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Hi I have the following code which I believe have indexed wrongly and so Im not getting the answer I am looking for

Diesel_matrix = xlsread('test_diesel.xlsx','Sheet2');

Diesel_supply = Diesel_matrix(:,1); % Power output of diesel generator

hourly_cost = Diesel_matrix(:,2);  % Diesel cost of running genreator at that output




 for z = 1:21

 A    = [-PV_supply -WT_supply -Diesel_supply(z)*ones(24,1)];

   f = [CRF_PV*CC_PV; CRF_WT*CC_WT; (CRF_Diesel_generator*CC_Diesel)+sum(hourly_cost(1:z))]  ;


 b = -Demand;

 [x,fval,exitflag] = linprog(f,A,b,[],[],lb,ub)
 end

I am trying to loop only for the third column of matrix A. I would like to loop for all the rows in "Diesel_supply" per row of matrix A

at the moment, the code works for 21 sets of x outputs but column 3 is either row 1,2,3 etc up to row 21 of "Diesel_supply". Wheras I am trying to get it for row 1 and 2 and 3 and 4 etc up to row 21 of "Diesel_supply". This will allow me to examine all the elements in "Diesel_Supply"

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Just trying to help - people are more willing to answer if you have a higher accept rate. But of course this is your choice. –  mathematician1975 Jul 11 '12 at 23:18
    
OK fair enough. –  mathematician1975 Jul 11 '12 at 23:20
    
@user643469: Questions that don't yet have any answers don't affect your acceptance rate. –  Oli Charlesworth Jul 11 '12 at 23:57
    
@user643469 -- I am assuming PV_and WT_supply are constant matricies? What dimensions are they? It sounds like the code works till element 22 and then falls apart. Is it possible that element 22 presents input that causes an error? –  chessofnerd Jul 12 '12 at 0:20
    
The problem is that I need each row of A to account for the 21 values in "Diesel_supply" column individually. however I don't know how to code/index the for loop and "A" because the size of row 1 and 2 are both 1 element whereas row 3 (which takes its values from the "Diesel_matrix" is any possible value between row 1 and 21 of "Diesel_matrix" so I am trying to account for each value individually –  user643469 Jul 12 '12 at 0:25
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1 Answer

up vote 0 down vote accepted

Per the conversation @user643469 and I had in chat (see link in comments section) and looking at the documentation for linprog afterwards, I think you need to store the results of each z-iteration in a data structure and then pick the best one after the loop has finished.

As I understand, the generator has 21 different modes you can run it in and it is subject to 24 different constraints. Each mode changes the constaints a little.

Instead of

[x,fval,exitflag] = linprog(f,A,b,[],[],lb,ub)

use

val = linprog(f,A,b,[],[],lb,ub)
results(z) = val;

After the loop has finished, you will be left with a results matrix with the dimensions 4x21 where the first column contains x-values, second contains fval values and third contains exitflag values. You can then you through this 'results' matrix to determine which of the 21 modes you have available to run the generator in.

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