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This book highlights the latest advances in the application of
artificial intelligence and data science in health care and
medicine. Featuring selected papers from the 2020 Health
Intelligence Workshop, held as part of the Association for the
Advancement of Artificial Intelligence (AAAI) Annual Conference, it
offers an overview of the issues, challenges, and opportunities in
the field, along with the latest research findings. Discussing a
wide range of practical applications, it makes the emerging topics
of digital health and explainable AI in health care and medicine
accessible to a broad readership. The availability of explainable
and interpretable models is a first step toward building a culture
of transparency and accountability in health care. As such, this
book provides information for scientists, researchers, students,
industry professionals, public health agencies, and NGOs interested
in the theory and practice of computational models of public and
personalized health intelligence.
This book highlights the latest advances in the application of
artificial intelligence to healthcare and medicine. It gathers
selected papers presented at the 2019 Health Intelligence workshop,
which was jointly held with the Association for the Advancement of
Artificial Intelligence (AAAI) annual conference, and presents an
overview of the central issues, challenges, and potential
opportunities in the field, along with new research results. By
addressing a wide range of practical applications, the book makes
the emerging topics of digital health and precision medicine
accessible to a broad readership. Further, it offers an essential
source of information for scientists, researchers, students,
industry professionals, national and international public health
agencies, and NGOs interested in the theory and practice of digital
and precision medicine and health, with an emphasis on risk factors
in connection with disease prevention, diagnosis, and intervention.
This book aims to highlight the latest achievements in the use of
AI and multimodal artificial intelligence in biomedicine and
healthcare. Multimodal AI is a relatively new concept in AI, in
which different types of data (e.g. text, image, video, audio, and
numerical data) are collected, integrated, and processed through a
series of intelligence processing algorithms to improve
performance. The edited volume contains selected papers presented
at the 2022 Health Intelligence workshop and the associated Data
Hackathon/Challenge, co-located with the Thirty-Sixth Association
for the Advancement of Artificial Intelligence (AAAI) conference,
and presents an overview of the issues, challenges, and potentials
in the field, along with new research results. This book provides
information for researchers, students, industry professionals,
clinicians, and public health agencies interested in the
applications of AI and Multimodal AI in public health and medicine.
This book aims to highlight the latest achievements in the use of
AI in personalized medicine and healthcare delivery. The edited
book contains selected papers presented at the 2023 Health
Intelligence workshop, co-located with the Thirty-Seven Association
for the Advancement of Artificial Intelligence (AAAI) conference,
and presents an overview of the issues, challenges, and potentials
in the field, along with new research results. This book provides
information for researchers, students, industry professionals,
clinicians, and public health agencies interested in the
applications of AI in medicine and public health. Â
This book highlights the latest advances in the application of
artificial intelligence and data science in health care and
medicine. Featuring selected papers from the 2020 Health
Intelligence Workshop, held as part of the Association for the
Advancement of Artificial Intelligence (AAAI) Annual Conference, it
offers an overview of the issues, challenges, and opportunities in
the field, along with the latest research findings. Discussing a
wide range of practical applications, it makes the emerging topics
of digital health and explainable AI in health care and medicine
accessible to a broad readership. The availability of explainable
and interpretable models is a first step toward building a culture
of transparency and accountability in health care. As such, this
book provides information for scientists, researchers, students,
industry professionals, public health agencies, and NGOs interested
in the theory and practice of computational models of public and
personalized health intelligence.
This book highlights the latest advances in the application of
artificial intelligence to healthcare and medicine. It gathers
selected papers presented at the 2019 Health Intelligence workshop,
which was jointly held with the Association for the Advancement of
Artificial Intelligence (AAAI) annual conference, and presents an
overview of the central issues, challenges, and potential
opportunities in the field, along with new research results. By
addressing a wide range of practical applications, the book makes
the emerging topics of digital health and precision medicine
accessible to a broad readership. Further, it offers an essential
source of information for scientists, researchers, students,
industry professionals, national and international public health
agencies, and NGOs interested in the theory and practice of digital
and precision medicine and health, with an emphasis on risk factors
in connection with disease prevention, diagnosis, and intervention.
This book aims to highlight the latest achievements in the use of
artificial intelligence for digital disease surveillance, pandemic
intelligence, as well as public and clinical health surveillance.
The edited book contains selected papers presented at the 2021
Health Intelligence workshop, co-located with the Association for
the Advancement of Artificial Intelligence (AAAI) annual
conference, and presents an overview of the issues, challenges, and
potentials in the field, along with new research results. While
disease surveillance has always been a crucial process, the recent
global health crisis caused by COVID-19 has once again highlighted
our dependence on intelligent surveillance infrastructures that
provide support for making sound and timely decisions. This book
provides information for researchers, students, industry
professionals, and public health agencies interested in the
applications of AI in population health and personalized medicine.
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