Diffusion Nets
June 25, 2015 ยท Declared Dead ยท ๐ Applied and Computational Harmonic Analysis
"No code URL or promise found in abstract"
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Authors
Gal Mishne, Uri Shaham, Alexander Cloninger, Israel Cohen
arXiv ID
1506.07840
Category
stat.ML: Machine Learning (Stat)
Cross-listed
cs.LG,
math.CA
Citations
61
Venue
Applied and Computational Harmonic Analysis
Last Checked
6 months ago
Abstract
Non-linear manifold learning enables high-dimensional data analysis, but requires out-of-sample-extension methods to process new data points. In this paper, we propose a manifold learning algorithm based on deep learning to create an encoder, which maps a high-dimensional dataset and its low-dimensional embedding, and a decoder, which takes the embedded data back to the high-dimensional space. Stacking the encoder and decoder together constructs an autoencoder, which we term a diffusion net, that performs out-of-sample-extension as well as outlier detection. We introduce new neural net constraints for the encoder, which preserves the local geometry of the points, and we prove rates of convergence for the encoder. Also, our approach is efficient in both computational complexity and memory requirements, as opposed to previous methods that require storage of all training points in both the high-dimensional and the low-dimensional spaces to calculate the out-of-sample-extension and the pre-image.
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