Computerized Systems for Diagnosis and Treatment of COVID-19
- Indbinding:
- Hardback
- Sideantal:
- 216
- Udgivet:
- 27. juni 2023
- Udgave:
- 23001
- Størrelse:
- 160x15x241 mm.
- Vægt:
- 533 g.
- 8-11 hverdage.
- 17. januar 2025
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- Ingen binding
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Ingen binding og kan opsiges når som helst.
- 1 valgfrit digitalt ugeblad
- 20 timers lytning og læsning
- Adgang til 70.000+ titler
- Ingen binding
Abonnementet koster 75 kr./md.
Ingen binding og kan opsiges når som helst.
Beskrivelse af Computerized Systems for Diagnosis and Treatment of COVID-19
This book describes the application of signal and image processing technologies, artificial intelligence, and machine learning techniques to support Covid-19 diagnosis and treatment. The book focuses on two main applications: critical diagnosis requiring high precision and speed, and treatment of symptoms, including those affecting the cardiovascular and neurological systems.
The areas discussed in this book range from signal processing, time series analysis, and image segmentation to detection and classification. Technical approaches include deep learning, transfer learning, transformers, AutoML, and other machine learning techniques that can be considered not only for Covid-19 issues but also for different medical applications, with slight adjustments to the problem under study.
The Covid-19 pandemic has impacted the entire world and changed how societies and individuals interact. Due to the high infection and mortality rates, and the multiple consequences of the virusinfection in the human body, the challenges were vast and enormous. These necessitated the integration of different disciplines to address the problems. As a global response, researchers across academia and industry made several developments to provide computational solutions to support epidemiologic, managerial, and health/medical decisions. To that end, this book provides state-of-the-art information on the most advanced solutions.
The areas discussed in this book range from signal processing, time series analysis, and image segmentation to detection and classification. Technical approaches include deep learning, transfer learning, transformers, AutoML, and other machine learning techniques that can be considered not only for Covid-19 issues but also for different medical applications, with slight adjustments to the problem under study.
The Covid-19 pandemic has impacted the entire world and changed how societies and individuals interact. Due to the high infection and mortality rates, and the multiple consequences of the virusinfection in the human body, the challenges were vast and enormous. These necessitated the integration of different disciplines to address the problems. As a global response, researchers across academia and industry made several developments to provide computational solutions to support epidemiologic, managerial, and health/medical decisions. To that end, this book provides state-of-the-art information on the most advanced solutions.
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Bogen Computerized Systems for Diagnosis and Treatment of COVID-19 findes i følgende kategorier:
- Business og læring > Videnskab
- Lægevidenskab og sygepleje > Klinisk medicin og intern medicin > Medicinsk diagnose
- Lægevidenskab og sygepleje > Klinisk medicin og intern medicin > Sygdomme og lidelser
- Lægevidenskab og sygepleje > Medicinske discipliner > Terapi og lægemidler
- Lægevidenskab og sygepleje > Sygepleje og paramedicinske fag > Biomedicinsk teknik
- Matematik og naturvidenskab > Fysik > Anvendt fysik > Biofysik
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