Francesco Perego
Prospects for Machine Learning pipelines in the Italian industry with a comparative analysis and implementation of frameworks on a case study.
Rel. Elena Maria Baralis, Eliana Pastor. Politecnico di Torino, Master of science program in Computer Engineering, 2020
Abstract
Machine learning industry is expected to peak in the next years. Thanks to a growing availability of big data, connected devices and cloud services, and thanks to the growing democratization of these tools, companies are increasingly adopting them. This comes with an heavy burden on companies, who need to educate themselves and re-structure their IT systems to be able to produce and sustain such systems to make use of them. Which is why more and more players are developing tools allowing an easier integration and utilization of ML-pipelines for commercial use. The goal of this thesis is first to provide a general overview of machine learning industry, its trends, its general direction and what are the drivers and challenges that it is facing and will face in the near future.
Secondly, the main goal is to provide an assessment and prospects for these technologies in the Italian industry in a context of modernization and integration of data in businesses
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