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PAM3: Machine Learning in the
Railway Industry
Dattaraj J Rao – Senior Architect – GE Transportation
(@DattarajR)
Scott Nelson – Product Manager – GE Transportation
2PREDIX TRANSFORM
Agenda
LocoVISION – Eyes for the Train1
Business problem and Value story
Computer Vision models
The PREDIX Advantage
DEMO
2
3
4
5
3PREDIX TRANSFORM
LocoVISION – Eyes for the Train
•  High-definition cameras on Locomotive
•  Monitor Track geometry, Assets
•  Computer Vision
4PREDIX TRANSFORM
Business problem and Value story
•  Track Inspection: Manual, Time consuming
•  Too late to find defects - Coverage
•  In-accurate PTC Asset database
Image Sources: ntsb.gov, Wikipedia.org
PTC = Positive Train Control
5PREDIX TRANSFORM
Picture
Here
Geometry-based approach
•  Extract geometry from images
•  Isolate features of interest
•  Define “rules” for anomalies
Computer Vision models
Machine Learning method
•  Image as pixel data array
•  Positive and Negative images
•  Self-learning from data
6PREDIX TRANSFORM
The PREDIX Advantage
•  Common Platform – Data Acquisition to Action
•  BLOB store for Video + metadata (GPS)
•  On-demand + Batch Analytics in Cloud
DATA ACQUISITION PREDIX 2.0 PRESENTATION
§  COMPUTER VISION MODELS
§  MACHINE LEARNING MODELS
BLOB STORE
ACTION
PREDIX MACHINE
7PREDIX TRANSFORM
DEMO
https://lviewer-dattaraj.run.aws-usw02-pr.ice.predix.io/
General Electric reserves the right to make changes in specifications and features, or discontinue the product or service described at any time, without notice or obligation. These materials do
not constitute a representation, warranty or documentation regarding the product or service featured. Illustrations are provided for informational purposes, and your configuration may differ. This
information does not constitute legal, financial, coding, or regulatory advice in connection with your use of the product or service. Please consult your professional advisors for any such advice.
GE, Predix and the GE Monogram are trademarks of General Electric Company. ©2016 General Electric Company – All rights reserved.

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PAM3: Machine Learning in the Railway Industry ( Predix Transform 2016)

  • 1. PAM3: Machine Learning in the Railway Industry Dattaraj J Rao – Senior Architect – GE Transportation (@DattarajR) Scott Nelson – Product Manager – GE Transportation
  • 2. 2PREDIX TRANSFORM Agenda LocoVISION – Eyes for the Train1 Business problem and Value story Computer Vision models The PREDIX Advantage DEMO 2 3 4 5
  • 3. 3PREDIX TRANSFORM LocoVISION – Eyes for the Train •  High-definition cameras on Locomotive •  Monitor Track geometry, Assets •  Computer Vision
  • 4. 4PREDIX TRANSFORM Business problem and Value story •  Track Inspection: Manual, Time consuming •  Too late to find defects - Coverage •  In-accurate PTC Asset database Image Sources: ntsb.gov, Wikipedia.org PTC = Positive Train Control
  • 5. 5PREDIX TRANSFORM Picture Here Geometry-based approach •  Extract geometry from images •  Isolate features of interest •  Define “rules” for anomalies Computer Vision models Machine Learning method •  Image as pixel data array •  Positive and Negative images •  Self-learning from data
  • 6. 6PREDIX TRANSFORM The PREDIX Advantage •  Common Platform – Data Acquisition to Action •  BLOB store for Video + metadata (GPS) •  On-demand + Batch Analytics in Cloud DATA ACQUISITION PREDIX 2.0 PRESENTATION §  COMPUTER VISION MODELS §  MACHINE LEARNING MODELS BLOB STORE ACTION PREDIX MACHINE
  • 8. General Electric reserves the right to make changes in specifications and features, or discontinue the product or service described at any time, without notice or obligation. These materials do not constitute a representation, warranty or documentation regarding the product or service featured. Illustrations are provided for informational purposes, and your configuration may differ. This information does not constitute legal, financial, coding, or regulatory advice in connection with your use of the product or service. Please consult your professional advisors for any such advice. GE, Predix and the GE Monogram are trademarks of General Electric Company. ©2016 General Electric Company – All rights reserved.