Uniques giving duplicates (unresolved)

3 views (last 30 days)
Doron
Doron on 23 Feb 2012
Edited: Eagle on 23 Oct 2013
I created a matrix P, and I incremented the values in first column using a for loop...
"for X = 0.9:0.025:1..."
After plotting, I then wanted to focus a bit more on one of the values, namely X = 0.975...
So I (manually) asked matlab to do some more calculations using 0.975 without a loop:
"for X = 0.975"
However, for reasons which I now understand, the 0.975 which was created in the loop is not EXACTLY equal to 0.975.
So, when I ask for the unique values in the X column, I received 0.975 twice:
>> PU = unique(P(:,1))
PU =
0.900000000000000
0.925000000000000
0.950000000000000
0.975000000000000
0.975000000000000
1.000000000000000
>> PU(4) - PU(5)
ans =
-1.110223024625157e-16
They are out by a tiny amount...
I designed my plotting routine to plot a line for each unique X value... So, there are two distinct legend lines for X = 0.975...
Two questions:
1. How do I avoid this problem in the future (even though I understand the cause, I don't see a solution). I will generally be plotting data from the original loop seeing how it looks, and manually requesting more information on specific values. So, how do I get around the problem that the for loop does not add EXACTLY what I ask it to?
2. How do I make the two "0.975...'s" equal to each other now? (They each appear a few thousand times in the first column of matrix P)
Thanks
D Howard

Accepted Answer

Walter Roberson
Walter Roberson on 23 Feb 2012
xvals = 0.9:0.025:1... %list of values for your loop
for X = xvals
....
end
nearest975 = interp1(xvals, xvals, 0.975, 'nearest');
for X = nearest975
...
end
In this way, nearest975 will be an exact copy of one of the values in the list xvals, which is the list you looped over.
Also, generally speaking linspace() has higher accuracy than the colon operator.
You would use the colon operator in a "for" loop instead of linspace if memory space is tight, in that linspace will create the complete list of values and store it, but the colon operator in a for loop will not store the values ahead of time and will generate them as needed. (Note: in the code I show above, the colon operator is not being used in a for loop, so the values will be generated and stored.)
  4 Comments
Doron
Doron on 24 Feb 2012
Hello Walter,
I will look into the "solutions for the future" today...
But, for now, I want to solve the problem in the current matrix P (which took 3 days to compute)... There are three solutions I can think of in principle, but I don't know how to perform any of them:
1. replace all the PU(5) values with PU(4) (or vice-versa)
2. round off the entire column to 5 decimal places.
3. modify the unique statement itself with some tolerance level of (0.000000001) to allow the two to be "equal" in the modified PU vector
I don't like (1) because it is not general enough to put into a proper code, and it will mean looking manually each time for duplicates in PU.
I don't know if either of (2) or (3) is possible or how to do it.
Thanks
D Howard
Doron
Doron on 24 Feb 2012
(...also, sometimes I will be throwing out the previous "xvals", including the one I am interested in if I want to increase the repetitions to get lower-variance estimates, so this interpolation thing just seems so twisted and impracticle)

Sign in to comment.

More Answers (0)

Categories

Find more on Loops and Conditional Statements in Help Center and File Exchange

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!