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Artificial Intelligence for IoT Cookbook

You're reading from  Artificial Intelligence for IoT Cookbook

Product type Book
Published in Mar 2021
Publisher Packt
ISBN-13 9781838981983
Pages 260 pages
Edition 1st Edition
Languages
Author (1):
Michael Roshak Michael Roshak
Profile icon Michael Roshak

Table of Contents (11) Chapters

Preface 1. Setting Up the IoT and AI Environment 2. Handling Data 3. Machine Learning for IoT 4. Deep Learning for Predictive Maintenance 5. Anomaly Detection 6. Computer Vision 7. NLP and Bots for Self-Ordering Kiosks 8. Optimizing with Microcontrollers and Pipelines 9. Deploying to the Edge 10. About Packt

Detecting time series anomalies with Luminol

Luminol is a time series anomaly detection algorithm released by LinkedIn. It uses a bitmap to check how many detection strategies, that are robust in datasets, tend to drift. It is also very lightweight and can handle large amounts of data.

In this example, we are going to use a publicly accessible IoT dataset from the city of Chicago. The city of Chicago has IoT sensors measuring the water quality of their lakes. Because the dataset needs some massaging before we get it into the right format for anomaly detection, we will use the prepdata.py file to extract one data point from one lake.

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