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The output is always two values when it is supposed to be only 1 ..

s is a struct where

1x1024 struct array with fields:
    ID
    s1
    s2
    s3
    s4
    PB1
    PB2
    PB3
    PB4
    eG
    next

I have the following loop :

for t=1:length(s)

if s(t).eG==0


 if s(t).s1==1

    if s(t).PB1==0
        slackp(t)=0; 
    elseif s(t).PB1==1
        slackp(t)=350;
    elseif s(t).PB1==2
        slackp(t)=600;
    elseif s(t).PB1==3
        slackp(t)=750;
    end
end

 if s(t).s2==1

    if s(t).PB2==0
        slackp2(t)=0; 
    elseif s(t).PB2==1
        slackp2(t)=500;
    elseif s(t).PB2==2
        slackp2(t)=620;
    elseif s(t).PB2==3
        slackp2(t)=785;
    end

  end
 end
end

However I notice that at the following statement at t=2

        elseif s(t).PB1==1
        slackp(t)=350;

It always prints

 slackp(1)=[0 350] 

The error carries forward and multiple other entries have 0 alongside with them !! Why is this happening ? I am just trying to store 350, I don't want a 0 there !

I tried debugging the problem, and realised that whenever s1 is not =1, it will print a 0. It shouldn't. If s1 is not 1 then just skip the IF statement. Same goes for s2.

share|improve this question
    
'However I notice that at the following statement at t=2'. This is because slackp(t)=350; is doing slackp(2)=350; This means it's setting the second element to 350. –  jucestain Apr 7 '13 at 21:27
    
If slackp is empty, then you add an element to slackp(2) you'll get a 2 element array where the first element is 0. Is that's what's happening here? –  Molly Apr 7 '13 at 21:28

1 Answer 1

up vote 1 down vote accepted

To get around this problem you can use a different variable to index slackp than to index s. For example:

clear all
s(1).s1 = 0;
s(1).PB1 = 2;
s(1).PB2 = 2;
s(1).s2 = 0;
s(2).s1 = 1;
s(2).s2 = 1;
s(2).PB1 = 1;
s(2).PB2 = 3;
s(3).s1 = 1;
s(3).PB1 = 2;
s(3).s2 = 1;
s(3).PB2 = 2;

index1 = 1;
index2 = 1;
for t=1:length(s)
if s(t).s1==1
    if s(t).PB1==0
        slackp(inde1x)=0; 
         index1 = index1 + 1;
    elseif s(t).PB1==1
        slackp(index1)=350;
         index1 = index1 + 1;
    elseif s(t).PB1==2
        slackp(index1)=600;
         index1 = index1 + 1;
    elseif s(t).PB1==3
        slackp(index1)=750;
         index1 = index1 + 1;
    end

end 


if s(t).s2==1

    if s(t).PB2==0
        slackp2(index2)=0; 
        index2 = index2 + 1;
    elseif s(t).PB2==1
        slackp2(index2)=500;
        index2 = index2 + 1;
    elseif s(t).PB2==2
        slackp2(index2)=620;
        index2 = index2 + 1;
    elseif s(t).PB2==3
        slackp2(index2)=785;
        index2 = index2 + 1;
    end

    end

 end

Will give you:

slackp =

350 600

slackp2 =

785 620

Alternately, you can use end + 1 to index your output array, like this:

slackp = [];
for t=1:length(s)
    if s(t).s1==1
        if s(t).PB1==0
            slackp(end + 1)=0; 
        elseif s(t).PB1==1
            slackp(end + 1)=350;
        elseif s(t).PB1==2
            slackp(end + 1)=600;
        elseif s(t).PB1==3
            slackp(end + 1)=750;
        end
    end 
 end
share|improve this answer
    
This is not working for me, I am not sure why. I updated the code, I debugged it further and realised that this only happens when there is an extra IF statement. –  NLed Apr 7 '13 at 23:21
    
What do you mean extra if state? Are you using a separate index for slackp2? –  Molly Apr 7 '13 at 23:27
    
No I'm using the same index value for the whole for loop. an extra IF statement that I added in the updated question. It's if s(t).eG==0 .. Apparently If I don't use that, the values are printed and stored correctly, otherwise, the extra zeros start appearing. –  NLed Apr 7 '13 at 23:41
    
Or maybe the IF statement doesn't do anything, I am not sure, but the result still prints with extra zeros. –  NLed Apr 7 '13 at 23:42
    
Ok, I misinterpreted your question. If you never want extra zeros, you need to increment index only when you add something to slackp.I've updated my answer. –  Molly Apr 7 '13 at 23:49

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