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Learn Grafana 10.x - Second Edition

You're reading from  Learn Grafana 10.x - Second Edition

Product type Book
Published in Dec 2023
Publisher Packt
ISBN-13 9781803231082
Pages 542 pages
Edition 2nd Edition
Languages
Author (1):
Eric Salituro Eric Salituro
Profile icon Eric Salituro

Table of Contents (23) Chapters

Preface 1. Part 1 – Getting Started with Grafana
2. Chapter 1: Introducing Data Visualization with Grafana 3. Chapter 2: Touring the Grafana Interface 4. Chapter 3: Diving into Grafana's Time Series Visualization 5. Part 2 – Real-World Grafana
6. Chapter 4: Connecting Grafana to a Prometheus Data Source 7. Chapter 5: Extracting and Visualizing Data with InfluxDB and Grafana 8. Chapter 6: Shaping Data with Grafana Transformations 9. Chapter 7: Surveying Key Grafana Visualizations 10. Chapter 8: Surveying Additional Grafana Visualizations 11. Chapter 9: Creating Insightful Dashboards 12. Chapter 10: Working with Advanced Dashboard Features and Elasticsearch 13. Chapter 11: Streaming Real-Time IoT Data from Telegraf Agent to Grafana Live 14. Chapter 12: Monitoring Data Streams with Grafana Alerts 15. Chapter 13: Exploring Log Data with Grafana’s Loki 16. Part 3 – Managing Grafana
17. Chapter 14: Organizing Dashboards and Folders 18. Chapter 15: Managing Permissions for Users, Teams, and Organizations 19. Chapter 16: Authenticating Grafana Logins Using LDAP or OAuth 2 Providers 20. Chapter 17: Cloud Monitoring AWS, Azure, and GCP 21. Index 22. Other Books You May Enjoy

Summary

In this chapter, we stood up both a Grafana and a Prometheus server and used Prometheus to scrape metrics data from both servers. We use the ad hoc analysis functionality of Explore to identify interesting metrics, possibly with an eye toward monitoring them. We looked at how to aggregate certain metrics to capture how they change over time. We examined how there can be limitations to our data that we must respect for the sake of accuracy and integrity.

Essentially, we’ve established the foundations for building observability workflows by first capturing metrics from services and then identifying important performance metrics. Finally, if necessary, we aggregated or otherwise transformed the metrics. Once we had the metrics we were interested in, we monitored them in real time, then we discussed how to associate alerts when our metrics deviate from normal.

In the next chapter, we’ll take some of the concepts we’ve picked up through playing around...

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