Slicing variable in parfor loop

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Arnab Samaddar-Chaudhuri
Arnab Samaddar-Chaudhuri 2022 年 11 月 17 日
I have a problem with parfor. If I run the code, ofcourse I get an error " The PARFOR loop cannot run due to the way the variable 'completeCellPositions' and 'cellPos' is used ", since there is dependency of the value count from previous loop run.
My code so far:
count = 1;
xRange = [-2000,2000];
yRange = [-500,500];
parfor cellCOMX = xRange(1,1):5:xRange(1,2)
for cellCOMY = yRange(1,1):5:yRange(1,2)
[completeCellPositions{1,count}, cellPos{1,count}] = doesSomething(cellCOMX, cellCOMY);
count = count+1;
end
end
I am not sure, how to place sliced variable in this scenario. I cannot simply write
[completeCellPositions{1,cellCOMX}, cellPos{1,cellCOMX}] = doesSomething(cellCOMX, cellCOMY);
Any suggestion, how to solve this issue?
PS: Ideally, I would like to use parfor for both for loops, but I can settle for even one parfor.

採用された回答

Edric Ellis
Edric Ellis 2022 年 11 月 17 日
In this case, you don't actually have a data dependency between the loop iterations. You can use a parfor reduction to do this, like so:
out1 = {};
out2 = {};
parfor i = 1:4
for j = 1:3
% Some calculation
[tmp1, tmp2] = deal(i + j, i * j);
% Build up out1 and out2 using concatenation
out1 = [out1, tmp1];
out2 = [out2, tmp2];
end
end
Starting parallel pool (parpool) using the 'Processes' profile ... Connected to the parallel pool (number of workers: 2).
celldisp(out1)
out1{1} = 2 3 4 3 4 5 4 5 6 5 6 7
celldisp(out2)
out2{1} = 1 2 3 2 4 6 3 6 9 4 8 12
There are additional restrictions you need to overcome - firstly, the range of your parfor loop must be consecutive integers. You could also combine the loops using ind2sub. Something a bit like this:
xVec = -2000:5:2000;
yVec = -500:5:500;
nX = numel(xVec);
nY = numel(yVec);
out1 = {};
out2 = {};
parfor idx = 1:(nX*nY)
[i, j] = ind2sub([nX, nY], idx);
xVal = xVec(i);
yVal = yVec(j);
% Some calculation
[tmp1, tmp2] = deal(xVal + yVal, xVal * yVal);
% Build up out1 and out2 using concatenation
out1 = [out1, tmp1];
out2 = [out2, tmp2];
end
  1 件のコメント
Arnab Samaddar-Chaudhuri
Arnab Samaddar-Chaudhuri 2022 年 11 月 18 日
Thank you for the elegant solution. Its running perfectly.

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