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Random Bits Forest

We present a classification and regression algorithm called Random Bits Forest (RBF). RBF integrates neural network (for depth), boosting (for wideness) and random forest (for accuracy). It first generates and selects ~10,000 small three-layer threshold random neural networks as basis by gradient boosting scheme. These binary basis are then feed into a modified random forest algorithm to obtain predictions. In conclusion, RBF is a novel framework that performs strongly especially on data with large size.

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Website https://random-bits-forest.sourceforge.io
Tags
Features
  • big data
  • Random Bits
  • neural network
  • boosting
  • random forest
  • machine learning
  • data mining
  • prediction