profiling function call in backgroundpool

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Matthias Wurm
Matthias Wurm le 27 Fév 2025
I have two versions of my function (OLD and NEW).
I am trying to optimize the speed of my code. In normal mode, NEW runs faster than OLD.
When I use parfeval to run the functions in the backgroundpool, OLD is faster than NEW.
How can I find out what slows down NEW in the backgroundpool?
  3 commentaires
Oliver Jaehrig
Oliver Jaehrig le 27 Fév 2025
Rick Amos
Rick Amos le 27 Fév 2025
The mpiprofile feature is not yet supported for thread-based pools, however the underlying profile feature has been since R2023b. If you have R2023b or later, you can do the following to profile code running on the background until we do have something like mpiprofile:
info = fetchOutputs(parfeval(backgroundPool, @profileMyExample, 1));
profview(0, info);
function info = profileMyExample
profile("on");
runMyExample;
profile("off");
info = profile("info");
end
function runMyExample
% Some code to be profiled
for ii = 1:10
eig(rand(1000));
end
end
In terms of the differences in performance, the main suspect would be whether the function is itself implicitly multi-threaded and something changed when running from the background. If you do maxNumCompThreads(1), does the performance match between running normally and running in the background?

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Matthias Wurm
Matthias Wurm le 28 Fév 2025
Thank you for your valuable comments.
Rick Amos' profiling example in particular was very helpful. I was able to implement it and find the error.
The error was mine:
While the comparison was fair in non-parallel mode (same conditions), it was no longer fair in parallel mode (backgroundPool). The test result was therefore meaningless.
After I was able to clarify this, NEW now always runs faster than OLD.
Many thanks for your support.

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