Analyzing Data Through Probabilistic Modeling in Statistics

Analyzing Data Through Probabilistic Modeling in Statistics

Release Date: February, 2021|Copyright: © 2021 |Pages: 331
DOI: 10.4018/978-1-7998-4706-9
ISBN13: 9781799847069|ISBN10: 1799847063|EISBN13: 9781799847076
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Description & Coverage
Description:

Probabilistic modeling represents a subject arising in many branches of mathematics, economics, and computer science. Such modeling connects pure mathematics with applied sciences. Similarly, data analyzing and statistics are situated on the border between pure mathematics and applied sciences. Therefore, when probabilistic modeling meets statistics, it is a very interesting occasion that has gained much research recently. With the increase of these technologies in life and work, it has become somewhat essential in the workplace to have planning, timetabling, scheduling, decision making, optimization, simulation, data analysis, and risk analysis and process modeling. However, there are still many difficulties and challenges that arrive in these sectors during the process of planning or decision making. There continues to be the need for more research on the impact of such probabilistic modeling with other approaches.

Analyzing Data Through Probabilistic Modeling in Statistics is an essential reference source that builds on the available literature in the field of probabilistic modeling, statistics, operational research, planning and scheduling, data extrapolation in decision making, probabilistic interpolation and extrapolation in simulation, stochastic processes, and decision analysis. This text will provide the resources necessary for economics and management sciences and for mathematics and computer sciences. This book is ideal for interested technology developers, decision makers, mathematicians, statisticians and practitioners, stakeholders, researchers, academicians, and students looking to further their research exposure to pertinent topics in operations research and probabilistic modeling.

Coverage:

The many academic areas covered in this publication include, but are not limited to:

  • Data Analysis
  • Decision Analysis
  • Decision Making
  • Mathematical Modeling
  • Optimization Methods
  • Probabilistic Methods in Planning
  • Probabilistic Modeling
  • Process Modeling
  • Risk Analysis
  • Statistics
Reviews & Statements

Probabilistic modeling represents a subject arising in many branches of mathematics, economics and computer science. Such modeling connects pure mathematics with applied sciences. Statistics similarly is situated on the border between pure mathematics and applied sciences. So when probabilistic modeling meets statistics, it is very interesting occasion. Our life and work are impossible without planning, time-tabling, scheduling, decision making, optimization, simulation, data analysis, risk analysis and process modeling. Thus, it is a part of management science or decision science.

This book looks to discuss and address the difficulties and challenges that occur during the process of planning or decision making. The editors have found the chapters that address different aspects of probabilistic modeling, stochastic methods, probabilistic distributions, data analysis, optimization methods, probabilistic methods in risk analysis, and related topics. Additionally, the book explores the impact of such probabilistic modeling with other approaches.

– Dariusz Jakóbczak, Koszalin University of Technology
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Editor/Author Biographies

Dariusz Jacek Jakóbczak was born in Koszalin, Poland, on December 30, 1965. He graduated in mathematics (numerical methods and programming) from the University of Gdansk, Poland in 1990. He received the Ph.D. degree in 2007 in computer science from the Polish – Japanese Institute of Information Technology, Warsaw, Poland. From 1991 to 1994 he was a civilian programmer in the High Military School in Koszalin. He was a teacher of mathematics and computer science in the Private Economic School in Koszalin from 1995 to 1999. Since March 1998 he has worked in the Department of Electronics and Computer Science, Technical University of Koszalin, Poland and since October 2007 he has been an Assistant Professor in the Chair of Computer Science and Management in this department. His research interests tie mathematics with computer science and include computer vision, shape representation, curve interpolation, contour reconstruction and geometric modeling, probabilistic methods and discrete mathematics.

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