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Working on bamboos (bam booster), a new computational engine for mgcv::bam(..., discrete = TRUE). Its complexity is sublinear in n (the number of data), in contrast to the old engine that is linear in n. For increasingly large datasets, it is increasingly faster. We have seen in single-threading mode, a 4x speedup for 1e+5 data, a 20x speedup for 1e+6 data and a 30x speedup for 1e+7 data.

bamboos features

  • the use of cross tabulation;
  • a run-time choice on dense or sparse matrix computations;
  • optimized memory access;
  • OpenMP SIMD auto-vectorization.

bamboos is not currently in mgcv. It may be available in the next or next next mgcv release.

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