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MOA (Massive Online Analysis) : ウィキペディア英語版
Massive Online Analysis

MOA (Massive Online Analysis) is a free open-source software specific for Data stream mining with Concept drift. It's written in Java and developed at the University of Waikato, New Zealand.
==Description==

MOA is an open-source framework software that allows to build and run experiments
of machine learning or data mining on evolving data streams. It includes a set of learners and stream generators that can be used from the Graphical User Interface (GUI), the command-line, and the Java API.
MOA contains several collections of machine learning algorithms:
* Classification
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* Bayesian classifiers
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* Naive Bayes
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* Naive Bayes Multinomial
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* Decision trees classifiers
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* Decision Stump
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*
* Hoeffding Tree
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* Hoeffding Option Tree
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*
* Hoeffding Adaptive Tree
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* Meta classifiers
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*
* Bagging
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* Boosting
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* Bagging using ADWIN
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* Bagging using Adaptive-Size Hoeffding Trees.
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* Perceptron Stacking of Restricted Hoeffding Trees
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* Leveraging Bagging
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* Online Accuracy Updated Ensemble
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* Function classifiers
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* Perceptron
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* Stochastic gradient descent (SGD)
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* Pegasos
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* Drift classifiers
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* Multi-label classifiers
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* Active learning classifiers
* Regression
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* FIMTDD
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* AMRules
* Clustering
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* StreamKM++
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* CluStream
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* ClusTree
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* D-Stream
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* CobWeb.
* Outlier detection
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* STORM
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* Abstract-C
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* COD
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* MCOD
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* AnyOut
* Recommender systems
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* BRISMFPredictor
* Frequent pattern mining
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* Itemsets
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* Graphs
* Change detection algorithms
These algorithms are designed for large scale machine learning, dealing with concept drift, and big data streams in real time.
MOA supports bi-directional interaction with Weka (machine learning). MOA is free software released under the GNU GPL.

抄文引用元・出典: フリー百科事典『 ウィキペディア(Wikipedia)
ウィキペディアで「Massive Online Analysis」の詳細全文を読む



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