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Add Anomaly Detection To Your Time Series Data With Luminaire

Add Anomaly Detection To Your Time Series Data With Luminaire

FromThe Python Podcast.__init__


Add Anomaly Detection To Your Time Series Data With Luminaire

FromThe Python Podcast.__init__

ratings:
Length:
54 minutes
Released:
Dec 15, 2020
Format:
Podcast episode

Description

When working with data it's important to understand when it is correct. If there is a time dimension, then it can be difficult to know when variation is normal. Anomaly detection is a useful tool to address these challenges, but a difficult one to do well. In this episode Smit Shah and Sayan Chakraborty share the work they have done on Luminaire to make anomaly detection easier to work with. They explain the complexities inherent to working with time series data, the strategies that they have incorporated into Luminaire, and how they are using it in their data pipelines to identify errors early. If you are working with any kind of time series then it's worth giving Luminaure a look.
Released:
Dec 15, 2020
Format:
Podcast episode

Titles in the series (100)

The podcast about Python and the people who make it great