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Microsoft Power BI Cookbook

You're reading from   Microsoft Power BI Cookbook Creating Business Intelligence Solutions of Analytical Data Models, Reports, and Dashboards

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Product type Paperback
Published in Sep 2017
Publisher Packt
ISBN-13 9781788290142
Length 802 pages
Edition 1st Edition
Languages
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Authors (2):
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Brett Powell Brett Powell
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Brett Powell
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Table of Contents (14) Chapters Close

Preface 1. Configuring Power BI Development Tools FREE CHAPTER 2. Accessing and Retrieving Data 3. Building a Power BI Data Model 4. Authoring Power BI Reports 5. Creating Power BI Dashboards 6. Getting Serious with Date Intelligence 7. Parameterizing Power BI Solutions 8. Implementing Dynamic User-Based Visibility in Power BI 9. Applying Advanced Analytics and Custom Visuals 10. Developing Solutions for System Monitoring and Administration 11. Enhancing and Optimizing Existing Power BI Solutions 12. Deploying and Distributing Power BI Content 13. Integrating Power BI with Other Applications

Choosing columns and column names

The columns selected in data retrieval queries impact the performance and scalability of both import and DirectQuery data models. For import models, the resources required by the refresh process and the size of the compressed data model are directly impacted by column selection. Specifically, the cardinality of columns drives their individual memory footprint and memory (per column) correlates closely to query duration when these columns are referenced in measures and report visuals. For DirectQuery models, the performance of report queries is directly affected.

Regardless of the model type, how this selection is implemented also impacts the robustness of the retrieval process. Additionally, the names assigned to columns (or accepted from the source) directly impact the Q & A or natural language query experience. This recipe provides examples...

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