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Luis Pedro Coelho

Building Machine Learning Systems with Python – Second Edition

  • Zaur Huseynovцитує5 років тому
    But before you go there, you will have to define what you actually mean by "better". SciKit has a complete package dedicated only to this definition. The package is called sklearn.metrics and also contains a full range of different metrics to measure clustering quality. Maybe that should be the first place to go now. Right into the sources of the metrics package.
  • Zaur Huseynovцитує5 років тому
    SciKit provides a wide range of clustering approaches in the sklearn.cluster package. You can get a quick overview of advantages and drawbacks of each of them at http://scikit-learn.org/dev/modules/clustering.html.
  • Zaur Huseynovцитує5 років тому
    UCI Machine Learning Dataset Repository

    The University of California at Irvine (UCI) maintains an online repository of machine learning datasets (at the time of writing, they list 233 datasets). Both the Iris and the Seeds dataset used in this chapter were taken from there.

    The repository is available online at http://archive.ics.uci.edu/ml/.
  • Zaur Huseynovцитує5 років тому
    Let's compare the runtime behavior of NumPy compared with normal Python lists. In the following code, we will calculate the sum of all squared numbers from 1 to 1000 and see how much time it will take. We perform it 10,000 times and report the total time so that our measurement is accurate enough.
  • Zaur Huseynovцитує5 років тому
    What to do when you are stuck
  • Zaur Huseynovцитує5 років тому
    Downloading the example code
    You can download the example code files from your account at http://www.packtpub.com for all the Packt Publishing books you have purchased. If you purchased this book elsewhere, you can visit http://www.packtpub.com/support and register to have the files e-mailed directly to you.

    The code for this book is also available on GitHub at https://github.com/luispedro/BuildingMachineLearningSystemsWithPython. This
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