Changing duplicates in an array to zero?

6 visualizzazioni (ultimi 30 giorni)
Dominic Green
Dominic Green il 25 Mar 2014
Risposto: Jos (10584) il 25 Mar 2014
SO I have an array that looks like:
0 0 6 6 3 3
Basically my question is, how do you check for a duplicate value and if there is a duplicate existing, keep the first value, but set the second value to zero.
The result would be:
0 0 6 0 3 0
Thanks in advance, Dom
  2 Commenti
Joseph Cheng
Joseph Cheng il 25 Mar 2014
Are you just talking about consecutive duplicate values? such as [0 0 6 6 3 3 6 6 3 3] turns to [ 0 0 6 0 3 0 6 0 3 0]
or all duplicate values? such as [ 0 0 6 3 6 3] becomes [0 0 6 3 0 0].

Accedi per commentare.

Accedi per rispondere a questa domanda.

Risposta accettata

Joseph Cheng
Joseph Cheng il 25 Mar 2014
Modificato: Joseph Cheng il 25 Mar 2014
here is a simple thing i just threw together. Hopefully it helps. As you can see what i'm doing below is finding the differences using diff() which subtracts adjacent values. when offset by x(1) and you can see that the zero values in y line up with the duplicate values found in x. using the find function you can get the index of zero values when y is zero. then you can substitute the values (here i used z) for zero.
x = [1 1 6 6 3 3 2 3 4 6 6 3 3 2 2 2 3 3 3]
y = [ x(1) diff(x)]
y = find(y==0);
z = x
z(y)=0
if it is all duplicate values as i asked in my earlier comment. Still thinking about that one.
  3 Commenti
Mostra 1 commento meno recente
Dominic Green
Dominic Green il 25 Mar 2014
But I like your thinking, I just made myself one. Thanks a heap!
Joseph Cheng
Joseph Cheng il 25 Mar 2014
simpler way, you can also use [C,IA,IC] = unique(x,'stable')and it'll give you the index of the first occurrence in IA for that number. and then you can set the rest into 0

Accedi per commentare.

Più risposte (1)

Jos (10584)
Jos (10584) il 25 Mar 2014
x = [1 1 6 6 3 3 2 3 4 6 6 3 3 2 2 2 3 3 3]
y = zeros(size(x))
[~,i] = unique(x,'first')
y(i) = x(i)

Categorie

Scopri di più su Data Type Identification in Help Center e File Exchange

Tag

Community Treasure Hunt

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

Start Hunting!

Translated by