Diffusion map

Versione 1.11 (1,33 MB) da Alex Ryabov
Diffusion map of time series or similarity matrix
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Aggiornato 25 feb 2025

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DiffusionMap Toolbox
This toolbox provides a simple, flexible way to perform diffusion map analysis—an approach to dimensionality reduction that preserves local data geometry. The functions included allow you to compute a similarity matrix, apply various normalization schemes, and extract diffusion map coordinates through eigenvector decomposition. An example script (`example1swissroll.m` or `example1_swissroll.mlx`) demonstrates usage on a classic Swiss roll dataset, illustrating how to reveal underlying low-dimensional structure.
Key Features
- Calculation of similarity matrices with multiple distance metrics
- Options for row or column normalization
- Different tuning parameters (e.g., number of nearest neighbors, Laplacian type)
- Example scripts to get started quickly
License
Distributed under the MIT License. See `LICENSE.txt` for details.

Cita come

Alex Ryabov (2026). Diffusion map (https://it.mathworks.com/matlabcentral/fileexchange/180223-diffusion-map), MATLAB Central File Exchange. Recuperato .

Compatibilità della release di MATLAB
Creato con R2024b
Compatibile con R2014b e release successive
Compatibilità della piattaforma
Windows macOS Linux
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Versione Pubblicato Note della release
1.11

minor changes in documentation

1.1

minor changes

1.0