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MnM is a set of Max/MSP externals based on FTM providing a unified framework for various techniques of classification, recognition and mapping for motion capture data, sound and music.

Features

  • Hidden Markov Models
  • Principal Components Analysis
  • Singular Value Decomposition, LU and QR decompositions
  • Non-negative Matrix Factorization and sparse decomposition
  • multi-dimensionnal M to N mapping based on examples
  • Multi-dimensioannal autocorrelation
  • Matrix/Vector Statistics (min, max, mean, std, histogram, mahalanobis distance)

Publications

download PDF of NIME 2005 paper on MnM


The MnM object set is released within the FTM distribution..