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Decision Trees

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Name: Decision Trees
Works on: windowsWindows 7 and above
Developer: AIspace
Version: 4.3
Last Updated: 27 Feb 2017
Release: 20 Aug 2010
Category: Science CAD
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1090 downloads
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Decision Trees Details

Works on: Windows 10 | Windows 8.1 | Windows 8 | Windows 7 | Windows 2012
SHA1 Hash: dd03516cd099d78943f6c344c9513a40d99e730f
Size: 280.2 KB
File Format: jar
Rating: 2.478260869 out of 5 based on 23 user ratings
Downloads: 1090
License: Free
Decision Trees is a free software by AIspace and works on Windows 10, Windows 8.1, Windows 8, Windows 7, Windows 2012.
You can download Decision Trees which is 280.2 KB in size and belongs to the software category Science CAD.
Decision Trees was released on 2010-08-20 and last updated on our database on 2017-02-27 and is currently at version 4.3.
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Decision Trees Description

Learning is the ability to improve ones behaviour based on experience and represents an essential element of computational intelligence. Decision trees are a simple yet successful technique for supervised classification learning. This applet demonstrates how to build a decision tree using a training dataset and then use the tree to classify unseen examples in a test dataset.
Decision Trees is a simple, easy to use application specially designed to provide several sample datasets of examples to learn and classify, however, you can also create or import your own datasets. Before building a decision tree, the dataset can be viewed, and examples can be moved to and from the training set and test set. The applets Create Mode allows you to view and manipulate the dataset. In Solve Mode, you can watch as a decision tree is built automatically, or build the tree yourself. When building the tree manually, you can use several tools to gain more information that can guide your decisions. Once the decision tree is built, you can test the tree against the unseen examples in your test set.System requirementsJava
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Decision Trees Screenshots

Decision Trees screenshot 1 Decision Trees screenshot 2 Decision Trees screenshot 3 Decision Trees screenshot 4
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