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What is Deep Neural Networks (DNN)

Exploring Ethical Problems in Today’s Technological World
Is a type of deep learning model commonly used for classification tasks. It uses mathematical operations of linear and non-linear functions.
Published in Chapter:
Analysis of Ethical Development for Public Policies in the Acquisition of AI-Based Systems
Reinel Tabares-Soto (Universidad Autónoma de Manizales, Colombia & Universidad Adolfo Ibáñez, Chile), Joshua Bernal-Salcedo (Universidad Autónoma de Manizales, Colombia), Zergio Nicolás García-Arias (Universidad Autónoma de Manizales, Colombia), Ricardo Ortega-Bolaños (Universidad Autónoma de Manizales, Colombia), María Paz Hermosilla (Universidad Adolfo Ibáñez, Chile), Harold Brayan Arteaga-Arteaga (Universidad Autónoma de Manizales, Colombia), and Gonzalo A. Ruz (Universidad Adolfo Ibáñez, Chile & Center of Applied Ecology and Sustainability (CAPES), Santiago, Chile)
Copyright: © 2022 |Pages: 29
DOI: 10.4018/978-1-6684-5892-1.ch010
Abstract
The exponential growth of AI and its applications in different areas of society, such as the financial, agricultural, telecommunications, or health sectors, poses new challenges for the government's public sector, mainly in regulating these systems. Governments and entities in general address these challenges by formulating soft laws such as manuals or guidelines. They seek full transparency, privacy, and bias reduction when implementing an AI-based system, including its life cycle and respective data management or governance. These tools and documents aim to develop an ethical AI that addresses or solves the aforementioned ethical implications. The revision of 22 documents within frameworks, guides, articles, toolkits, and manuals proposed by different governments and entities are examined in detail. Analyses include a general summary, the main objective, characteristics to be highlighted, advantages and disadvantages if any, and possible improvements.
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Overview of Multi-Factor Prediction Using Deep Neural Networks, Machine Learning, and Their Open-Source Software
Also referred to as “deep learning” are capable of learning high-level features with more complexity and abstraction than shallower neural networks (Sse et al., 2020 AU57: The in-text citation "Sse et al., 2020" is not in the reference list. Please correct the citation, add the reference to the list, or delete the citation. , pp. 3, 7).
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