Data Warehousing Fundamentals: A Comprehensive Guide for IT ProfessionalsEine Einführung in das Data Warehousing - speziell für IT-Fachleute, die sich in dieses Gebiet einarbeiten wollen. Behandelt werden alle wichtigen Themen wie Planung, Systemvoraussetzungen, Architektur, Infrastruktur, Design, Datenaufbereitung, Implementation und Wartung. Der Stoff wird anhand zahlreicher Beispiele, Fallstudien aus der Industrie und Übungsaufgaben anschaulich und nachvollziehbar dargestellt. Autor Paulraj Ponniah verfügt über 25 Jahre Erfahrung in Design und Implementation von Datenbanken und Data Warehousing Anwendungen. Er hat u.a. so namhafte Unternehmen wie Texaco, Sotheby's, Blue Cross/Blue Shield, NA Philips und Bantam-Doubleday-Dell betreut. "Data Warehousing Fundamentals" - ein topaktuelles Buch zu einem brisanten Thema. |
From inside the book
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Page viii
... Integrated Data 21 1 Time-Variant Data 22 1 Nonvolatile Data 23 1 Data Granularity 23 1 Data Warehouses and Data Marts 1 How are They Different? 251 1 Top-Down Versus Bottom-Up Approach 26 24 1 A Practical Approach 27 1 28 1 Source Data ...
... Integrated Data 21 1 Time-Variant Data 22 1 Nonvolatile Data 23 1 Data Granularity 23 1 Data Warehouses and Data Marts 1 How are They Different? 251 1 Top-Down Versus Bottom-Up Approach 26 24 1 A Practical Approach 27 1 28 1 Source Data ...
Page xv
... Integration and Consolidation 275 1 2 Transformation for Dimension Attributes 277 272 277 1 2 How to Implement Transformation Data Loading 279 1 2 Applying Data: Techniques and Processes 1 2 Data Refresh Versus Update 282 1 2 Procedure ...
... Integration and Consolidation 275 1 2 Transformation for Dimension Attributes 277 272 277 1 2 How to Implement Transformation Data Loading 279 1 2 Applying Data: Techniques and Processes 1 2 Data Refresh Versus Update 282 1 2 Procedure ...
Page xix
... Integrating the Pilot Security 467 1 2 Security Policy 467 1 2 Managing User Privileges Deploy in Stages 466 468 469 1 2 1 2 Password Considerations Security Tools 469 455 20 Backup and Recovery 470 1 2 Why Back Up CONTENTS xix.
... Integrating the Pilot Security 467 1 2 Security Policy 467 1 2 Managing User Privileges Deploy in Stages 466 468 469 1 2 1 2 Password Considerations Security Tools 469 455 20 Backup and Recovery 470 1 2 Why Back Up CONTENTS xix.
Page 3
... INTEGRATED Must have a single, enterprise-wide view. DATA INTEGRITY Information must be accurate and must conform to business rules. ACCESSIBLE Easily accessible with intuitive access paths, and responsive for analysis. CREDIBLE Every ...
... INTEGRATED Must have a single, enterprise-wide view. DATA INTEGRITY Information must be accurate and must conform to business rules. ACCESSIBLE Easily accessible with intuitive access paths, and responsive for analysis. CREDIBLE Every ...
Page 4
... integrated from all systems. Data needed for strategic decision making must be in a format suitable for analyzing trends. Executives and managers need to look at trends over time and steer their companies in the proper direction. The ...
... integrated from all systems. Data needed for strategic decision making must be in a format suitable for analyzing trends. Executives and managers need to look at trends over time and steer their companies in the proper direction. The ...
Contents
1 | |
Part 2 PLANNING AND REQUIREMENTS | 63 |
Part 3 ARCHITECTURE AND INFRASTRUCTURE | 127 |
Part 4 DATA DESIGN AND DATA PREPARATION | 203 |
Part 5 INFORMATION ACCESS AND DELIVERY | 315 |
Part 6 IMPLEMENTATION AND MAINTENANCE | 429 |
Appendix A Project Life Cycle Steps and Checklists | 493 |
Appendix B Critical Factors for Success | 497 |
Appendix C Guidelines for Evaluating Vendor Solutions | 499 |
References | 501 |
Glossary | 503 |
Index | 511 |
Other editions - View all
Data Warehousing Fundamentals: A Comprehensive Guide for IT Professionals Paulraj Ponniah No preview available - 2004 |
Common terms and phrases
aggregate algorithms analysis applications architectural components attributes business dimensions capture changes chapter columns complex create data cleansing data elements data extraction data loading data marts data mining data model data quality data sources data staging data storage data structures data transformation data warehouse environment data warehouse project data warehousing database DBMS deployment dimension table dimensional model end-users enterprise example fact table Figure files functions hardware incremental loads integrated interface marketing MDDBs methods metrics MOLAP multidimensional OLAP system OLTP online analytical processing operational systems options package diagrams performance pilot platform predefined primary key product dimension programs project team queries and reports records relational requirements definition ROLAP selection server source data source systems specific staging area standards STAR schema summary techniques tion transaction types users values vendors ware Web-enabled data warehouse
Popular passages
Page 349 - Processing (OLAP) is a category of software technology that enables analysts, managers, and executives to gain insight into data through fast, consistent, interactive access to a wide variety of possible views of information that has been transformed from raw data to reflect the real dimensionality of the enterprise as understood by the user.
Page 18 - Inmon identified four characteristics of a data warehouse, which are represented in his formal definition: "... a data warehouse is a subject oriented, integrated, non-volatile and time variant collection of data in support of management's decisions.
Page 412 - Trees are normally drawn upside down, with the root at the top and the leaves at the bottom.
Page 501 - Kimball, Ralph, and Richard Merz. The Data Webhouse Toolkit: Building the WebEnabled Data Warehouse. New York: John Wiley & Sons, 2000.
Page 500 - Discovering Data Mining: From Concept to Implementation, Upper Saddle River, NJ: Prentice-Hall PTR, 1998.
Page 53 - It completes the process by providing users with knowledge to use the right information, at the right time, and at the right place.
Page 501 - Managing the Data Warehouse: Practical Techniques for Monitoring Operations and Performances, Administering Data and Tools, Managing Change and Growth, New York: Wiley, 1997.
Page 465 - ... but be careful not to bite off more than you can chew.
Page 5 - Web-enabled analysis tools enables merchants to gain insights into their customer base, manage inventories more tightly, and keep the right products in front of the right people at the right place at the right time.