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Low-rank approximation is a mathematical technique used in various fields such as machine learning, statistics, and signal processing to simplify data that is represented in high-dimensional space. The idea behind low-rank approximation is to approximate a given high-rank matrix (or a dataset) with a matrix of lower rank while retaining as much of the important information as possible.

Ancestors (6)

  1. Numerical linear algebra
  2. Linear algebra
  3. Algebra
  4. Fields of mathematics
  5. Mathematics
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