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Rounding Error Analysis of Mixed Precision Block Householder QR Algorithms (1912.06217v3)
Published 12 Dec 2019 in math.NA and cs.NA
Abstract: Although mixed precision arithmetic has recently garnered interest for training dense neural networks, many other applications could benefit from the speed-ups and lower storage cost if applied appropriately. The growing interest in employing mixed precision computations motivates the need for rounding error analysis that properly handles behavior from mixed precision arithmetic. We develop mixed precision variants of existing Householder QR algorithms and show error analyses supported by numerical experiments.
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