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Autor(en): 
  • Alok Kumar
  • Mayank Jain
  • Ensemble Learning for AI Developers: Learn Bagging, Stacking, and Boosting Methods with Use Cases 
     

    (Buch)
    Dieser Artikel gilt, aufgrund seiner Grösse, beim Versand als 2 Artikel!


    Übersicht

    Auf mobile öffnen
     
    Lieferstatus:   i.d.R. innert 5-10 Tagen versandfertig
    Veröffentlichung:  Juni 2020  
    Genre:  EDV / Informatik 
     
    ArtificialIntelligence / DeepLearning / ensemblelearning / Künstliche Intelligenz (KI) / machinelearning / neuralnetworks / numpy / Programmier- und Skriptsprachen, allgemein
    ISBN:  9781484259399 
    EAN-Code: 
    9781484259399 
    Verlag:  Apress 
    Einband:  Kartoniert  
    Sprache:  English  
    Dimensionen:  H 235 mm / B 155 mm / D 9 mm 
    Gewicht:  242 gr 
    Seiten:  152 
    Bewertung: Titel bewerten / Meinung schreiben
    Inhalt:
    Use ensemble learning techniques and models to improve your machine learning results.
    Ensemble Learning for AI Developers starts you at the beginning with an historical overview and explains key ensemble techniques and why they are needed. You then will learn how to change training data using bagging, bootstrap aggregating, random forest models, and cross-validation methods. Authors Kumar and Jain provide best practices to guide you in combining models and using tools to boost performance of your machine learning projects. They teach you how to effectively implement ensemble concepts such as stacking and boosting and to utilize popular libraries such as Keras, Scikit Learn, TensorFlow, PyTorch, and Microsoft LightGBM. Tips are presented to apply ensemble learning in different data science problems, including time series data, imaging data, and NLP. Recent advances in ensemble learning are discussed. Sample code is provided in the form of scripts and the IPython notebook.
    What You Will Learn Understand the techniques and methods utilized in ensemble learning Use bagging, stacking, and boosting to improve performance of your machine learning projects by combining models to decrease variance, improve predictions, and reduce bias Enhance your machine learning architecture with ensemble learning Who This Book Is For Data scientists and machine learning engineers keen on exploring ensemble learning

      



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