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Overview

Predictive maintenance allows equipment operators and manufacturers to assess the condition of machines, diagnose faults, and estimate time to failure. Because machines are increasingly complex and generate large amounts of data, many engineers are exploring deep learning approaches to achieve the best predictive results.

 

Highlights:

In this session you will be able to learn how to use deep learning for:

  • Anomaly detection of industrial equipment using vibration data
  • Condition monitoring of an air compressor using an audio-based fault classifier.

You’ll also see demonstrations of:

  • Data Preparation: Generating features using Predictive Maintenance Toolbox™ and extracting features automatically from audio signals using Audio Toolbox™
  • Modeling: Training audio and time-series deep learning models using Deep Learning Toolbox™"

Register now

Speaker

Wesley Teoh, Application Engineer 

He is an Application Engineer at TechSource Systems. He specialized in Control Systems, Image Processing, Machine Learning, and Deep Learning with MATLAB. He helps various customers across different industries with predictive failure detection using Machine Learning and Data Forecasting Analytics. He is trained in official MathWorks training programs like MATLAB Fundamental, Image Processing, and Machine Learning.

He teaches and covers ASEAN regions such as Malaysia and the Philippines. He holds a B.Eng in Electrical Engineering from the National University of Singapore (NUS), with high achievement in the intelligent systems industrial track.

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