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Titlebook: Artificial Intelligence/Machine Learning in Nuclear Medicine and Hybrid Imaging; Patrick Veit-Haibach,Ken Herrmann Book 2022 The Editor(s)

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Introduction to Optimal Control,ecognized that AI will completely transform the field. This chapter provides a general overview of some of the advancements in AI techniques, as well as their historical and current uses in medical imaging. It also highlights some areas of emerging research and provides a glimpse of the potential fu
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Implementing Digital Real-Time Servos, of a normal biological process, a disease, or a response to a therapeutic intervention. Biomarkers have been shown to be useful as a complement to the traditional radiological diagnosis either to detect a specific disorder or lesion; quantify its biological situation; evaluate its progression; stra
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,Rückkopplung hat alles erschaffen,ological biobanks has not been still performed. Imaging biobanks are organized databases of medical images and associated imaging biomarkers shared among multiple researchers, linked to other biorepositories. Artificial Intelligence, Machine Learning, and more specifically, the use of convolutional
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Introduction to Device modeling,ents in the field of medical imaging. Traditional, quantitative image analysis has been indispensable to investigate clinical significance of nuclear medicine molecular imaging in patients with various neurodegenerative diseases. Of the AI techniques, deep learning is consisted of the artificial neu
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Frequency Compensation Techniques,tial of AI in the field of nuclear medicine, and some have reached a level that warrants evaluation in clinical trials. Therefore, this chapter summarizes the application of AI to various nuclear medicine imaging modalities and therapies in the context of oncology, including positron emission tomogr
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Single Transistor Configurations,essing and reconstruction, demonstrated the feasibility of reducing radiation exposure, and facilitated optimal image segmentation. Clinically, AI was shown to improve the diagnosis of obstructive coronary artery disease and to optimally predict adverse events. In this chapter we present the latest
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Single Transistor Configurations,ccessfully treating multi-genic diseases requires systems-oriented research approach focused on the implication of disease-perturbed molecular interaction networks and pathways. These networks represent crucial relationships among genes and proteins, their mutations, chromosomal aberrations, microRN
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