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2024 2nd International Conference on Artificial Intelligence and Machine Learning Applications Theme: Healthcare and Internet of Things (AIMLA), 2024, p.1-6
2024
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Autor(en) / Beteiligte
Titel
Connecting Autonomous Engineering Domains with the Shared Language of Deep Neural Networks
Ist Teil von
  • 2024 2nd International Conference on Artificial Intelligence and Machine Learning Applications Theme: Healthcare and Internet of Things (AIMLA), 2024, p.1-6
Ort / Verlag
IEEE
Erscheinungsjahr
2024
Quelle
IEEE Xplore Digital Library
Beschreibungen/Notizen
  • When it comes to analyzing data, Deep Learning is a major hub. Problems with picture categorization, feature extraction, feature identification, feature learning, and feature classification are some of which DL helps solve to a large extent. It works well for impractical tasks that need learning in successive neural network layers. For unstructured data sets, DL algorithms are suggested since they can extract hundreds of characteristics. The primary emphasis of this research has been on TL as a tool for solving problems in one area and then applying that knowledge to other, related areas. Deep Neural Networks (DNNs) use DL to optimize and reinterpret partial or missing input. Health care systems, agriculture, regressing issue solutions, and other pre-processing approaches may all benefit from analysis and study of DL algorithms. In several fields, including transportation, agriculture, and manufacturing, autonomous systems are making great strides. Unfortunately, there is a lack of idea-sharing that may lead to innovation since each sector is too focused on its own demands. Integrating the common vocabulary of deep neural networks (DNNs) into autonomous engineering domains is the central proposal of this article.
Sprache
Englisch
Identifikatoren
DOI: 10.1109/AIMLA59606.2024.10531318
Titel-ID: cdi_ieee_primary_10531318

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