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Alternating least squares is often used to resolve components contributing to data with a bilinear structure; the basic technique may be extended to alternating constrained least squares. Commonly applied constraints include unimodality, non-negativity, and normalization of components. Several data matrices may be decomposed simultaneously by assuming that one of the two matrices in the bilinear decomposition is shared between datasets.

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conda 502.6 kB | noarch/r-als-0.0.7-r44hc72bb7e_3.conda  6 months and 6 days ago 526 main
conda 501.9 kB | noarch/r-als-0.0.7-r43hc72bb7e_3.conda  6 months and 6 days ago 503 main
conda 501.7 kB | noarch/r-als-0.0.7-r43hc72bb7e_2.conda  1 year and 7 months ago 959 main
conda 502.2 kB | noarch/r-als-0.0.7-r42hc72bb7e_2.conda  1 year and 7 months ago 917 main
conda 508.6 kB | noarch/r-als-0.0.7-r41hc72bb7e_1.tar.bz2  2 years and 3 months ago 1352 main
conda 509.0 kB | noarch/r-als-0.0.7-r42hc72bb7e_1.tar.bz2  2 years and 3 months ago 1365 main
conda 508.7 kB | noarch/r-als-0.0.7-r40hc72bb7e_0.tar.bz2  2 years and 4 months ago 1497 main
conda 508.7 kB | noarch/r-als-0.0.7-r41hc72bb7e_0.tar.bz2  2 years and 4 months ago 1524 main

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