Advanced Machine Learning with Python
- Autor
- Kustantaja
- Keel
- inglise
- Formaat
- Kategooria
Teadmiskirjandus
Solve challenging data science problems by mastering cutting-edge machine learning techniques in Python
About This Book
• Resolve complex machine learning problems and explore deep learning
• Learn to use Python code for implementing a range of machine learning algorithms and techniques
• A practical tutorial that tackles real-world computing problems through a rigorous and effective approach
Who This Book Is For
This title is for Python developers and analysts or data scientists who are looking to add to their existing skills by accessing some of the most powerful recent trends in data science. If you've ever considered building your own image or text-tagging solution, or of entering a Kaggle contest for instance, this book is for you!
Prior experience of Python and grounding in some of the core concepts of machine learning would be helpful.
What You Will Learn • Compete with top data scientists by gaining a practical and theoretical understanding of cutting-edge deep learning algorithms
• Apply your new found skills to solve real problems, through clearly-explained code for every technique and test
• Automate large sets of complex data and overcome time-consuming practical challenges
• Improve the accuracy of models and your existing input data using powerful feature engineering techniques
• Use multiple learning techniques together to improve the consistency of results
• Understand the hidden structure of datasets using a range of unsupervised techniques
• Gain insight into how the experts solve challenging data problems with an effective, iterative, and validation-focused approach
• Improve the effectiveness of your deep learning models further by using powerful ensembling techniques to strap multiple models together
In Detail
Designed to take you on a guided tour of the most relevant and powerful machine learning techniques in use today by top data scientists, this book is just what you need to push your Python algorithms to maximum potential. Clear examples and detailed code samples demonstrate deep learning techniques, semi-supervised learning, and more - all whilst working with real-world applications that include image, music, text, and financial data.
The machine learning techniques covered in this book are at the forefront of commercial practice. They are applicable now for the first time in contexts such as image recognition, NLP and web search, computational creativity, and commercial/financial data modeling. Deep Learning algorithms and ensembles of models are in use by data scientists at top tech and digital companies, but the skills needed to apply them successfully, while in high demand, are still scarce.
This book is designed to take the reader on a guided tour of the most relevant and powerful machine learning techniques. Clear descriptions of how techniques work and detailed code examples demonstrate deep learning techniques, semi-supervised learning and more, in real world applications. We will also learn about NumPy and Theano.
By this end of this book, you will learn a set of advanced Machine Learning techniques and acquire a broad set of powerful skills in the area of feature selection & feature engineering.
Style and approach
This book focuses on clarifying the theory and code behind complex algorithms to make them practical, useable, and well-understood. Each topic is described with real-world applications, providing both broad contextual coverage and detailed guidance.
© 2016 Packt Publishing (E-raamat): 9781784393830
Väljaandmise kuupäev
E-raamat: 28. juuli 2016
- Allüürnik Freida McFadden
- Karulõks Berit Sootak
- Misterioso Arne Dahl
- Mõrv Langley metsas Betty Rowlands
- Kui meri rahuneb Jørn Lier Horst
- Lapsemäng Angela Marsons
- Variatsioon Rebecca Yarros
- Uskumuste meelevallas Donna Leon
- Külm nagu kivi Alex Smith
- Kalendritüdruk Sebastian Fitzek
- Ära kasutatud, vägistatud ja müüdud Jessika Devert, Paulina Bengtsson
- Mees. Otse ja ausalt Jesper Parve
- Raamatukogu viimased päevad Heli Künnapas
- Safranisügis Maija Kajanto
- Vales seltskonnas Viveca Sten
- Allüürnik Freida McFadden
- Prouad tõsielusarjas ja armastuse otsinguil Sirje Salu
- Petlik tõde Colleen Hoover
- Cragside’i häärber L. J. Ross
- Märgistatud Max Seeck
- Ära kasutatud, vägistatud ja müüdud Jessika Devert, Paulina Bengtsson
- Lenda minuga Katariina Tammert
- Külm nagu kivi Alex Smith
- Koole maha, kaunitar Helena Marchmont
- Safranisügis Maija Kajanto
- Matilda Leelo Kassikäpp
- Karulõks Berit Sootak
- Kaneelisaiakese raamatupood Laurie Gilmore
- Ja ei jäänud teda ka Agatha Christie
- Mees. Otse ja ausalt Jesper Parve
- Petlik tõde Colleen Hoover
- Ära kasutatud, vägistatud ja müüdud Jessika Devert, Paulina Bengtsson
- Cragside’i häärber L. J. Ross
- Märgistatud Max Seeck
- Rehepapp Andrus Kivirähk
- Armastuse hüpotees Ali Hazelwood
- Safranisügis Maija Kajanto
- Kaneelisaiakese raamatupood Laurie Gilmore
- Kõrvitsavürtsi kohvik Laurie Gilmore
- Seitse õde. Maia lugu Lucinda Riley
- Majakavaht Camilla Läckberg
- Võib-olla ühel päeval Ketlin Priilinn
- Kaneelirullisuvi Maija Kajanto
- Koduabiline Freida McFadden
- Koduabilise saladus Freida McFadden
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