JOURNAL ARTICLE

Time Series Anomaly Detection Toolkit for Data Scientist

Dhaval PatelDzung T. PhanMarkus Mueller

Year: 2022 Journal:   2022 IEEE 38th International Conference on Data Engineering (ICDE) Vol: 21 Pages: 3202-3204

Abstract

This tutorial presents a design and implementation of a scikit-compatible system for detecting anomalies from time series data for the purpose of offering a broad range of algorithms to the end user, with special focus on unsupervised/semi-supervised learning. Given an input time series, we discuss how data scientist can construct four categories of anomaly pipelines followed by an enrichment module that helps to label anomaly. The tutorial provides an hand-on-experience using a deployed system on IBM API Hub for developer communities that aim to support a wide range of execution engines to meet the diverse need of anomaly workloads such as Serveless for CPU intensive work, GPU for deep-learning model training, etc.

Keywords:
Anomaly detection Computer science IBM Anomaly (physics) Series (stratigraphy) Range (aeronautics) Focus (optics) Construct (python library) Time series Data mining Artificial intelligence Machine learning Programming language Engineering

Metrics

1
Cited By
0.12
FWCI (Field Weighted Citation Impact)
34
Refs
0.27
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Anomaly Detection Techniques and Applications
Physical Sciences →  Computer Science →  Artificial Intelligence
Time Series Analysis and Forecasting
Physical Sciences →  Computer Science →  Signal Processing
Data Stream Mining Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence

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