Length of lower bounds is < length(x); filling in missing lower bounds with -Inf. Problem is unbounded

4 Ansichten (letzte 30 Tage)

Ältere Kommentare anzeigen

Az.Sa am 2 Feb. 2023

0
Verknüpfen

Direkter Link zu dieser Frage

https://de.mathworks.com/matlabcentral/answers/1905336-length-of-lower-bounds-is-length-x-filling-in-missing-lower-bounds-with-inf-problem-is-unbound

Kommentiert: Matt J am 3 Feb. 2023

Akzeptierte Antwort: Matt J

In MATLAB Online öffnen

Hi,

I am trying to estimate $a_{j}$ that maximize the following objective function

where ;

is unknown vector of 1 X p ,

is a matrix of p X t

p = 4 , t= 249 observations.

Update the question ::::

The idea is to sum the rows in $A_t $ then maximize the sum over the vector of a_j.

I used the following code :

A=readtable('4times6249datacsv');
A=table2array(A);
Aeq =ones(4,996);
lb = zeros(1,4) ;
beq =ones(1,4);
x = linprog(-A, [], [], Aeq, beq, lb, []);

I received the following :

Warning: Length of lower bounds is < length(x); filling in missing lower bounds with -Inf.

> In checkbounds (line 33)

In linprog (line 241)

Problem is unbounded. what does that mean ? Any suggestion to improve the code will be appreciated

2 Kommentare
Keine anzeigenKeine ausblenden

Torsten am 2 Feb. 2023

Your problem formulation is weird.

Multiplying a vector of dimension 1xp with a matrix of dimension pxt gives a vector of dimension 1xt.

So what do you mean by "maximize" if the object you want to maximize is a vector ?

Az.Sa am 3 Feb. 2023

Bearbeitet: Az.Sa am 3 Feb. 2023

The idea is to maximize the sum of the rows in $A_t$ .So we sum the rows then maximize the sum over the vector of a_j. I hope this is clear now

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Matt J am 2 Feb. 2023

0
Verknüpfen

Direkter Link zu dieser Antwort

https://de.mathworks.com/matlabcentral/answers/1905336-length-of-lower-bounds-is-length-x-filling-in-missing-lower-bounds-with-inf-problem-is-unbound#answer_1162401

Bearbeitet: Matt J am 2 Feb. 2023

In MATLAB Online öffnen

A=readtable('4times6249datacsv');
A=table2array(A);
f=sum(A,2);
Aeq =ones(1,4); beq = 1;
lb = zeros(4,1) ;
a = linprog(-f, [], [], Aeq, beq, lb);

11 Kommentare
9 ältere Kommentare anzeigen9 ältere Kommentare ausblenden

Az.Sa am 3 Feb. 2023

Bearbeitet: Az.Sa am 3 Feb. 2023

Thank you,

if I want to remove

and keep

, so the change in my code will be : removing lb = zeros(4,1) only ? I tried to do that but the broblem will be unbounded. I am looking to rule out the corner solution

Matt J am 3 Feb. 2023

You can't rule out the corner solution, because it is the only solution, assuming the f(j) have a unique maximal element f(jmax). The only reason to expect a different solution is if there are further requirements on a(j) that you haven't yet put in your constraints.

Melden Sie sich an, um zu kommentieren.