How to pick next value from vectors?
Ältere Kommentare anzeigen
I have a cumulative vector, size is about 200. I want to pick up that index where value is 0,5 or value which is next to it. For example (0.1, 0.23, 0.42, 0.49, 0.52, 0.56,...), so i want to pick up index which corresponding to value 0.52. How can I do it?
Akzeptierte Antwort
Jos (10584)
am 4 Mär. 2013
Here is one approach:
v = [0.1 0.23 0.4 0.52 0.56 1.1]
idx = find(v >= 0.5,1,'first')
v(idx)
8 Kommentare
Wayne King
am 4 Mär. 2013
@Jos, You're absolutely right Jos, I misread the poster's question. My answer is not relevant, deleting.
Teemu
am 5 Mär. 2013
Teemu
am 5 Mär. 2013
Jan
am 5 Mär. 2013
@Teemu: See index in the code I've posted yesterday already.
Teemu
am 5 Mär. 2013
Jan
am 5 Mär. 2013
Please, Teemu, read my answer below. There you find the code to pick the element with the minimal distance. It is the 2nd line and the index is the 2nd output of min(abs(v - 0.5)).
Teemu
am 5 Mär. 2013
Weitere Antworten (2)
Jos (10584)
am 5 Mär. 2013
1 Stimme
To do this for multiple values, take a look at my function NEARESTPOINT:
v = [0.1 0.23 0.4 0.52 0.56 1.1];
[absdist, nearest] = min(abs(v - 0.5)); % **SOLUTION IS HERE** !!!
if absdist == 0 % or: <= eps(v(index))
following = index;
else
following = index + 1;
end
nearestValue = value(nearest);
followingValue = value(following);
2 Kommentare
shariq khan
am 3 Dez. 2018
what if I need next larger value? consider same data but my value at specific index is nil (or no value from dataset) but now I want to find if there is any value next to that specific value in the dataset
shariq khan
am 3 Dez. 2018
Bearbeitet: shariq khan
am 3 Dez. 2018
I think I found answer to my problem
Problem - all vectors are of same length
x = [some values]
t = [some values]
x1 = 0.9*max(x);
find t value that corresponds to x1 value
if not find the closest value
solution : A lot from @jan ans
[answer,index] = min(abs(x - x1))
t1(that is to be determined) = t(index);
I hope it helps to solve people facing specific problem
Kategorien
Mehr zu Matrix Indexing finden Sie in Hilfe-Center und File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!
Translated by 
