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I have an array that starts of with zeros and continues into other numbers I would like to delete the columns in the array that start off with zero but keep the other numbers

example of an column array below:

x= [0 0 0 0 0 2 4 6 8 0 1 2];

Answer of column array would look like

x= 2 4 6 8 0 1 2

I'm using octave 3.4.2/matlab


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really, the question makes no sense at all. Could you please improve it? – user677656 Mar 21 '12 at 21:50

3 Answers 3

up vote 1 down vote accepted

Here is the code:

x = x(find(x~=0, 1):end);


x(1:find(x~=0,1)-1) = [];
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thanks for the quick response but when I try x2=x(1:find(x~=0,1)-1) = []; it comes back as a 0x0 array – Rick T Mar 21 '12 at 21:36
The second bit of code is intended to change x itself, and doing x2 = ... = [] sets x2 to []. Try the first bit of code – Syphyreal Mar 21 '12 at 21:41
No, you cannot have 2 assignments. Do exactly as I show in the answer. If you need to make a new vector, use the first way: x2 = x(find(x~=0, 1):end); – yuk Mar 21 '12 at 21:42
@yuk thanks that worked – Rick T Mar 21 '12 at 21:46

The find command should work for this.

Assuming your vector is x:

 find(x ~= 0)

Will return all indices where x is non-zero. Just grab the first index and go from there to delete all values from 1 to index.

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Logical indexing will work just fine in this case: i.e.,

y = x(:,x(1,:)~=0)

will do the job for you. The inner logical comparison, x(1,:)~=0 returns true for every column whose first element is not zero. The indexing operation, x(:,...) selects only those columns for which the logical comparison returned true.

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