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Health and Public Health Applications for Decision Support Using Machine Learning



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Titolo: Health and Public Health Applications for Decision Support Using Machine Learning Visualizza cluster
Pubblicazione: MDPI - Multidisciplinary Digital Publishing Institute, 2023
Descrizione fisica: 1 online resource (214 p.)
Soggetto non controllato: action units
adult-onset dementia
Alzheimer's disease
artificial intelligence
artificial neural network
atherosclerosis
audio visual
blood glucose
Cardiac health
ChemProt
colonies
comparison between manual and automated image segmentation
computerized diagnostic systems
convolutional neural network
COVID-19
COVID-19 detection
COVID-19 severity assessment
CPR (chemical-protein relation)
CVD classification
data selection
DDI (drug-drug interaction)
deep learning
deep neural network
diabetes
discrimination
Doppler ultrasound
ECG
emotion
ensemble learning
gait
GAT (graph-attention network)
group-based trajectory modeling
hemodynamic modeling
image processing
infected lung segmentation
internal carotid artery
largest Lyapunov exponent (LyE)
machine learning
machine-learning models
magnetic resonance imaging
Measurement uncertainty
Monte Carlo method
movement synergy
n/a
neural networks
neuromuscular control
overground walking
petri-plates
pretrained model
principal component analysis (PCA)
quantification of lung disease severity
relation extraction
risk assessment tool
RNN-LSTM
screening strategy
self-attention
signal processing
speech
stress
stroke
subclinical renal damage
T5 (text-to-text transfer transformer)
time-series forecasting
transfer learning
transformer
Sommario/riassunto: "Health and Public Health Applications for Decision Support Using Machine Learning" is a reprint that explores the intersection of machine learning and health sciences. It presents a collection of research and innovations showcasing how data-driven algorithms can transform patient care, disease diagnosis, and public health management. The reprint covers a wide range of topics, including natural language processing for biomedical relation extraction, ensemble learning for blood glucose level forecasting in diabetes management, machine learning for predicting walking stability and fall risk among the elderly, deep learning for pneumonia-infected lung volume quantification, and more.The reprint also discusses applications in precision medicine, early detection of renal damage, cardiac health monitoring, stress classification for mental health assessment, and early diagnosis of intracranial internal carotid artery stenosis. It emphasizes the role of machine learning in managing health crises, such as COVID-19 detection using ECG, voice, and X-ray systems, and reviews AI models in diagnosing adult-onset dementia disorders.Overall, this reprint aims to inspire researchers and healthcare professionals by showcasing the transformative potential of machine learning in healthcare. It hopes to encourage further research and collaboration to advance healthcare and technological innovations for a healthier future.
Titolo autorizzato: Health and Public Health Applications for Decision Support Using Machine Learning  Visualizza cluster
Formato: Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione: Inglese
Record Nr.: 9910743269303321
Lo trovi qui: Univ. Federico II
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