Saturday, November 27, 2021

Master thesis in grid computing

Master thesis in grid computing

master thesis in grid computing

Master Thesis In Grid Computing spelling, formatting, and composition. Our experts proofread and edit your project with a detailed eye and with complete knowledge of all writing and style conventions. Proofreading sets any writing apart from “acceptable” and makes it exceptional/10() Master Thesis In Grid Computing the direction of help with an essay does not tolerate Master Thesis In Grid Computing Amateurs, and our masters will create a text with high uniqueness and correctly structured according to all international requirements/10() Our writers (experts, masters, bachelor, and doctorate) write all the papers from scratch and always follow the instructions of the client to the blogger.com the order is completed, it is verified that each copy that does not present plagiarism with the latest software to ensure Master Thesis Grid Computing that





This project is associated with a master's thesis entitled "The Use of Advanced Signal Processing and Deep Learning for Pattern Recognition in Integrated Metrics of Quality Performance: A Smart Grid Application", by Rafael S. Salles, at the Federal University master thesis in grid computing Itajubá.


Here are the MATLAB and Simulink codes in detail, master thesis in grid computing. Power quality PQ is not a new theme, but it should not be neglected in any way, as its performance parameters will reveal problems in the adequacy between the consumer equipment and the electrical grid. With the ongoing transformations in electrical power systems, characterized by the high penetration of renewable energy sources, the massive insertion of components based on power electronics in the network, master thesis in grid computing, and the decentralization of generation, these issues are becoming increasingly important.


In Smart Grids, solutions are sought for more advanced solutions to solve PQ disturbances problems. Advanced signal processing plays an essential role in dealing with the network and supporting various applications within this context and Artificial Intelligence AIwhich has gained significant prominence to feed applications with innovative solutions in several areas. This research investigates the use of advanced signal processing and Deep Learning techniques for pattern recognition and classification of signals with PQ disorders.


For this purpose, the Continuous Wavelet Transform with a filter bank is used to generate 2-D images with the time-frequency representation from signals with voltage disturbances. The work aims to use Convolutional Neural Networks CNN to classify this data according to the images' distortion. In this implementation of AI, specific stages of design, training, validation, and testing were carried out for a model master thesis in grid computing by the case file and a knowledge transfer technique with the pre-trained networks SqueezeNet, GoogleNet, master thesis in grid computing, and ResNet All steps have their objectives fulfilled, culminating in the excellent execution and development of the research.


The results sought high precision for CNN de Scratch and ResNet in classify the test set. The other two models obtained not-so-high accuracy, and the results are consistent when compared with different methodologies.


Considerations about the results were pointed out. Finally, some conclusions were established and a philosophical reflection on the role of AI and advanced signal processing in electrical power systems. Skip to content. Star 1. Code Issues Pull requests Actions Projects Wiki Security Insights. Branches Tags. Could not load branches. Could not load tags. Latest commit. Git stats 4 commits. Failed to load latest commit information. View code. The version of MATLAB used is a!!!


About This project is associated with a master's thesis entitled "The Use of Advanced Signal Processing and Deep Learning for Pattern Recognition in Integrated Metrics of Quality Performance: A Smart Grid Application", by Rafael S. Resources Readme.


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master thesis in grid computing

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