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Applied Deep Learning with Keras

You're reading from   Applied Deep Learning with Keras Solve complex real-life problems with the simplicity of Keras

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Product type Paperback
Published in Apr 2019
Publisher
ISBN-13 9781838555078
Length 412 pages
Edition 1st Edition
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Authors (3):
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Matthew Moocarme Matthew Moocarme
Author Profile Icon Matthew Moocarme
Matthew Moocarme
Mahla Abdolahnejad Mahla Abdolahnejad
Author Profile Icon Mahla Abdolahnejad
Mahla Abdolahnejad
Ritesh Bhagwat Ritesh Bhagwat
Author Profile Icon Ritesh Bhagwat
Ritesh Bhagwat
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Toc

Confusion Matrix


A confusion matrix describes the performance of the classification model. In other words, confusion matrix is a way to summarize classifier performance. The following figure shows a basic representation of a confusion matrix:

Figure 6.5: Basic representation of a confusion matrix

The following code is an example of a confusion matrix:

from sklearn.metrics import confusion_matrix
cm=confusion_matrix(y_test,y_pred_class)
print(cm)

The following figure shows the output of the preceding code:

Figure 6.6: Example confusion matrix

These are the meanings of the abbreviations used in the preceding figure:

  • TN (True negative): This is the count of outcomes that were originally negative and were predicted negative.

  • FP (False positive): This is the count of outcomes that were originally negative but were predicted positive. This error is also called a type 1 error

  • FN (False negative): This is the count of outcomes that were originally positive but were predicted negative. This error is also...

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