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Department of Computer Science and Engineering UNIVERSITY OF GOTHENBURG CHALMERS UNIVERSITY OF TECHNOLOGY Gothenburg, Sweden 2018 Statistical Model Update Optimization in Industrial Practice

Abstract
This thesis presents a study done on optimizing machine learning model updates. The department of Quality and Functionality in a multinational telecommunication company is searching for an optimal solution to the problem of when, and how, to trigger a training cycle of a statistical model on their test execution dataset. We have investigated techniques regarding the possibilities of optimizing a statistical model update. A case-study has been conducted, using a telecommunication company as a case subject company.
Degree
Student essay
URI
http://hdl.handle.net/2077/62559
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CSE Grupp 1 - Cindroi & Iheanacho Mgbah (549.4Kb)
Date
2019-11-19
Author
Cindroi, Maria-Bianca
Iheanacho Mgbah, Robinson
Keywords
machine learning model
optimization
changing models
Language
eng
Metadata
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