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Hands-On Machine Learning with IBM Watson

Hands-On Machine Learning with IBM Watson

By : James D. Miller
1 (1)
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Hands-On Machine Learning with IBM Watson

Hands-On Machine Learning with IBM Watson

1 (1)
By: James D. Miller

Overview of this book

IBM Cloud is a collection of cloud computing services for data analytics using machine learning and artificial intelligence (AI). This book is a complete guide to help you become well versed with machine learning on the IBM Cloud using Python. Hands-On Machine Learning with IBM Watson starts with supervised and unsupervised machine learning concepts, in addition to providing you with an overview of IBM Cloud and Watson Machine Learning. You'll gain insights into running various techniques, such as K-means clustering, K-nearest neighbor (KNN), and time series prediction in IBM Cloud with real-world examples. The book will then help you delve into creating a Spark pipeline in Watson Studio. You will also be guided through deep learning and neural network principles on the IBM Cloud using TensorFlow. With the help of NLP techniques, you can then brush up on building a chatbot. In later chapters, you will cover three powerful case studies, including the facial expression classification platform, the automated classification of lithofacies, and the multi-biometric identity authentication platform, helping you to become well versed with these methodologies. By the end of this book, you will be ready to build efficient machine learning solutions on the IBM Cloud and draw insights from the data at hand using real-world examples.
Table of Contents (15 chapters)
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Section 1: Introduction and Foundation
6
Section 2: Tools and Ingredients for Machine Learning in IBM Cloud
10
Section 3: Real-Life Complete Case Studies

Testing the model

Now is a good time to have a look at how you can test the model prediction right here in IBM Watson Studio. To do this, you can click on Test:

The default test format generated shows you an input form that you can use to enter data values. Later, you'll see that if you have an external process generating test data, you can use the input format icons to use JSON data file format and paste in your data test values:

For now (staying on the Test tab), leave the default format (input form) and enter some values for the important columns (the input data form is populated with a sample record from the dataset). To test the model, change the values and click on Predict:

  1. For year, enter 2016
  2. For position, enter QB
  3. For weight, enter 225
  4. Click on Predict

Once your model test is complete, IBM Watson Studio displays a graphical score (with percentages) of the column...

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