Compressive Statistical Learning with Random Feature Moments
June 22, 2017 ยท Declared Dead ยท ๐ Mathematical Statistics and Learning
"No code URL or promise found in abstract"
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Authors
Rรฉmi Gribonval, Gilles Blanchard, Nicolas Keriven, Yann Traonmilin
arXiv ID
1706.07180
Category
stat.ML: Machine Learning (Stat)
Cross-listed
cs.IT,
cs.LG,
math.ST
Citations
54
Venue
Mathematical Statistics and Learning
Last Checked
5 months ago
Abstract
We describe a general framework -- compressive statistical learning -- for resource-efficient large-scale learning: the training collection is compressed in one pass into a low-dimensional sketch (a vector of random empirical generalized moments) that captures the information relevant to the considered learning task. A near-minimizer of the risk is computed from the sketch through the solution of a nonlinear least squares problem. We investigate sufficient sketch sizes to control the generalization error of this procedure. The framework is illustrated on compressive PCA, compressive clustering, and compressive Gaussian mixture Modeling with fixed known variance. The latter two are further developed in a companion paper.
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