Catalog of Functionality > IMSL Statistics Toolkit > Data Mining
  

Data Mining
Genetic Algorithms
GA_CHROMOSOME
Creates a data structure containing unencoded and encoded phenotype information.
GA_DECODE
Decodes an individual’s chromosome into its binary, nominal, integer and real phenotypes.
GA_ENCODE
Encodes an individual’s binary, nominal, integer and real phenotypes into its chromosome.
GA_GROW_POPULATION
Adds the individuals in the array individual to an existing population.
GA_INDIVIDUAL
Creates a data structure from user supplied phenotypes.
GA_MERGE_POPULATION
Creates a new population by merging two populations with identical chromosome structures.
GA_MUTATE
Performs the mutation operation on an individual’s chromosome.
GA_POPULATION
Creates a population data structure from user supplied individuals.
GA_RANDOM_POPULATION
Creates a population data structure from randomly generated individuals.
GENETIC_ALGORITHM
Optimizes a user-defined fitness function using a tailored genetic algorithm.
Naive Bayes
NAIVE_BAYES_CLASSIFICATION
Classifies unknown patterns using a previously trained Naive Bayes classifier.
NAIVE_BAYES_TRAINER
Trains a Naive Bayes classifier.
Neural Networks
MLFF_NETWORK_INIT
Creates a multilayered feedforward neural network.
MLFF_NETWORK
Links and modifies a multilayered feedforward neural network.
MLFF_INITIALIZE_WEIGHTS
Initializes weights for multilayered feedforward neural networks prior to network training using one of four user selected methods.
Forecasting Neural Networks
MLFF_NETWORK_TRAINER
Trains a multilayered feedforward neural network.
MLFF_NETWORK_FORECAST
Calculates forecasts using trained multilayered feedforward neural networks.
Classification Neural Networks
MLFF_CLASSIFICATION_TRAINER
Trains a multilayered feedforward neural network for classification.
MLFF_PATTERN_CLASSIFICATION
Calculates classifications for trained multilayered feedforward neural networks.
Preprocessing Filters
SCALE_FILTER
Scales or unscales continuous data prior to its use in neural network training, testing, or forecasting.
TIME_SERIES_FILTER
Converts time series data to the format required for processing by a neural network.
TIME_SERIES_CLASS_FILTER
Converts time series data sorted within nominal classes in decreasing chronological order to a useful format for processing by a neural network.
UNSUPERVISED_NOMINAL_FILTER
Converts nominal data into a series of binary encoded columns for input to a neural network.
UNSUPERVISED_ORDINAL_FILTER
Converts ordinal data into proportions.

Version 2017.0
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