Optimization: Capacitated Facility Location Problem

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Sebastian Daneli
Sebastian Daneli 2022 年 11 月 24 日
編集済み: Matt J 2022 年 11 月 28 日
Am tasked to solve the capacitated facility location problem, i.e.,
subject to
I've looked at intlinprog, but I don't understand how to use this function (if it's possible) to solve this type of problem due to the summations.
If it's possible, how would I go about?

回答 (2 件)

Matt J
Matt J 2022 年 11 月 24 日
編集済み: Matt J 2022 年 11 月 24 日
x=optimvar('x',[n,m],'Upper',0);
y=optimvar('y',n,'type','integer','Lower',0,'Upper',1);
objective=sum(f(:).*y(:))+sum(c(:).*x(:));
constraints.colsum=sum(x,1)==d(:).';
constraints.rowsum=sum(x,2)<=s(:).*y(:);
solution=solve( optimproblem('Objective', objective,'Constraints', constraints ) );
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Sebastian Daneli
Sebastian Daneli 2022 年 11 月 28 日
編集済み: Sebastian Daneli 2022 年 11 月 28 日
My code now look like this:
clear
m=3; % number of locations
n=5; % number of customers
s=[239 225 184]; % capacity
d=[92 82 83 69 74]; % demand
f=[589 766 886]; % fixed cost
c=[14 5 6 24 6; 9 22 26 5 21; 16 11 23 28 24]; % variable cost
x=optimvar('x',[m,n],'Upper',0);
y=optimvar('y',m,'type','integer','Lower',0,'Upper',1);
T=triu(c);
objective=sum(f(:).*y(:))+sum(T(:).*x(:));
constraints.colsum=sum(x,1)==d(:).';
constraints.rowsum=sum(x,2)<=s(:).*y(:);
p=prob2struct(optimproblem('Objective', objective,'Constraints',constraints))
p = struct with fields:
intcon: [16 17 18] lb: [18×1 double] ub: [18×1 double] x0: [] solver: 'intlinprog' Aineq: [3×18 double] bineq: [3×1 double] Aeq: [5×18 double] beq: [5×1 double] f0: 0 f: [18×1 double] options: [1×1 optim.options.Intlinprog]
solution=solve(optimproblem('Objective',objective,'Constraints',constraints));
Solving problem using intlinprog. No feasible solution found. Intlinprog stopped because no point satisfies the constraints.
[x,fval,exitflat,output]=intlinprog(p.f,p.intcon,p.Aeq,p.beq,p.Aineq,p.bineq,p.lb,p.ub,p.x0,p.options)
LP: Optimal objective value is 0.000000. Optimal solution found. Intlinprog stopped at the root node because the objective value is within a gap tolerance of the optimal value, options.AbsoluteGapTolerance = 0 (the default value). The intcon variables are integer within tolerance, options.IntegerTolerance = 1e-05 (the default value).
x = 18×1
0 0 0 0 0 0 0 0 0 0
fval = 0
exitflat = 1
output = struct with fields:
relativegap: 0 absolutegap: 0 numfeaspoints: 1 numnodes: 0 constrviolation: 0 message: 'Optimal solution found.↵↵Intlinprog stopped at the root node because the objective value is within a gap tolerance of the optimal value, options.AbsoluteGapTolerance = 0 (the default value). The intcon variables are integer within tolerance, options.IntegerTolerance = 1e-05 (the default value).'
But I'm not getting a reasonable solution.
Matt J
Matt J 2022 年 11 月 28 日
編集済み: Matt J 2022 年 11 月 28 日
The problem is not feasible because the d(j) values that you have supplied are all positive, while xij are constrained to be negative. That makes it impossible to satisfy .
Your second call to intlinprog doesn't show this because you have mixed up the order of some of the inputs:
[x,fval,exitflat,output]=intlinprog(p.f,p.intcon,p.Aineq,p.bineq,p.Aeq,p.beq,p.lb,p.ub)
No feasible solution found. Intlinprog stopped because no point satisfies the constraints. x = [] fval = []
exitflat = -2
output = struct with fields:
relativegap: [] absolutegap: [] numfeaspoints: 0 numnodes: 0 constrviolation: [] message: 'No feasible solution found.↵↵Intlinprog stopped because no point satisfies the constraints.'

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John D'Errico
John D'Errico 2022 年 11 月 24 日
First, what is the difference between the summation over i in a sum like this:
sum(f(i)*yi))
and the dot product of two vectors:
f' * y
where f and y are column vectors of the same lengths?
Answer: Nothing, as long as the vectors are real numbers. If they could be complex, then I might need to worry about conjugate tranpose, versus transpose, but that is irrlevant here.
Is that not the first part of your objective? Next, look at the second term in the objective. x is apparently an array, of size n by m. Can you represent that double sum as a linear combination of the elements of x? (Yes.) You will need to use kron to do it.
Next, both x AND y are unknowns in the problem. So you will need to treat x and y as part of the same vector. essentially, you need to pack it all into one long vector.
I won't get more into those questions, since your problem as stated is meaningless. You have a fundamental flaw in the equatinos you wrote as equaity constraints.
You show the sum over i, of the matrix x(i,j). Once you sum over i, i goes away. The result cannot be another matrix d(i,j). Until you resolve that, this problem has no solution.
  5 件のコメント
Sebastian Daneli
Sebastian Daneli 2022 年 11 月 24 日
編集済み: Sebastian Daneli 2022 年 11 月 24 日
@John D'Errico, I've maneged to get a little bit further, but there are still some things that I don't understand.
For example, how I should express the objective function? Here is an example:
clear
m = 3;
n = 5;
s = [ 239 225 184 ] ;
d = [ 92 82 83 69 74 ] ;
f = [ 589 766 886 ];
c = [ 14 5 6 24 6
9 22 26 5 21
16 11 23 28 24 ];
syms x11 x12 x13 x14 x15 x21 x22 x23 x24 x25 x31 x32 x33 x34 x35;
x=[x11 x12 x13 x14 x15; x21 x22 x23 x24 x25; x31 x32 x33 x34 x35];
A=[zeros(1,m*n),ones(1,m)]';
Aineq=kron(ones(1,n),eye(m));
Aeq=kron(ones(1,n),eye(m));
fy=[zeros(1,m*n),f];
The x-matrix is 5 by 3, like the c-matrix. The y-vector is 1 by 3. If i add these into a vector like you say, it becomes a 1 by 18 vector, like
size(fy)
ans = 1×2
1 18
However, the second part of the objective function becomes (if I've done this right):
Aineq*diag(c(:));
which, by using the now symbolic matrix x, becomes:
Aineq*diag(c(:))*x(:)
ans = 
which is a 5 by 3 matrix. Hope you understand my confussion.
Torsten
Torsten 2022 年 11 月 24 日
You have c_ij for 1 <= i < = 5 and 1 <= j <= 3
So c in your example should be 5x3, not 3x5.

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