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I have a vector like this:

a = [1 2 0 0 3 4 0 5]

I wanna plot this vector but getting rid of the Os. So, I tried this:

> b = (a>0);
> c = a(b);
> plot(c);

The plot is just fine bit I'm not happy with the time axis. On the time axis, I have now consecutive steps; but I want it to be the corresponding time steps from a to the values i plot from c. So, in this case, my timeline should look like this:

> [1 2 5 6 8]

Any ideas?

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3 Answers 3

up vote 1 down vote accepted

Set the undesired values of a to NaN, and plot ignores them and interjects the line where NaN occurs.

a(a==0)=NaN
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Simply define a variable with your t and use the filter on it as well

a= [1 2 0 0 3 4 0 5]
t = 1:length(a)
idx=(a>0);
plot(t(idx), a(idx));
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1  
idx = a~=0 might be what OP wants. –  Divakar Aug 4 '14 at 9:09
    
Possibly. I used the index-logic of the question .. –  zinjaai Aug 4 '14 at 9:12
    
Yes, you are still keeping the index logic(logical indexing) that way and you are adhering to OP's requirement of "get rid of the Os". You are assuming a doesn't have negative values, which OP might want to keep. –  Divakar Aug 4 '14 at 9:14

find() does exactly what you want, return the index of every nonzero value.

a= [1 2 0 0 3 4 0 5];
b=find(a);
plot(b,a(b))

If you only want positive values, you also hook that into find:

b=find(a>0);
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