Data Science for Batch Processes
eBook - ePub

Data Science for Batch Processes

Statistical Learning, Monitoring and Understanding

  1. English
  2. ePUB (mobile friendly)
  3. Available on iOS & Android
eBook - ePub

Data Science for Batch Processes

Statistical Learning, Monitoring and Understanding

About this book

Overview of methods for bilinear modeling of batch data, including theory, methodologies and examples for experienced professionals in the biotech, pharmaceutical and petrochemical industries.

Process Analytical Technologies (PAT) have become increasingly important with the establishment of the quality-by-design paradigm in industrial processes, particularly where batch operation is standard. PAT plays an instrumental role in advancing process understanding and operational efficiency, while strengthening safety and reliability to ensure consistent on-spec product quality and minimize environmental impact. Empirical methods based on latent variables, often referred to as chemometric methods, are a main component of PAT. When used alongside Batch Multivariate Statistical Process Control (BMSPC), these methods enable the timely detection and diagnosis of process upsets. Furthermore, process understanding can be improved by applying Latent Variable Models (LVMs), such as Principal Component Analysis (PCA) and Partial Least Squares (PLS), particularly relevant in batch processes, where the inherent complexity of the model results in a high degree of uncertainty in the operation.

Data Science for Batch Processes: Statistical Learning, Monitoring and Understanding provides a comprehensive and rigorous examination of the bilinear modeling and monitoring of batch processes, comprising data alignment, pre-processing, three-way-to-two-way data transformation, data analysis and design of monitoring systems, including practical challenges and considerations when analyzing multi-dimensional batch data. Case studies and hands-on MATLAB examples using the MVBatch toolbox bridge theory and practice, illustrating how these methods can be applied.

Data Science for Batch Processes: Statistical Learning, Monitoring and Understanding is an essential guide for professionals and academics who seek both foundational knowledge and advanced techniques in batch processes and data analysis.

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Information

Publisher
Wiley-VCH
Year
2026
Print ISBN
9783527326402
eBook ISBN
9783527650385

Table of contents

  1. Cover
  2. Table of Contents
  3. Title Page
  4. Copyright
  5. Foreword
  6. Prologue: Challenges for the Third Millennium
  7. Chapter 1: Introduction
  8. Chapter 2: Data-driven Models Based on Latent Variables
  9. Chapter 3: Batch Data Equalization
  10. Chapter 4: Batch Synchronization
  11. Chapter 5: Batch Data Preprocessing
  12. Chapter 6: Three-way to Two-way Transformation
  13. Chapter 7: Batch Process Data Analysis and Statistical Monitoring
  14. List of Acronyms
  15. Bibliography
  16. Index
  17. End User License Agreement

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Yes, you can access Data Science for Batch Processes by José M. González-Martínez,José Camacho,Joan Borràs-Ferrís,Alberto Ferrer in PDF and/or ePUB format, as well as other popular books in Ciencias físicas & Química analítica. We have over 1.5 million books available in our catalogue for you to explore.