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Human and Machine Learning - - Bog - Springer International Publishing AG - Plusbog.dk

Human and Machine Learning - - Bog - Springer International Publishing AG - Plusbog.dk

With an evolutionary advancement of Machine Learning (ML) algorithms, a rapid increase of data volumes and a significant improvement of computation powers, machine learning becomes hot in different applications. However, because of the nature of "black-box" in ML methods, ML still needs to be interpreted to link human and machine learning for transparency and user acceptance of delivered solutions. This edited book addresses such links from the perspectives of visualisation, explanation, trustworthiness and transparency. The book establishes the link between human and machine learning by exploring transparency in machine learning, visual explanation of ML processes, algorithmic explanation of ML models, human cognitive responses in ML-based decision making, human evaluation of machine learning and domain knowledge in transparent ML applications. This is the first book of its kind to systematically understand the current active research activities and outcomes related to human and machine learning. The book will not only inspire researchers to passionately develop new algorithms incorporating human for human-centred ML algorithms, resulting in the overall advancement of ML, but also help ML practitioners proactively use ML outputs for informative and trustworthy decision making. This book is intended for researchers and practitioners involved with machine learning and its applications. The book will especially benefit researchers in areas like artificial intelligence, decision support systems and human-computer interaction.

DKK 158.00
1

Machine Learning in Radiation Oncology - - Bog - Springer International Publishing AG - Plusbog.dk

Cyber Security Cryptography and Machine Learning - - Bog - Springer International Publishing AG - Plusbog.dk

Machine Learning Meets Medical Imaging - - Bog - Springer International Publishing AG - Plusbog.dk

Machine Learning and Interpretation in Neuroimaging - - Bog - Springer International Publishing AG - Plusbog.dk

Multimodal Analyses enabling Artificial Agents in Human-Machine Interaction - - Bog - Springer International Publishing AG - Plusbog.dk

The Ascent of GIM, the Global Intelligent Machine - Teun Koetsier - Bog - Springer International Publishing AG - Plusbog.dk

Digital Interaction and Machine Intelligence - - Bog - Springer International Publishing AG - Plusbog.dk

Machine Learning and Its Application to Reacting Flows - - Bog - Springer International Publishing AG - Plusbog.dk

Machine Learning and Its Application to Reacting Flows - - Bog - Springer International Publishing AG - Plusbog.dk

This open access book introduces and explains machine learning (ML) algorithms and techniques developed for statistical inferences on a complex process or system and their applications to simulations of chemically reacting turbulent flows. These two fields, ML and turbulent combustion, have large body of work and knowledge on their own, and this book brings them together and explain the complexities and challenges involved in applying ML techniques to simulate and study reacting flows. This is important as to the world''s total primary energy supply (TPES), since more than 90% of this supply is through combustion technologies and the non-negligible effects of combustion on environment. Although alternative technologies based on renewable energies are coming up, their shares for the TPES is are less than 5% currently and one needs a complete paradigm shift to replace combustion sources. Whether this is practical or not is entirely a different question, and an answer to this question depends on the respondent. However, a pragmatic analysis suggests that the combustion share to TPES is likely to be more than 70% even by 2070. Hence, it will be prudent to take advantage of ML techniques to improve combustion sciences and technologies so that efficient and "greener" combustion systems that are friendlier to the environment can be designed. The book covers the current state of the art in these two topics and outlines the challenges involved, merits and drawbacks of using ML for turbulent combustion simulations including avenues which can be explored to overcome the challenges. The required mathematical equations and backgrounds are discussed with ample references for readers to find further detail if they wish. This book is unique since there is not any book with similar coverage of topics, ranging from big data analysis and machine learning algorithm to their applications for combustion science and system design for energy generation.

DKK 349.00
1

Multiple Classifier Systems - - Bog - Springer International Publishing AG - Plusbog.dk

Introduction to Data Science - Santi Segui - Bog - Springer International Publishing AG - Plusbog.dk

Scalable Pattern Recognition Algorithms - Sushmita Paul - Bog - Springer International Publishing AG - Plusbog.dk