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suryadevara nagender kumar - beginning machine learning in the browser

Beginning Machine Learning in the Browser Quick-start Guide to Gait Analysis with JavaScript and TensorFlow.js




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Dettagli

Genere:Libro
Lingua: Inglese
Editore:

Apress

Pubblicazione: 04/2021
Edizione: 1st ed.





Trama

Apply Artificial Intelligence techniques in the browser or on resource constrained computing devices. Machine learning (ML) can be an intimidating subject until you know the essentials and for what applications it works. This book takes advantage of the intricacies of the ML processes by using a simple, flexible and portable programming language such as JavaScript to work with more approachable, fundamental coding ideas. 

Using JavaScript programming features along with standard libraries, you'll first learn to design and develop interactive graphics applications. Then move further into neural systems and human pose estimation strategies. For training and deploying your ML models in the browser, TensorFlow.js libraries will be emphasized.

After conquering the fundamentals, you'll dig into the wilderness of ML. Employ the ML and Processing (P5) libraries for Human Gait analysis. Building up Gait recognition with themes, you'll come to understand a variety of ML implementation issues. For example, you’ll learn about the classification of normal and abnormal Gait patterns.

With Beginning Machine Learning in the Browser, you’ll be on your way to becoming an experienced Machine Learning developer.

What You’ll Learn

  • Work with ML models, calculations, and information gathering
  • Implement TensorFlow.js libraries for ML models
  • Perform Human Gait Analysis using ML techniques in the browser

Who This Book Is For

Computer science students and research scholars, and novice programmers/web developers in the domain of Internet Technologies






Sommario

Chapter 1: What is Machine Learning (ML)?
     Basics of Java Script (JS)
     Programming in the browser using Java Script
     Graphics and Interactive processing in the browser using Java Script libraries
     Getting started with P5.JS and ML5.JS
     References

Chapter 2: Human Pose Estimation in the Browser
     Browser based data processing
     Posenet vs Openpose models
     Human pose estimation using ML5.Posenet
     Inputs, Outputs and Data structures of Posenet model
     References

Chapter 3: Human Pose Classification 
     Classification techniques using ML Neural Network in the browser
     Human Pose classification based on the outputs of Posenet model
     Consideration of poses using Confidence scores of Posenet model
     Storage of data using JSON formats related to the outputs of Posenet model
     References

Chapter 4: Gait Analysis
     Normal vs Abnormal Gait patterns
     Determination of Gait patterns using threshold values of the models
     User Interface design and development for monitoring of Gait patterns
     Real-Time data visualization of the Gait patterns on the browser
     References

Chapter 5: Future Possible Applications of Key Concepts




Autore

Nagender Kumar Suryadevara received his Ph.D. from the School of Engineering and Advanced Technology, Massey University, New Zealand, in 2014. He has authored two books and over 45 publications in different international journals, conferences, and book chapters. His research interests lie in the domains of wireless sensor networks, Internet of Things technologies, and time-series data mining.










Altre Informazioni

ISBN:

9781484268421

Condizione: Nuovo
Dimensioni: 235 x 155 mm Ø 454 gr
Formato: Brossura
Illustration Notes:XIV, 182 p. 71 illus.
Pagine Arabe: 182
Pagine Romane: xiv


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