Deep Learning Current and Emerging Applications in Medicine and Technology

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Deep Learning Current and Emerging Applications in Medicine and Technology

Abstract: Machine learning is enabling researchers to analyze and understand increasingly complex physical and biological phenomena in traditional fields such as biology, medicine, and engineering and emerging fields like synthetic biology, automated chemical synthesis, and bio-manufacturing. These fields require new paradigms towards understanding increasingly complex data and converting such data into medical products and services for patients. The move towards deep learning and complex modeling is an attempt to bridge the gap between acquiring massive quantities of complex data, and converting such data into practical insights. Here, we provide an overview of the field of machine learning, its current applications and needs in traditional and emerging fields, and discuss an illustrative attempt at using deep learning to understand swarm behavior of molecular shuttles. Existing system: Although supervised ANNs have been successfully used in many biomedical applications, including DNA motif discovery, medical diagnosis, cancer identification and gene classification using DNA microarray gene expression


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