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I have this code, but there must be a better efficient to write it:

rt= RealTrans;
rtsize=size(rt);
rtrows=rtsize(1);
Relative_Axis_Moves=[rt(1,1) rt(1,2) rt(1,3) rt(1,4) rt(1,5);
rt(2:rtrows,1)-rt(1:rtrows-1,1) rt(2:rtrows,2)-rt(1:rtrows-1,2)
rt(2:rtrows,3)-rt(1:rtrows-1,3) rt(2:rtrows,4)-rt(1:rtrows-1,4)
rt(2:rtrows,5)-rt(1:rtrows-1,5)];

There are two rows in the matrix. The first row ends at rt(1,5).

I also have the following code:

p1size=size(p1); 
p1rows=p1size(1); 
flank_edge_point=[0 0 0; p1(2:p1rows,2)-p1(1:p1rows-1,2) xy(2:p1rows,1)-xy(1:p1rows-1,1) xy(2:p1rows,2)-xy(1:p1rows-1,2); 0 0 xy(p1rows,2)];

How do i get xy(p1rows,2) value in matlab without p1rows?

I also have the code below which relies on the number of rows:

RAMrow=size(Relative_Axis_Moves);
RAMrow=RAMrow(1);
for i=1:RAMrow
L(i)= norm(Relative_Axis_Moves(i,:));
end
L=L';
L(RAMrow+1)= 0;

Any way to write this code more succinctly and efficiently would be greatly appreciated.

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I formatted the code IMHO to more readable one. Feel free to ignore it. Thanks –  eat Apr 13 '11 at 14:46

1 Answer 1

up vote 3 down vote accepted

Most likely, there will be more than two rows in Relative_Axis_Moves, since the differences in the second row evaluate to arrays.

Anyway, a compact way of writing this is

Relative_Axis_Moves = [RealTrans(1,1:5);diff(RealTrans(:,1:5),1,1)];
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@Venkat: In future, please update your question with any code that you'd like to add. The question provides better formatting and is easier to read than in the comments. I've updated the text for you this time. –  r.m. Apr 13 '11 at 16:10

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