Publication | Closed Access
Randomized algorithms in numerical linear algebra
56
Citations
25
References
2017
Year
Numerical AnalysisMathematical ProgrammingEngineeringMatrix AnalysisRandomized AlgorithmRandom MappingComputational ComplexityComputer ScienceMatrix TheorySquared LengthsRandom MatrixApproximation TheoryLow-rank Approximation
This survey provides an introduction to the use of randomization in the design of fast algorithms for numerical linear algebra. These algorithms typically examine only a subset of the input to solve basic problems approximately, including matrix multiplication, regression and low-rank approximation. The survey describes the key ideas and gives complete proofs of the main results in the field. A central unifying idea is sampling the columns (or rows) of a matrix according to their squared lengths.
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