c't Working with AI

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Author :
Publisher : Heise Medien
ISBN 13 : 3957883970
Total Pages : 161 pages
Book Rating : 4.9/5 (578 download)

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Book Synopsis c't Working with AI by : c't-Redaktion

Download or read book c't Working with AI written by c't-Redaktion and published by Heise Medien. This book was released on 2024-01-24 with total page 161 pages. Available in PDF, EPUB and Kindle. Book excerpt: The special issue of c't KI-Praxis provides tests and practical instructions for working with chatbots. It explains why language models make mistakes and how they can be minimised. This not only helps when you send questions and orders to one of the chatbots offered online. If you do not want to or are not allowed to use the cloud services for data protection reasons, for example, you can also set up your own voice AI. The c't editorial team explains where to find a suitable voice model, how to host it locally and which service providers can host it. The fact that generative AI is becoming increasingly productive harbours both opportunities and risks. Suitable rules for the use of AI in schools, training and at work help to exploit opportunities and minimise risks.

Artificial Intelligence in Healthcare

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Publisher : Academic Press
ISBN 13 : 0128184396
Total Pages : 385 pages
Book Rating : 4.1/5 (281 download)

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Book Synopsis Artificial Intelligence in Healthcare by : Adam Bohr

Download or read book Artificial Intelligence in Healthcare written by Adam Bohr and published by Academic Press. This book was released on 2020-06-21 with total page 385 pages. Available in PDF, EPUB and Kindle. Book excerpt: Artificial Intelligence (AI) in Healthcare is more than a comprehensive introduction to artificial intelligence as a tool in the generation and analysis of healthcare data. The book is split into two sections where the first section describes the current healthcare challenges and the rise of AI in this arena. The ten following chapters are written by specialists in each area, covering the whole healthcare ecosystem. First, the AI applications in drug design and drug development are presented followed by its applications in the field of cancer diagnostics, treatment and medical imaging. Subsequently, the application of AI in medical devices and surgery are covered as well as remote patient monitoring. Finally, the book dives into the topics of security, privacy, information sharing, health insurances and legal aspects of AI in healthcare. Highlights different data techniques in healthcare data analysis, including machine learning and data mining Illustrates different applications and challenges across the design, implementation and management of intelligent systems and healthcare data networks Includes applications and case studies across all areas of AI in healthcare data

Artificial Intelligence in Cardiothoracic Imaging

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Publisher : Springer Nature
ISBN 13 : 3030920879
Total Pages : 582 pages
Book Rating : 4.0/5 (39 download)

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Book Synopsis Artificial Intelligence in Cardiothoracic Imaging by : Carlo N. De Cecco

Download or read book Artificial Intelligence in Cardiothoracic Imaging written by Carlo N. De Cecco and published by Springer Nature. This book was released on 2022-04-22 with total page 582 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book provides an overview of current and potential applications of artificial intelligence (AI) for cardiothoracic imaging. Most AI systems used in medical imaging are data-driven and based on supervised machine learning. Clinicians and AI specialists can contribute to the development of an AI system in different ways, focusing on their respective strengths. Unfortunately, communication between these two sides is far from fluent and, from time to time, they speak completely different languages. Mutual understanding and collaboration are imperative because the medical system is based on physicians’ ability to take well-informed decisions and convey their reasoning to colleagues and patients. This book offers unique insights and informative chapters on the use of AI for cardiothoracic imaging from both the technical and clinical perspective. It is also a single comprehensive source that provides a complete overview of the entire process of the development and use of AI in clinical practice for cardiothoracic imaging. The book contains chapters focused on cardiac and thoracic applications as well more general topics on the potentials and pitfalls of AI in medical imaging. Separate chapters will discuss the valorization, regulations surrounding AI, cost-effectiveness, and future perspective for different countries and continents. This book is an ideal guide for clinicians (radiologists, cardiologists etc.) interested in working with AI, whether in a research setting developing new AI applications or in a clinical setting using AI algorithms in clinical practice. The book also provides clinical insights and overviews for AI specialists who want to develop clinically relevant AI applications.

Working with AI

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Publisher : MIT Press
ISBN 13 : 0262047241
Total Pages : 312 pages
Book Rating : 4.2/5 (62 download)

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Book Synopsis Working with AI by : Thomas H. Davenport

Download or read book Working with AI written by Thomas H. Davenport and published by MIT Press. This book was released on 2022-09-27 with total page 312 pages. Available in PDF, EPUB and Kindle. Book excerpt: Two management and technology experts show that AI is not a job destroyer, exploring worker-AI collaboration in real-world work settings. This book breaks through both the hype and the doom-and-gloom surrounding automation and the deployment of artificial intelligence-enabled—“smart”—systems at work. Management and technology experts Thomas Davenport and Steven Miller show that, contrary to widespread predictions, prescriptions, and denunciations, AI is not primarily a job destroyer. Rather, AI changes the way we work—by taking over some tasks but not entire jobs, freeing people to do other, more important and more challenging work. By offering detailed, real-world case studies of AI-augmented jobs in settings that range from finance to the factory floor, Davenport and Miller also show that AI in the workplace is not the stuff of futuristic speculation. It is happening now to many companies and workers. These cases include a digital system for life insurance underwriting that analyzes applications and third-party data in real time, allowing human underwriters to focus on more complex cases; an intelligent telemedicine platform with a chat-based interface; a machine learning-system that identifies impending train maintenance issues by analyzing diesel fuel samples; and Flippy, a robotic assistant for fast food preparation. For each one, Davenport and Miller describe in detail the work context for the system, interviewing job incumbents, managers, and technology vendors. Short “insight” chapters draw out common themes and consider the implications of human collaboration with smart systems.

Operating AI

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Publisher : John Wiley & Sons
ISBN 13 : 1119833213
Total Pages : 237 pages
Book Rating : 4.1/5 (198 download)

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Book Synopsis Operating AI by : Ulrika Jagare

Download or read book Operating AI written by Ulrika Jagare and published by John Wiley & Sons. This book was released on 2022-04-19 with total page 237 pages. Available in PDF, EPUB and Kindle. Book excerpt: A holistic and real-world approach to operationalizing artificial intelligence in your company In Operating AI, Director of Technology and Architecture at Ericsson AB, Ulrika Jägare, delivers an eye-opening new discussion of how to introduce your organization to artificial intelligence by balancing data engineering, model development, and AI operations. You'll learn the importance of embracing an AI operational mindset to successfully operate AI and lead AI initiatives through the entire lifecycle, including key areas such as; data mesh, data fabric, aspects of security, data privacy, data rights and IPR related to data and AI models. In the book, you’ll also discover: How to reduce the risk of entering bias in our artificial intelligence solutions and how to approach explainable AI (XAI) The importance of efficient and reproduceable data pipelines, including how to manage your company's data An operational perspective on the development of AI models using the MLOps (Machine Learning Operations) approach, including how to deploy, run and monitor models and ML pipelines in production using CI/CD/CT techniques, that generates value in the real world Key competences and toolsets in AI development, deployment and operations What to consider when operating different types of AI business models With a strong emphasis on deployment and operations of trustworthy and reliable AI solutions that operate well in the real world—and not just the lab—Operating AI is a must-read for business leaders looking for ways to operationalize an AI business model that actually makes money, from the concept phase to running in a live production environment.

Using AI to Mitigate Variability in CT Scans

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Publisher :
ISBN 13 :
Total Pages : 127 pages
Book Rating : 4.:/5 (129 download)

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Book Synopsis Using AI to Mitigate Variability in CT Scans by : Leihao Wei

Download or read book Using AI to Mitigate Variability in CT Scans written by Leihao Wei and published by . This book was released on 2021 with total page 127 pages. Available in PDF, EPUB and Kindle. Book excerpt: Computed tomography (CT) plays an integral role in diagnosing and screening various types of diseases. A growing number of machine learning (ML) models have been developed for prediction and classification that utilize derived quantitative image features, thanks in part to the availability of large CT datasets and advances in medical image analysis. Researchers have classified disease severity using quantitative image features such as hand-crafted radiomic and deep features. Despite reporting high classification performance, these models typically do not generalize well. Variations in the appearance of CT scans caused by differences in acquisition and reconstruction parameters adversely impact the reproducibility of quantitative image features and the performance of machine learning algorithms. As a result, few ML algorithms have been used in clinical settings. Mitigating the effects of varying CT acquisition and reconstruction parameters is a challenging inverse problem. Recent advances in deep learning have demonstrated that image translation and denoising models can achieve high per-pixel similarity metrics when compared to a target image. The purpose of this dissertation is to develop and evaluate two conditional generative models that mitigate the effects of working with CT scans acquired and reconstructed with a variety of parameters. The overarching hypothesis is that improved image quality results in better consistency in nodule detection. In essence, these models attempt to learn the underlying conditional distribution on the normalized images (high-quality) given the un-normalized (low-quality) images. First, I propose a novel CT image normalization method based on a 3D conditional generative adversarial network (GAN) that utilizes a spectral-normalization algorithm. My model provides an end-to-end solution for normalizing scans acquired using different doses, slice thicknesses, and reconstruction kernels. This study demonstrates that the GAN is capable of mitigating the variability in image quality, quantitative image features, and lung nodule detection using an automated Computer-Aided-Detection (CAD) algorithm. I show that GAN improved perceptual similarity by 22%, and resulted in a 16% increase in features with a good level of agreement based on concordance correlation coefficient analysis. As a result, the performance of the existing nodule detection model was up to 75% more consistent with the reference scan. Second, I explore the use of a conditional normalizing flow-based model to incorporate uncertainty information during image translation. The model is capable of learning the explicit conditional density and generating several plausible image outputs, providing a means to reduce the distortions introduced by existing methods. I show that the normalizing flow method achieves a 6% improvement in perpetual quality compared to the state-of-the-art GAN-based method and the resulted agreement level of the detection task is improved by 13%. This dissertation compares these two generative approaches, identifying their strengths and limitations when normalizing heterogeneous CT images and mitigating the effect of different acquisition and reconstruction parameters on downstream clinical tasks.

Artificial Intelligence in Medicine

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Author :
Publisher : Academic Press
ISBN 13 : 0128212586
Total Pages : 570 pages
Book Rating : 4.1/5 (282 download)

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Book Synopsis Artificial Intelligence in Medicine by : Lei Xing

Download or read book Artificial Intelligence in Medicine written by Lei Xing and published by Academic Press. This book was released on 2020-09-03 with total page 570 pages. Available in PDF, EPUB and Kindle. Book excerpt: Artificial Intelligence Medicine: Technical Basis and Clinical Applications presents a comprehensive overview of the field, ranging from its history and technical foundations, to specific clinical applications and finally to prospects. Artificial Intelligence (AI) is expanding across all domains at a breakneck speed. Medicine, with the availability of large multidimensional datasets, lends itself to strong potential advancement with the appropriate harnessing of AI. The integration of AI can occur throughout the continuum of medicine: from basic laboratory discovery to clinical application and healthcare delivery. Integrating AI within medicine has been met with both excitement and scepticism. By understanding how AI works, and developing an appreciation for both limitations and strengths, clinicians can harness its computational power to streamline workflow and improve patient care. It also provides the opportunity to improve upon research methodologies beyond what is currently available using traditional statistical approaches. On the other hand, computers scientists and data analysts can provide solutions, but often lack easy access to clinical insight that may help focus their efforts. This book provides vital background knowledge to help bring these two groups together, and to engage in more streamlined dialogue to yield productive collaborative solutions in the field of medicine. Provides history and overview of artificial intelligence, as narrated by pioneers in the field Discusses broad and deep background and updates on recent advances in both medicine and artificial intelligence that enabled the application of artificial intelligence Addresses the ever-expanding application of this novel technology and discusses some of the unique challenges associated with such an approach

Deep Learning in Medical Image Analysis and Multimodal Learning for Clinical Decision Support

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Author :
Publisher : Springer
ISBN 13 : 3319675583
Total Pages : 399 pages
Book Rating : 4.3/5 (196 download)

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Book Synopsis Deep Learning in Medical Image Analysis and Multimodal Learning for Clinical Decision Support by : M. Jorge Cardoso

Download or read book Deep Learning in Medical Image Analysis and Multimodal Learning for Clinical Decision Support written by M. Jorge Cardoso and published by Springer. This book was released on 2017-09-07 with total page 399 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book constitutes the refereed joint proceedings of the Third International Workshop on Deep Learning in Medical Image Analysis, DLMIA 2017, and the 6th International Workshop on Multimodal Learning for Clinical Decision Support, ML-CDS 2017, held in conjunction with the 20th International Conference on Medical Imaging and Computer-Assisted Intervention, MICCAI 2017, in Québec City, QC, Canada, in September 2017. The 38 full papers presented at DLMIA 2017 and the 5 full papers presented at ML-CDS 2017 were carefully reviewed and selected. The DLMIA papers focus on the design and use of deep learning methods in medical imaging. The ML-CDS papers discuss new techniques of multimodal mining/retrieval and their use in clinical decision support.

Artificial Intelligence in Medical Imaging

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Publisher : Springer
ISBN 13 : 3319948784
Total Pages : 373 pages
Book Rating : 4.3/5 (199 download)

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Book Synopsis Artificial Intelligence in Medical Imaging by : Erik R. Ranschaert

Download or read book Artificial Intelligence in Medical Imaging written by Erik R. Ranschaert and published by Springer. This book was released on 2019-01-29 with total page 373 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book provides a thorough overview of the ongoing evolution in the application of artificial intelligence (AI) within healthcare and radiology, enabling readers to gain a deeper insight into the technological background of AI and the impacts of new and emerging technologies on medical imaging. After an introduction on game changers in radiology, such as deep learning technology, the technological evolution of AI in computing science and medical image computing is described, with explanation of basic principles and the types and subtypes of AI. Subsequent sections address the use of imaging biomarkers, the development and validation of AI applications, and various aspects and issues relating to the growing role of big data in radiology. Diverse real-life clinical applications of AI are then outlined for different body parts, demonstrating their ability to add value to daily radiology practices. The concluding section focuses on the impact of AI on radiology and the implications for radiologists, for example with respect to training. Written by radiologists and IT professionals, the book will be of high value for radiologists, medical/clinical physicists, IT specialists, and imaging informatics professionals.

The Future of Work

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Publisher : Brookings Institution Press
ISBN 13 : 0815732945
Total Pages : 223 pages
Book Rating : 4.8/5 (157 download)

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Book Synopsis The Future of Work by : Darrell M. West

Download or read book The Future of Work written by Darrell M. West and published by Brookings Institution Press. This book was released on 2018-05-15 with total page 223 pages. Available in PDF, EPUB and Kindle. Book excerpt: Looking for ways to handle the transition to a digital economy Robots, artificial intelligence, and driverless cars are no longer things of the distant future. They are with us today and will become increasingly common in coming years, along with virtual reality and digital personal assistants. As these tools advance deeper into everyday use, they raise the question—how will they transform society, the economy, and politics? If companies need fewer workers due to automation and robotics, what happens to those who once held those jobs and don't have the skills for new jobs? And since many social benefits are delivered through jobs, how are people outside the workforce for a lengthy period of time going to earn a living and get health care and social benefits? Looking past today's headlines, political scientist and cultural observer Darrell M. West argues that society needs to rethink the concept of jobs, reconfigure the social contract, move toward a system of lifetime learning, and develop a new kind of politics that can deal with economic dislocations. With the U.S. governance system in shambles because of political polarization and hyper-partisanship, dealing creatively with the transition to a fully digital economy will vex political leaders and complicate the adoption of remedies that could ease the transition pain. It is imperative that we make major adjustments in how we think about work and the social contract in order to prevent society from spiraling out of control. This book presents a number of proposals to help people deal with the transition from an industrial to a digital economy. We must broaden the concept of employment to include volunteering and parenting and pay greater attention to the opportunities for leisure time. New forms of identity will be possible when the "job" no longer defines people's sense of personal meaning, and they engage in a broader range of activities. Workers will need help throughout their lifetimes to acquire new skills and develop new job capabilities. Political reforms will be necessary to reduce polarization and restore civility so there can be open and healthy debate about where responsibility lies for economic well-being. This book is an important contribution to a discussion about tomorrow—one that needs to take place today.

Annual Reports of the Connecticut Agricultural Experiment Station

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Publisher :
ISBN 13 :
Total Pages : 1134 pages
Book Rating : 4.:/5 (33 download)

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Book Synopsis Annual Reports of the Connecticut Agricultural Experiment Station by : Connecticut Agricultural Experiment Station

Download or read book Annual Reports of the Connecticut Agricultural Experiment Station written by Connecticut Agricultural Experiment Station and published by . This book was released on 1908 with total page 1134 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Report of the State Entomologist of Connecticut for the Year

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Publisher :
ISBN 13 :
Total Pages : 444 pages
Book Rating : 4.:/5 (319 download)

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Book Synopsis Report of the State Entomologist of Connecticut for the Year by : Connecticut. Office of State Entomologist

Download or read book Report of the State Entomologist of Connecticut for the Year written by Connecticut. Office of State Entomologist and published by . This book was released on 1906 with total page 444 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Annual Report of the Connecticut Agricultural Experiment Station for the Year Ending ...

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Author :
Publisher :
ISBN 13 :
Total Pages : 444 pages
Book Rating : 4.:/5 (6 download)

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Book Synopsis Annual Report of the Connecticut Agricultural Experiment Station for the Year Ending ... by : Connecticut Agricultural Experiment Station

Download or read book Annual Report of the Connecticut Agricultural Experiment Station for the Year Ending ... written by Connecticut Agricultural Experiment Station and published by . This book was released on 1906 with total page 444 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Artificial Intelligence and Precision Oncology

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Publisher : Springer Nature
ISBN 13 : 3031215060
Total Pages : 317 pages
Book Rating : 4.0/5 (312 download)

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Book Synopsis Artificial Intelligence and Precision Oncology by : Zodwa Dlamini

Download or read book Artificial Intelligence and Precision Oncology written by Zodwa Dlamini and published by Springer Nature. This book was released on 2023-01-21 with total page 317 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book highlights the use of artificial intelligence (AI), big data and precision oncology for medical decision making in cancer screening, diagnosis, prognosis and treatment. Precision oncology has long been thought of as ideal for the management and treatment of cancer. This strategy promises to revolutionize the treatment, control, and prevention of cancer by tailoring tests, treatments and predictions to specific individuals or population groups. In order to accomplish these goals, vast amounts of patient or population group specific data needs to be integrated and analysed to be able to identify key patterns or features which can be used to define or characterize the disease or the response to the disease in these individuals. These patterns or features can be as varied as molecular patterns or features in medical images. This level of data analysis and integration can only be achieved through the use of AI. The book is divided into three parts starting with a section on the use of artificial intelligence for screening, diagnosis and monitoring in precision oncology. The second part: Artificial intelligence and Omics in precision oncology, highlights the use of AI and epigenetics, metabolomics, microbiomics in precision oncology. The third part covers artificial intelligence in cancer therapy and its clinical applications. It also highlights the use of AI tools for risk prediction, early detection, diagnosis and accurate prognosis. This book, written by experts in the field from academia and industry, will appeal to cancer researchers, clinical oncologists, pathologists, medical students, academic teaching staff and medical residents interested in cancer research as well as those specialising as clinical oncologists.

Healthcare Solutions Using Machine Learning and Informatics

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Publisher : CRC Press
ISBN 13 : 1000765482
Total Pages : 267 pages
Book Rating : 4.0/5 (7 download)

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Book Synopsis Healthcare Solutions Using Machine Learning and Informatics by : Punit Gupta

Download or read book Healthcare Solutions Using Machine Learning and Informatics written by Punit Gupta and published by CRC Press. This book was released on 2022-10-21 with total page 267 pages. Available in PDF, EPUB and Kindle. Book excerpt: Healthcare Solutions Using Machine Learning and Informatics covers novel and innovative solutions for healthcare that apply machine learning and biomedical informatics technology. The healthcare sector is one of the most critical in society. This book presents a series of artificial intelligence, machine learning, and intelligent IoT-based solutions for medical image analysis, medical big-data processing, and disease predictions. Machine learning and artificial intelligence use cases in healthcare presented in the book give researchers, practitioners, and students a wide range of practical examples of cross-domain convergence. The wide variety of topics covered include: Artificial Intelligence in healthcare Machine learning solutions for such disease as diabetes, arthritis, cardiovascular disease, and COVID-19 Big data analytics solutions for healthcare data processing Reliable biomedical applications using AI models Intelligent IoT in healthcare The book explains fundamental concepts as well as the advanced use cases, illustrating how to apply emerging technologies such as machine learning, AI models, and data informatics into practice to tackle challenges in the field of healthcare with real-world scenarios. Chapters contributed by noted academicians and professionals examine various solutions, frameworks, applications, case studies, and best practices in the healthcare domain.

Artificial Intelligence and Simulation

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Publisher : Springer Science & Business Media
ISBN 13 : 354024476X
Total Pages : 725 pages
Book Rating : 4.5/5 (42 download)

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Book Synopsis Artificial Intelligence and Simulation by : Tag G. Kim

Download or read book Artificial Intelligence and Simulation written by Tag G. Kim and published by Springer Science & Business Media. This book was released on 2005-01-31 with total page 725 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book constitutes the refereed post-proceedings of the 13th International Conference on AI, Simulation, and Planning in High Autonomy Systems, AIS 2004, held in Jeju Island, Korea in October 2004. The 74 revised full papers presented together with 2 invited keynote papers were carefully reviewed and selected from 170 submissions; after the conference, the papers went through another round of revision. The papers are organized in topical sections on modeling and simulation methodologies, intelligent control, computer and network security, HLA and simulator interoperation, manufacturing, agent-based modeling, DEVS modeling and simulation, parallel and distributed modeling and simulation, mobile computer networks, Web-based simulation and natural systems, modeling and simulation environments, AI and simulation, component-based modeling, watermarking and semantics, graphics, visualization and animation, and business modeling.

Law and Artificial Intelligence

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Publisher : Springer Nature
ISBN 13 : 9462655235
Total Pages : 566 pages
Book Rating : 4.4/5 (626 download)

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Book Synopsis Law and Artificial Intelligence by : Bart Custers

Download or read book Law and Artificial Intelligence written by Bart Custers and published by Springer Nature. This book was released on 2022-07-05 with total page 566 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book provides an in-depth overview of what is currently happening in the field of Law and Artificial Intelligence (AI). From deep fakes and disinformation to killer robots, surgical robots, and AI lawmaking, the many and varied contributors to this volume discuss how AI could and should be regulated in the areas of public law, including constitutional law, human rights law, criminal law, and tax law, as well as areas of private law, including liability law, competition law, and consumer law. Aimed at an audience without a background in technology, this book covers how AI changes these areas of law as well as legal practice itself. This scholarship should prove of value to academics in several disciplines (e.g., law, ethics, sociology, politics, and public administration) and those who may find themselves confronted with AI in the course of their work, particularly people working within the legal domain (e.g., lawyers, judges, law enforcement officers, public prosecutors, lawmakers, and policy advisors). Bart Custers is Professor of Law and Data Science at eLaw - Center for Law and Digital Technologies at Leiden University in the Netherlands. Eduard Fosch-Villaronga is Assistant Professor at eLaw - Center for Law and Digital Technologies at Leiden University in the Netherlands.