on the MetabolicMosaic cohort utilizing a gradient boosting classifier to establish topics with insulin resistance. 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