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What is the fastest (realtime data processing application) way to reorder (the new indices are always the same) an array in JAVA:

e.g.: I have got: double[] A = new double[] {1, 234, 12,99,0};

I need to get swiftly: double[] B = new double[] {A[2], A[4], A[0],A[1],A[3]};

But maybe this is this is the most efficient way to do it anyway?

many thanks for your feedback

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Is your current approach too slow? – Mark Elliot Oct 6 '13 at 21:45
    
You can remove new double[] in both places, but I don't see how you expect to do any better than this, or why you think it might be a code bottleneck, or, if you don't, why you care at all. – EJP Oct 7 '13 at 0:12
up vote 1 down vote accepted

I doubt you can do better than your current approach of

double[] B = new double[] {A[2], A[4], A[0], A[1], A[3]};

Likely candidates for other sequences might be forms of Arrays.copyOf or Arrays.copyOfRange, but the minimum amount of work you must do here consists of:

  • create a new array
  • random access to each element in the array

There's a small chance that you might do slightly better with very specific read/write orders (to take advantage of cache lines), one guess is something that reads entirely in order and writes almost entire in ascending order:

   double[] B = new double[A.length];
   B[2] = A[0];
   B[3] = A[1];
   B[4] = A[3];
   B[0] = A[2];
   B[1] = A[4];

But I don't have strong expectations of this being noticeably better. If you're at the point where you're trying to eliminate or optimize on L1/L2 cache hits, it's time to start micro-benchmarking, and the real answer is you should experiment.

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many thanks Mark, sounds reasonable – frito Oct 6 '13 at 22:04

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