Classical and Quantum Principal Component Analysis in Data Engineering
eBook - ePub

Classical and Quantum Principal Component Analysis in Data Engineering

  1. 331 pages
  2. English
  3. ePUB (mobile friendly)
  4. Available on iOS & Android
eBook - ePub

Classical and Quantum Principal Component Analysis in Data Engineering

About this book

This essential resource bridges the gap between classical data limitations and the future of computing, giving you the scalable, quantum-accelerated PCA strategies needed to conquer today's massive, high-dimensional datasets.

With the rapid growth of big data in fields such as genomics, internet traffic analysis, and social network data, traditional principal component analysis methods have reached their limits in terms of scalability and computational efficiency. This volume delves into cutting-edge advancements in principal component analysis (PCA), particularly focusing on its applications in handling high-dimensional and large-scale datasets. It also provides practical insights into how PCA can be applied to fields such as machine learning, bioinformatics, and finance. Through real-world case studies, hands-on examples, and guidance on implementing PCA using modern software tools and libraries, the book presents essential principles in quantum information theory and quantum algorithms, establishing the groundwork necessary to comprehend how quantum computing may expedite and improve PCA procedures. This work examines quantum algorithms for matrix decomposition, analyzes the computational benefits of quantum PCA compared to classical approaches, and showcases real applications in quantum machine learning, encryption, and quantum chemistry. Ultimately, this book will serve as a valuable resource for researchers, students, and professionals looking to the future of high-dimensional data analysis and how to apply efficient, scalable methods to PCA in their work.

Information

Year
2026
Print ISBN
9781394382651
Edition
1
eBook ISBN
9781394382668

Table of contents

  1. Cover
  2. Table of Contents
  3. Series Page
  4. Title Page
  5. Copyright Page
  6. Foreword
  7. Preface
  8. 1 Integrating Quantum Learning and Principal Component Analysis: From Eigenvectors to Qubits
  9. 2 Applications in Quantum Cryptography: Harnessing Quantum Principles for Next-Generation Security
  10. 3 Quantum PCA in Machine Learning (ML)
  11. 4 Future Trends and Innovations in Quantum Principal Component Analysis (PCA)
  12. 5 Challenges in Scaling Quantum Principal Component Analysis (QPCA)
  13. 6 Open Research Directions in Quantum Principal Component Analysis (QPCA)
  14. 7 Holomorphic Hierophanies: Quantum PCA (HH-QPCA) as Liturgical Practice in Topological Data Sanctuaries
  15. 8 Eigenvalue Ephemera: Non-AbelianPCA Dynamics in Quantum-Holographic Image Reconstruction
  16. 9 Principal Component Analysis (PCA) in Machine Learning and Data Science
  17. 10 Price Discovery, Hedging, and Market Efficiency: A Transformer-Based Analysis of Spot and Futures Markets in Indian Base Metal Commodities
  18. 11 Quantum Computing and Blockchain Security: Threats, Solutions, and Future Directions
  19. 12 Quantum PCA in Genomics Dimensionality Reduction in Biological Data
  20. 13 Randomized and Stochastic Algorithms for Large-Scale PCA
  21. 14 Distributedand Incremental PCA for Real-Time Applications
  22. 15 Quantum Palimpsests: Eigenvector Erasure and the Rebirth of Latent Space in Holographic Mnemonic Sanctuaries
  23. Index
  24. Also of Interest
  25. End User License Agreement

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Yes, you can access Classical and Quantum Principal Component Analysis in Data Engineering by Abhishek Kumar,J. P. Ananth,S. Oswalt Manoj,Navneet Kaur,A. Jayanthiladevi in PDF and/or ePUB format, as well as other popular books in Computer Science & Data Mining. We have over 1.5 million books available in our catalogue for you to explore.