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Practical Data Analysis Cookbook

You're reading from   Practical Data Analysis Cookbook Over 60 practical recipes on data exploration and analysis

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Product type Paperback
Published in Apr 2016
Publisher
ISBN-13 9781783551668
Length 384 pages
Edition 1st Edition
Languages
Tools
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Author (1):
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Tomasz Drabas Tomasz Drabas
Author Profile Icon Tomasz Drabas
Tomasz Drabas
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Toc

Table of Contents (13) Chapters Close

Preface 1. Preparing the Data 2. Exploring the Data FREE CHAPTER 3. Classification Techniques 4. Clustering Techniques 5. Reducing Dimensions 6. Regression Methods 7. Time Series Techniques 8. Graphs 9. Natural Language Processing 10. Discrete Choice Models 11. Simulations Index

Estimating the output of an electric plant using CART


Previously, we used decision trees to classify our bank contact calls (refer to the Classifying calls with decision trees recipe from Chapter 3, Classification Techniques). Classification and regression trees are the equivalent methods applied to regression problems.

Getting ready

To execute this recipe, you need pandas and Scikit. No other prerequisites are required.

How to do it…

Estimating CART with Scikit is extremely easy (the regression_cart.py file):

import sklearn.tree as sk

@hlp.timeit
def regression_cart(x,y):
    '''
        Estimate a CART regressor
    '''
    # create the regressor object
    cart = sk.DecisionTreeRegressor(min_samples_split=80,
        max_features="auto", random_state=666666, 
        max_depth=5)

    # estimate the model
    cart.fit(x,y)

    # return the object
    return cart

How it works…

As with all the other recipes, we first load the data and extract the dependent variable y and independent variables...

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