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Multimodal biomedical AI
The increasing availability of biomedical data from large biobanks, electronic health records,
medical imaging, wearable and ambient biosensors, and the lower cost of genome and …
medical imaging, wearable and ambient biosensors, and the lower cost of genome and …
Integrating multi-omics data with EHR for precision medicine using advanced artificial intelligence
With the recent advancement of novel biomedical technologies such as high-throughput
sequencing and wearable devices, multi-modal biomedical data ranging from multi-omics …
sequencing and wearable devices, multi-modal biomedical data ranging from multi-omics …
Democratizing EHR analyses with FIDDLE: a flexible data-driven preprocessing pipeline for structured clinical data
Objective In applying machine learning (ML) to electronic health record (EHR) data, many
decisions must be made before any ML is applied; such preprocessing requires substantial …
decisions must be made before any ML is applied; such preprocessing requires substantial …
Deep ehr: Chronic disease prediction using medical notes
Early detection of preventable diseases is important for better disease management,
improved interventions, and more efficient health-care resource allocation. Various machine …
improved interventions, and more efficient health-care resource allocation. Various machine …
Learning to exploit invariances in clinical time-series data using sequence transformer networks
Recently, researchers have started applying convolutional neural networks (CNNs) with one-
dimensional convolutions to clinical tasks involving time-series data. This is due, in part, to …
dimensional convolutions to clinical tasks involving time-series data. This is due, in part, to …
Improving IMU-based prediction of lower limb kinematics in natural environments using egocentric optical flow
We seek to predict knee and ankle motion using wearable sensors. These predictions could
serve as target trajectories for a lower limb prosthesis. In this manuscript, we investigate the …
serve as target trajectories for a lower limb prosthesis. In this manuscript, we investigate the …
EEG-based depression detection using convolutional neural network with demographic attention mechanism
Electroencephalography (EEG)-based depression detection has become a hot topic in the
development of biomedical engineering. However, the complexity and nonstationarity of …
development of biomedical engineering. However, the complexity and nonstationarity of …
Challenges in using ctDNA to achieve early detection of cancer
Early detection of cancer is a significant unmet clinical need. Improved technical ability to
detect circulating tumor-derived DNA (ctDNA) in the cell-free DNA (cfDNA) component of …
detect circulating tumor-derived DNA (ctDNA) in the cell-free DNA (cfDNA) component of …
A perspective on wearable sensor measurements and data science for Parkinson's disease
Miniaturized and wearable sensor-based measurements enable the assessment of
Parkinson's disease (PD) motor-related features like never before and hold great promise as …
Parkinson's disease (PD) motor-related features like never before and hold great promise as …
Referral paths in the US physician network
In this paper, we analyze the millions of referral paths of patients' interactions with the
healthcare system for each year in the 2006-2011 time period and relate them to US …
healthcare system for each year in the 2006-2011 time period and relate them to US …