Tag: Machine

Machine Learning for Environmental Noise Classification in Smart Cities (Synthesis Lectures on Engineering


Free Download Machine Learning for Environmental Noise Classification in Smart Cities (Synthesis Lectures on Engineering, Science, and Technology) by Ali Othman Albaji
English | March 23, 2024 | ISBN: 3031546660 | 187 pages | MOBI | 38 Mb
We present a Machine Learning (ML) approach to monitoring and classifying noise pollution. Both methods of monitoring and classification have been proven successful. MATLAB and Python code was generated to monitor all types of noise pollution from the collected data, while ML was trained to classify these data. ML algorithms showed promising performance in monitoring the different sound classes such as highways, railways, trains and birds, airports and many more. It is observed that all the data obtained by both methods can be used to control noise pollution levels and for data analytics. They can help decision making and policy making by stakeholders such as municipalities, housing authorities and urban planners in smart cities. The findings indicate that ML can be used effectively in monitoring and measurement. Improvements can be obtained by enhancing the data collection methods. The intention is to develop more ML platforms from which to construct a less noisy. The second objective of this study was to visualize and analyze the data of 18 types of noise pollution that have been collected from 16 different locations in Malaysia. All the collected data were stored in Tableau software. Through the use of both qualitative and quantitative measurements, the data collected for this project was then combined to create a noise map database that can help smart cities make informed decisions.

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Machine Learning Security with Azure


Free Download Machine Learning Security with Azure: Best practices for assessing, securing, and monitoring Azure Machine Learning workloads by Georgia Kalyva
English | December 28, 2023 | ISBN: 1805120484 | 310 pages | EPUB | 28 Mb
Implement industry best practices to identify vulnerabilities and protect your data, models, environment, and applications while learning how to recover from a security breach

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Human + Machine, Updated and Expanded Reimagining Work in the Age of AI


Free Download Human + Machine, Updated and Expanded: Reimagining Work in the Age of AI by Paul R. Daugherty, H. James Wilson
English | September 10, 2024 | ISBN: 1647827205 | 336 pages | PDF | 9.49 Mb
AI-including generative AI-is radically transforming business. Are you ready? Accenture technology leaders Paul Daugherty and Jim Wilson provide crucial insights and advice to help you meet the challenge.

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Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics 11th European Conference, EvoBIO 2013, Vienna, Au


Free Download Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics: 11th European Conference, EvoBIO 2013, Vienna, Austria, April 3-5, 2013. Proceedings By Delaney Granizo-Mackenzie, Jason H. Moore (auth.), Leonardo Vanneschi, William S. Bush, Mario Giacobini (eds.)
2013 | 217 Pages | ISBN: 3642371884 | PDF | 6 MB
This book constitutes the refereed proceedings of the 11th European Conference on Evolutionary Computation, Machine Learning and Data Mining in Bioinformatics, EvoBIO 2013, held in Vienna, Austria, in April 2013, colocated with the Evo* 2013 events EuroGP, EvoCOP, EvoMUSART and EvoApplications. The 10 revised full papers presented together with 9 poster papers were carefully reviewed and selected from numerous submissions. The papers cover a wide range of topics in the field of biological data analysis and computational biology. They address important problems in biology, from the molecular and genomic dimension to the individual and population level, often drawing inspiration from biological systems in oder to produce solutions to biological problems.

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Machine and Metaphor The Ethics of Language in American Realism


Free Download Jennifer C. Cook, "Machine and Metaphor: The Ethics of Language in American Realism"
English | 2006 | pages: 172 | ISBN: 0415978351 | PDF | 1,0 mb
American literary realism burgeoned during a period of tremendous technological innovation. Because the realists evinced not only a fascination with this new technology but also an ethos that seems to align itself with science, many have paired the two fields rather unproblematically. But this book demonstrates that many realist writers, from Mark Twain to Stephen Crane, Charles W. Chesnutt to Edith Wharton, felt a great deal of anxiety about the advent of new technologies – precisely at the crucial intersection of ethics and language. For these writers, the communication revolution was a troubling phenomenon, not only because of the ways in which the new machines had changed and increased the circulation of language but, more pointedly, because of the ways in which language itself had effectively become a machine: a vehicle perpetuating some of society’s most pernicious clichés and stereotypes – particularly stereotypes of race – in unthinking iteration. This work takes a close look at how the realists tried to forge an ethical position between the two poles of science and sentimentality, attempting to create an alternative mode of speech that, avoiding the trap of codifying iteration, could enable ethical action.

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MATLAB for Machine Learning – Second Edition


Free Download MATLAB for Machine Learning – Second Edition: Unlock the power of deep learning for swift and enhanced results by Giuseppe Ciaburro
English | January 30, 2024 | ISBN: 1835087698 | 374 pages | EPUB | 8.61 Mb
Master MATLAB tools for creating machine learning applications through effective code writing, guided by practical examples showcasing the versatility of machine learning in real-world applications

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Energy Efficiency and Robustness of Advanced Machine Learning Architectures


Free Download Energy Efficiency and Robustness of Advanced Machine Learning Architectures (Chapman & Hall/CRC Artificial Intelligence and Robotics Series) by Alberto Marchisio, Muhammad Shafique
English | November 14, 2024 | ISBN: 1032855509 | 360 pages | MOBI | 22 Mb
Machine Learning (ML) algorithms have shown a high level of accuracy, and applications are widely used in many systems and platforms. However, developing efficient ML-based systems requires addressing three problems: energy-efficiency, robustness, and techniques that typically focus on optimizing for a single objective/have a limited set of goals.

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