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Non-Sorted nx1 unique values

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William Honjas
William Honjas le 19 Déc 2016
Commenté : Jan le 16 Jan 2017
Hello, i am attempting to find repeated values in an nx1 matrix, the catch is that the unique function sorts the data. The data should not be sorted. Ideally i would like the output from my mystery function to be 1 for not repeated and 0 for repeated. Any suggestions?!
input: [1;1;1;2;3;4;5;6;6;7] output:[1;0;0;1;1;1;1;1;0;1]
the idea is that i can multiply the output and the original matrix where the data resides so that duplicate records will show as 0 values, but the first stays!
Thanks again! If you would like me to post another question please let me know!
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Image Analyst
Image Analyst le 19 Déc 2016
Give a short example of your input and desired output. Why don't you just use unique and histogram(). Are your data integers or floating point values?
William Honjas
William Honjas le 19 Déc 2016
input: [1;1;1;2;3;4;5;6;6;7] output:[1;0;0;1;1;1;1;1;0;1]
the idea is that i can multiply the output and the original matrix where the data resides so that duplicate records will show as 0 values, but the first stays! My data are floating points

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Réponse acceptée

Roger Stafford
Roger Stafford le 19 Déc 2016
Let x be the given n by 1 vector.
[y,p] = sort(x);
d = diff(y)~=0;
b = [d;true] & [true;d];
b(p) = b;
Then b will be your "ideal" desired result.
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Roger Stafford
Roger Stafford le 21 Déc 2016
@Jan. In William’s original request he states:, “the idea is that i can multiply the output and the original matrix where the data resides so that duplicate records will show as 0 values, but the first stays!” To be able to do such a multiplication (presumably elementwise) the final reordering by “b(p) = b” would be very necessary.
Jan
Jan le 16 Jan 2017
@Roger: I meant "The data should not be sorted." Anyway, both methods are included in your solution.

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Plus de réponses (1)

John BG
John BG le 19 Déc 2016
Modifié(e) : John BG le 19 Déc 2016
but this code seems to work with any randomly generated sequence.
If it works for noise it works for any deterministic signal, oder?
N=20;
A=randi([-10 10],1,N);
% nA=[1:1:numel(A)]
A
[B,reloc]=sort(A)
% dB=diff(B)
% B(find(dB~=0))
nv=0;
k=1
while k<=numel(B)-1
k=k+1
u0=B(k-1);u1=B(k);
if u0==u1
nv=[nv k]
k=k+1
while B(k-1)==B(k);
k=k+1
end
end
end
nv(1)=[]
B(nv)
for certain sequences there is an overflow message
Index exceeds matrix dimensions.
Error in find_long_bursts (line 17)
while B(k-1)==B(k);
don't worry, sequence
nv
contains the right indices and therefore
B(bv)
is ok.
Just had to do something else, I am cleaning it if Mr Honjas likes the code :) .
if you John BG's answer useful would you please mark it as Accepted Answer?
To any other reader, please if you find this answer of any help, click on the thumbs-up vote link,
thanks in advance for time and attention
John BG
<mailto:jgb2012@sky.com jgb2012@sky.com>
  1 commentaire
William Honjas
William Honjas le 19 Déc 2016
Unbelievanlble how fast the community responds!! So appreciative. I am outside my office at the moment and see if the output is what I need tomorrow. I greatly appreciate the effort that you have put into this. Kinda restores my faith in humanity a bit! Thanks again!

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