Index with min command
Mostra commenti meno recenti
Hi
I am working with the minimums calculated from two arrays in the following way -
NE = 100;
t = linspace(0,2,2*NE);
T = linspace(0,1,2*NE);
for ii = 1:NE
[val,index] = min(abs(t-T(ii)))
end
now i understand the value of "val", but i cannot figure out how the values for "index" are coming out. For my work the value of index is very important. I would really appreciate if someone help me figure it out.
Thanks
Hossain
2 Commenti
Matt J
il 18 Nov 2012
What doesn't make sense about the behavior you're seeing?
SAZZAD HOSSAIN
il 18 Nov 2012
Risposte (2)
Azzi Abdelmalek
il 18 Nov 2012
Modificato: Azzi Abdelmalek
il 18 Nov 2012
NE = 100;
t = linspace(0,2,2*NE);
T = linspace(0,1,2*NE);
val=[];
index=[];
for ii = 1:NE
[val1,index1] = min(abs(t-T(ii)))
val=[val val1];
index=[index index1];
end
index is the position of the min value in the vector t
3 Commenti
Jan
il 18 Nov 2012
No, index is not the position of the minimal value of t. This would be [val, index] = min(t).
Azzi Abdelmalek
il 18 Nov 2012
Modificato: Azzi Abdelmalek
il 18 Nov 2012
It's clear min value don't belong to t, it's the position of the value of t making t-T(ii) minimal. And I did'nt say it's a minimal value of t
Ok, then I confuse "index is the position of the min value in the vector t" with "...of the vector t". My English is not firm.
The problem of the OP is exactly, that the meaning of the index is not clear. So this point should be very clear, although it is almost trivial.
Jan
il 18 Nov 2012
At first you create a temporary vector:
v = abs(t-T(ii));
Then you find its minimum value and the corresponding index:
[val, index] = min(v)
such that v(index) has the value val.
Categorie
Scopri di più su Matrix Indexing in Centro assistenza e File Exchange
Prodotti
il 18 Nov 2012
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
