MATLAB parfor is slower than for -- any help to speed up of my loop cacluations within KDL function?

조회 수: 4 (최근 30일)
Mehdi
Mehdi 2024년 1월 11일
댓글: Torsten 2024년 1월 13일
II=9;
JJ=9;
M=11;
W=rand(II+1,JJ+1,3,M);
k_d=01e12;
syms x y
for i=1:II+1
for j=1:JJ+1
lgij(i,j) = legendreP(i-1, x)*legendreP(j-1, y);
end
end
wxy2 = sym('wxy2',[1 M]);
wxy3 = sym('wxy3',[1 M]);
wxy2(1:M) = sym('0');
wxy3(1:M) = sym('0');
for r=1:M
for i=1:II+1
for j=1:JJ+1
wxy2(r) = W(i, j, 2, r)*lgij(i,j) + wxy2(r);
wxy3(r) = W(i, j, 3, r)*lgij(i,j) + wxy3(r);
end
end
end
wxxyy2=simplify(wxy2);
wxxyy3=simplify(wxy3);
for r=1:M
for o=1:M
Wijklmo(r,o)= expand(wxxyy2(r)*wxxyy2(o) + wxxyy3(r)*wxxyy3(o)- wxxyy2(r)*wxxyy3(o) - wxxyy2(o)*wxxyy3(r));
end
end
dt = 3.8655e-08;
T=1e9*dt;
q = zeros(M, floor(taim/dt)+1);
RA=111;
s=1;
for tn=t__0:dt:T
p_hat(1:M,s) = KDL(wxxyy2, wxxyy3, M, q, RA, k_d, Wijklmo, s)
s=s+1
end
a
function kdl = KDL( wxxyy2, wxxyy3, M, q, RA, k_d, Wijklmo, s)
xx = sym('xx');
yy = sym('yy');
Wxy2 = sym('0');
Wxy3 = sym('0');
for r=1:M
Wxy2 = wxxyy2(r)*q(r, s) + Wxy2;
Wxy3 = wxxyy3(r)*q(r, s) + Wxy3;
end
w23 = expand(Wxy3-Wxy2);
kdl=zeros(M,1);
xspan = [-1 1];
yspan = [-1 1];
Gy0 = 0;
H(xx,yy) =(0.5*(1+tanh(k_d*RA*w23)));
g = matlabFunction(H,'Vars',[xx yy]);
if w23==0
kdl(:,1) =0;
else
tic
for i=1:M
%parfor i=1:M
ff(i,1)= vpa(Wijklmo(i,:)*q(1:M, s));
f = matlabFunction(ff(i,1),'Vars',[xx yy]);
D = @(xx,yy)f(xx,yy).*(g(xx ,yy)>0);
if w23==0
kdl(i,1) =0;
else
[~,G] = ode45(@(y,Gy)fun(y,Gy,D,xspan),yspan,Gy0,odeset('RelTol',1e-10,'AbsTol',1e-10));
kdl(i,1) = k_d*real(G(end));
end
end
toc
end
a
function dGydy = fun(y,Gy,g,xspan)
% Compute the x-integrals at y = y
Gx0 = 0;
[~,Gx] = ode45(@(x,~)g(x,y),xspan,Gx0,odeset('RelTol',1e-10,'AbsTol',1e-10));
dGydy = Gx(end);
end
  댓글 수: 4
이전 댓글 2개 표시
Mehdi
Mehdi 2024년 1월 13일
I did this, but did not speed-up. The problem is that parfor is slower than for.
Torsten
Torsten 2024년 1월 13일
Ok, then I think @Matt J is correct: the gain in speed is overcompensated by the overhead of parallel computing.

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답변 (1개)

Matt J
Matt J 2024년 1월 12일
편집: Matt J 2024년 1월 12일
M=11 is a rather small number of iterations. If this is a realistic value, there may not be enough iterative work to make the overhead of parfor worthwhile. It might be better to move the parfor to the outer loop that calls KDL.
Tn=t__0:dt:T; %where are these values used???
parfor s=1:numel(Tn)
p_hat(:,s) = KDL(wxxyy2, wxxyy3, M, q, RA, k_d, Wijklmo, s);
end
A few other remarks,
(1) Things like this loop
for r=1:M
Wxy2 = wxxyy2(r)*q(r, s) + Wxy2;
Wxy3 = wxxyy3(r)*q(r, s) + Wxy3;
end
can be replaced with vectorized statements,
Wxy2 = wxxyy2*q(:, s);
Wxy3 = wxxyy3*q(:, s);
(2) Also, q(:, s) will probably evaluate faster than q(1:M,s).
  댓글 수: 3
이전 댓글 1개 표시
Matt J
Matt J 2024년 1월 12일
편집: Matt J 2024년 1월 12일
Ran in:
You should pre-allocate p_hat
M=11;
N=5;
p_hat=zeros(M,N);
parfor s=1:N
p_hat(:,s) = KDL(s);
end
Starting parallel pool (parpool) using the 'Processes' profile ... Parallel pool using the 'Processes' profile is shutting down.
p_hat
p_hat = 11×5
1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5 1 2 3 4 5
function s=KDL(s)
end
Mehdi
Mehdi 2024년 1월 12일
편집: Mehdi 2024년 1월 12일
this method does not work for me since in my original problem KDL(s+1)=f(KDL(s)).(because of complexities I have not brought this part of my code here.

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