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ML-TN-001 - AI at the edge: comparison of different embedded platforms - Part 1

Revision as of 10:59, 8 September 2020 by U0001 (talk | contribs) (Test application #1: fruit classifier)

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NeuralNetwork.png Applies to Machine Learning
Work in progress


Contents

HistoryEdit

Version Date Notes
1.0.0 September 2020 First public release

IntroductionEdit

This Technical Note (TN for short) is the first one of a series illustrating how machine learning-based inference applications perform across different embedded platforms, which are eligible for building intelligent edge devices.

The idea is to develop one or more applications with the help of well-known open-source frameworks/libraries and to deploy them on such platforms to compare performances, resource utilization, development flow, etc.

In the following sections, these applications are described in more detail.

Test application #1: fruit classifierEdit

This application implements a classifier like the one described here. There is one notable difference, however, with respect to the linked article. In this case, the model was created from scratch using TBD.

Model creationEdit

Articles in this seriesEdit