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TensorFlow 2.0 Quick Start Guide

You're reading from   TensorFlow 2.0 Quick Start Guide Get up to speed with the newly introduced features of TensorFlow 2.0

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Product type Paperback
Published in Mar 2019
Publisher Packt
ISBN-13 9781789530759
Length 196 pages
Edition 1st Edition
Languages
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Author (1):
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Tony Holdroyd Tony Holdroyd
Author Profile Icon Tony Holdroyd
Tony Holdroyd
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Table of Contents (15) Chapters Close

Preface 1. Section 1: Introduction to TensorFlow 2.00 Alpha FREE CHAPTER
2. Introducing TensorFlow 2 3. Keras, a High-Level API for TensorFlow 2 4. ANN Technologies Using TensorFlow 2 5. Section 2: Supervised and Unsupervised Learning in TensorFlow 2.00 Alpha
6. Supervised Machine Learning Using TensorFlow 2 7. Unsupervised Learning Using TensorFlow 2 8. Section 3: Neural Network Applications of TensorFlow 2.00 Alpha
9. Recognizing Images with TensorFlow 2 10. Neural Style Transfer Using TensorFlow 2 11. Recurrent Neural Networks Using TensorFlow 2 12. TensorFlow Estimators and TensorFlow Hub 13. Converting from tf1.12 to tf2
14. Other Books You May Enjoy

k-Nearest Neighbors (KNN)

The idea behind KNN is relatively straightforward. Given the value of a new particular data point, look at the KNN to the point, and assign a label to the point, depending on the labels of those k neighbors, where k is a parameter of the algorithm.

There is no model as such constructed in this scenario; the algorithm merely looks at all the distances between our new point and all the other data points in the dataset, and in what follows, we are going to make use of a famous dataset that consists of three types of iris flowers: iris setosa, iris virginica, and iris versicolor. For each of these labels, the features are petal length, petal width, sepal length, and sepal width. For diagrams showing this dataset, see https://en.wikipedia.org/wiki/Iris_flower_data_set#/media/File:Iris_dataset_scatterplot.svg.

There are 150 data points (each consisting of the...

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