Demystifying Deep Learning Building Blocks

Author:

Ochoa Domínguez Humberto de Jesús1ORCID,Cruz Sánchez Vianey Guadalupe1ORCID,Vergara Villegas Osslan Osiris2ORCID

Affiliation:

1. Electrical and Computer Engineering Department, Universidad Autónoma de Ciudad Juárez, Ciudad Juárez 32310, Mexico

2. Industrial and Manufacturing Engineering Department, Universidad Autónoma de Ciudad Juárez, Ciudad Juárez 32310, Mexico

Abstract

Building deep learning models proposed by third parties can become a simple task when specialized libraries are used. However, much mystery still surrounds the design of new models or the modification of existing ones. These tasks require in-depth knowledge of the different components or building blocks and their dimensions. This information is limited and broken up in different literature. In this article, we collect and explain the building blocks used to design deep learning models in depth, starting from the artificial neuron to the concepts involved in building deep neural networks. Furthermore, the implementation of each building block is exemplified using the Keras library.

Publisher

MDPI AG

Subject

General Mathematics,Engineering (miscellaneous),Computer Science (miscellaneous)

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