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In businesses and organizations, understanding the social reality
of individuals, groups, and cultures allows for in-depth
understanding and rich analysis of multiple research areas to
improve practices. Qualitative research provides important insight
into the interactions of the workplace. Qualitative Techniques for
Workplace Data Analysis is an essential reference source that
discusses the qualitative methods used to analyze workplace data,
as well as what measures should be adopted to ensure the
credibility and dependability of qualitative findings in the
workplace. Featuring research on topics such as collection methods,
content analysis, and sampling, this book is ideally designed for
academicians, development practitioners, business managers, and
analytic professionals seeking coverage on quality measurement
techniques in the occupational settings of emerging markets.
Digital identity and access management (DIAM) systems are essential
to security frameworks for their ability to rapidly and
consistently confirm identities and to control individuals access
to resources and services. However, administering digital
identities and system access rights can be challenging even under
stable conditions. Digital Identity and Access Management:
Technologies and Frameworks explores important and emerging
advancements in DIAM systems. The book helps researchers and
practitioners in digital identity management to generate innovative
answers to an assortment of problems, as system managers are faced
with major organizational, economic and market changes and are also
expected to increase reach and ease of access to users across
cyberspace while guaranteeing the reliability and privacy of highly
sensitive data.
Data collection allows today's businesses to cater to each
customer's individual needs and provides a necessary edge in a
competitive market. However, any breach in confidentiality can
cause serious consequences for both the consumer and the company.
The Handbook of Research on Emerging Developments in Data Privacy
brings together new ideas on how to deal with potential leaks of
valuable customer information. Highlighting the legal aspects of
identity protection, trust and security, and detection techniques,
this comprehensive work is a valuable resource for any business,
legal, or technology professional looking to improve information
security within their organization.
Organizations are increasingly relying on electronic information to
conduct business, which has caused the amount of personal
information to grow exponentially. Threats, Countermeasures, and
Advances in Applied Information Security addresses the fact that
managing information security program while effectively managing
risks has never been so critical. This book contains 24 chapters on
the most relevant and important issues and advances in applied
information security management. The chapters are authored by
leading researchers and practitioners in the field of information
security from across the globe. The chapters represent emerging
threats and countermeasures for effective management of information
security at organizations.
"More often than not, it is becoming increasingly evident that the
weakest links in the information-security chain are the people. Due
an increase in information security threats, it is imperative for
organizations and professionals to learn more on the human nature
and social interactions behind those creating the problem. Social
and Human Elements of Information Security: Emerging Trends and
Countermeasures provides insightful, high-quality research into the
social and human aspects of information security. A comprehensive
source of the latest trends, issues, and findings in the field,
this book fills the missing gap in existing literature by bringing
together the most recent work from researchers in the fast and
evolving field of information security."
As the diffusion and use of technology applications have
accelerated in organizational and societal domains, behavioral and
social dynamics have inevitably created the potential for negative
as well as positive consequences and events associated with
technology. A pressing need within organizations and societies has
therefore emerged for robust, proactive information security
measures that can prevent as well as ameliorate breaches, attacks,
and abuses.""The Handbook of Research on Social and Organizational
Liabilities in Information Security"" offers a critical mass of
insightful, authoritative articles on the most salient contemporary
issues of managing social and human aspects of information
security. Aimed at providing immense scholarly value to
researchers, academicians, and practitioners in the area of
information technology and security, this landmark reference
collection provides estimable coverage of pertinent issues such as
employee surveillance, information security policies, and password
authentication.
Attacks on information systems and applications have become more
prevalent with new advances in technology. Management of security
and quick threat identification have become imperative aspects of
technological applications. Information Technology Risk Management
and Compliance in Modern Organizations is a pivotal reference
source featuring the latest scholarly research on the need for an
effective chain of information management and clear principles of
information technology governance. Including extensive coverage on
a broad range of topics such as compliance programs, data leak
prevention, and security architecture, this book is ideally
designed for IT professionals, scholars, researchers, and
academicians seeking current research on risk management and
compliance.
Highlights the importance and applications of Swarm Intelligence
and Machine learning in Healthcare industry. Elaborates Swarm
Intelligence and Machine Learning for Cancer Detection. Focuses on
applying Swarm Intelligence and Machine Learning for Heart Disease
detection and diagnosis. Explores of the concepts of machine
learning along with swarm intelligence techniques, along with
recent research developments in healthcare sectors. Investigates
how healthcare companies can leverage the tapestry of big data to
discover new business values. Provides a strong foundation for
Diabetic Retinopathy detection using Swarm and Evolutionary
algorithms.
Organizations, worldwide, have adopted practical and applied
approaches for mitigating risks and managing information security
program. Considering complexities of a large-scale, distributed IT
environments, security should be proactively planned for and
prepared ahead, rather than as used as reactions to changes in the
landscape. Strategic and Practical Approaches for Information
Security Governance: Technologies and Applied Solutions presents
high-quality research papers and practice articles on management
and governance issues in the field of information security. The
main focus of the book is to provide an organization with insights
into practical and applied solutions, frameworks, technologies and
practices on technological and organizational factors. The book
aims to be a collection of knowledge for professionals, scholars,
researchers and academicians working in this field that is fast
evolving and growing as an area of information assurance.
This book is a collection of peer-reviewed best selected research
papers presented at the First International Conference on Machine
Intelligence and Smart Systems 2020 (MISS 2020), organized during
September 24-25, 2020, in Gwalior, India. The book presents new
advances and research results in the fields of machine
intelligence, artificial intelligence and smart systems. It
includes main paradigms of machine intelligence algorithms, namely
(1) neural networks, (2) evolutionary computation, (3) swarm
intelligence, (4) fuzzy systems and (5) immunological computation.
This book is a collection of best selected research papers
presented at the International Conference on Communication and
Artificial Intelligence (ICCAI 2020), held in the Department of
Electronics & Communication Engineering, GLA University,
Mathura, India, during 17-18 September 2020. The primary focus of
the book is on the research information related to artificial
intelligence, networks, and smart systems applied in the areas of
industries, government sectors, and educational institutions
worldwide. Diverse themes with a central idea of sustainable
networking solutions are discussed in the book. The book presents
innovative work by leading academics, researchers, and experts from
industry.
Outlier (or anomaly) detection is a very broad field which has been
studied in the context of a large number of research areas like
statistics, data mining, sensor networks, environmental science,
distributed systems, spatio-temporal mining, etc. Initial research
in outlier detection focused on time series-based outliers (in
statistics). Since then, outlier detection has been studied on a
large variety of data types including high-dimensional data,
uncertain data, stream data, network data, time series data,
spatial data, and spatio-temporal data. While there have been many
tutorials and surveys for general outlier detection, we focus on
outlier detection for temporal data in this book. A large number of
applications generate temporal datasets. For example, in our
everyday life, various kinds of records like credit, personnel,
financial, judicial, medical, etc., are all temporal. This stresses
the need for an organized and detailed study of outliers with
respect to such temporal data. In the past decade, there has been a
lot of research on various forms of temporal data including
consecutive data snapshots, series of data snapshots and data
streams. Besides the initial work on time series, researchers have
focused on rich forms of data including multiple data streams,
spatio-temporal data, network data, community distribution data,
etc. Compared to general outlier detection, techniques for temporal
outlier detection are very different. In this book, we will present
an organized picture of both recent and past research in temporal
outlier detection. We start with the basics and then ramp up the
reader to the main ideas in state-of-the-art outlier detection
techniques. We motivate the importance of temporal outlier
detection and brief the challenges beyond usual outlier detection.
Then, we list down a taxonomy of proposed techniques for temporal
outlier detection. Such techniques broadly include statistical
techniques (like AR models, Markov models, histograms, neural
networks), distance- and density-based approaches, grouping-based
approaches (clustering, community detection), network-based
approaches, and spatio-temporal outlier detection approaches. We
summarize by presenting a wide collection of applications where
temporal outlier detection techniques have been applied to discover
interesting outliers. Table of Contents: Preface / Acknowledgments
/ Figure Credits / Introduction and Challenges / Outlier Detection
for Time Series and Data Sequences / Outlier Detection for Data
Streams / Outlier Detection for Distributed Data Streams / Outlier
Detection for Spatio-Temporal Data / Outlier Detection for Temporal
Network Data / Applications of Outlier Detection for Temporal Data
/ Conclusions and Research Directions / Bibliography / Authors'
Biographies
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Languages and Compilers for Parallel Computing - 13th International Workshop, LCPC 2000, Yorktown Heights, NY, USA, August 10-12, 2000, Revised Papers (Paperback, 2001 ed.)
Samuel P. Midkiff, Jose E. Moreira, Manish Gupta, Siddhartha Chatterjee, Jeanne Ferrante, …
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R1,622
Discovery Miles 16 220
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Ships in 10 - 15 working days
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This book constitutes the thoroughly refereed post-proceedings of the 13th International Workshop on Languages and Compilers for Parallel Computing, LCPC 2000, held in Yorktown Heights, NY, USA, in August 2000. The 22 revised full papers presented together with 5 posters were carefully selected during two rounds of reviewing and improvement. All current aspects of parallel processing are addressed with emphasis on issues in optimizing compilers, languages, and software environments in high-performance computing.
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Trends and Applications in Knowledge Discovery and Data Mining - PAKDD 2021 Workshops, WSPA, MLMEIN, SDPRA, DARAI, and AI4EPT, Delhi, India, May 11, 2021 Proceedings (Paperback, 1st ed. 2021)
Manish Gupta, Ganesh Ramakrishnan
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R1,709
Discovery Miles 17 090
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This book constitutes the refereed proceedings of five workshops
that were held in conjunction with the 25th Pacific-Asia Conference
on Knowledge Discovery and Data Mining, PAKDD 2021, in Delhi,
India, in May 2021. The 17 revised full papers presented were
carefully reviewed and selected from a total of 39 submissions..
The five workshops were as follows: Workshop on Smart and Precise
Agriculture (WSPA 2021) PAKDD 2021 Workshop on Machine Learning for
Measurement Informatics (MLMEIN 2021) The First Workshop and Shared
Task on Scope Detection of the Peer Review Articles (SDPRA 2021)
The First International Workshop on Data Assessment and Readiness
for AI (DARAI 2021) The First International Workshop on Artificial
Intelligence for Enterprise Process Transformation (AI4EPT 2021)
This book is a collection of best selected research papers
presented at the International Conference on Communication and
Artificial Intelligence (ICCAI 2021), held in the Department of
Electronics & Communication Engineering, GLA University,
Mathura, India, during 19-20 November 2021. The primary focus of
the book is on the research information related to artificial
intelligence, networks, and smart systems applied in the areas of
industries, government sectors, and educational institutions
worldwide. Diverse themes with a central idea of sustainable
networking solutions are discussed in the book. The book presents
innovative work by leading academics, researchers, and experts from
industry.
In businesses and organizations, understanding the social reality
of individuals, groups, and cultures allows for in-depth
understanding and rich analysis of multiple research areas to
improve practices. Qualitative research provides important insight
into the interactions of the workplace. Qualitative Techniques for
Workplace Data Analysis is an essential reference source that
discusses the qualitative methods used to analyze workplace data,
as well as what measures should be adopted to ensure the
credibility and dependability of qualitative findings in the
workplace. Featuring research on topics such as collection methods,
content analysis, and sampling, this book is ideally designed for
academicians, development practitioners, business managers, and
analytic professionals seeking coverage on quality measurement
techniques in the occupational settings of emerging markets.
Information retrieval with verbose natural language queries has
been generating a lot of interest in recent years. The focus of
many novel search applications has shifted from short keyword
queries to verbose queries. Examples include question answering
systems and dialogue systems, voice search on mobile devices, and
entity search engines like Facebook's Graph Search or Google's
Knowledge Graph. However, the performance of textbook information
retrieval techniques for such verbose queries is not as good as
that for their shorter counterparts. Thus, effective handling of
verbose queries has become a critical factor for adoption of
information retrieval techniques in this new breed of search
applications. Over the past decade, the information retrieval
community has deeply explored the problem of transforming natural
language verbose queries using operations like reduction,
weighting, expansion, reformulation and segmentation into more
effective structural representations. This is the first monograph
to provide a coherent and organized survey on this topic. It puts
together the various research pieces of the puzzle, provides a
comprehensive and structured overview of diverse proposed methods,
and lists several application scenarios where effective verbose
query processing can make a significant difference. Information
Retrieval with Verbose Queries is a very timely reference on this
important topic. It is entirely based on previously published
research and publicly available datasets and as such, it should
prove useful for both practitioners and academic researchers
interested in reproducing the reported results.
This book is a collection of peer-reviewed best selected research
papers presented at the Second International Conference on Machine
Intelligence and Smart Systems (MISS 2021), organized during
September 24-25, 2021, in Gwalior, India. The book presents new
advances and research results in the fields of machine
intelligence, artificial intelligence and smart systems. It
includes main paradigms of machine intelligence algorithms, namely
(1) neural networks, (2) evolutionary computation, (3) swarm
intelligence, (4) fuzzy systems and (5) immunological computation.
Scientists, engineers, academicians, technology developers,
researchers, students and government officials will find this book
useful in handling their complicated real-world issues by using
machine intelligence methodologies.
This unique volume shows how to tackle the challenges of diversity
in the workplace. It addresses the need to keep the workforce
engaged while taking into consideration the diverse backgrounds of
employees. The book explores 12 themes of workforce diversity and
culture, including differences of race, religion, gender,
sexuality, income class, education level, marital status,
generation/age, physical ability, and more. Focusing on the
benefits of engaging a diverse workforce, the volume considers the
issue through the different stages of the human resource process,
including recruitment, selection, performance appraisal, demand
forecasting, supply forecasting, job description and specification,
job analysis and evaluation, training and development, career
planning and development, succession planning, etc. Employing an
abundance of case studies, the volume enables readers to comprehend
what it means to have a diverse workforce and how to engage such a
workforce for the betterment of the employees as well as the
employer. The volume acts as a textbook for courses on diversity in
human resource management as well as a valuable resource for HRM
and other management professionals. The discussions and questions
sections will be useful for faculty, and the short case studies are
designed to keep students interested and engaged.
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