How to compare multiple strings and assign values to the comparison?

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German Preciat Gonzalez
German Preciat Gonzalez 2016년 6월 28일
댓글: José-Luis 2016년 6월 28일
I have data from 6 different sources in a form of strings. I want to compare which strings are the same.
So if I have:
d1='111'
d2='223'
d3='111'
d4='125'
d5='111'
d6='125'
d1,d3,d5 are the same, d4 and d6 are the same too and d2 is different to all, so I will like to receive a vector where similar strings have the same number, like this:
[1 2 1 4 1 4]
if all the strings are different I will like to receive something like this:
[1 2 3 4 5 6]
or all the same
[1 1 1 1 1 1]
so far I've use a very ugly program with a lot of IF and ISEQUAL, any suggestions I will really appreciate it!

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José-Luis
José-Luis 2016년 6월 28일
편집: José-Luis 2016년 6월 28일
Copying beginning from Siva because I'm lazy:
K = [{'111'} ; {'223'} ; {'111'} ; {'125'} ;{'111'} ; {'125'}] ;
Solving your problem more efficiently:
[val,ia,ib] = unique(K,'stable') ; % get unique values
your_answer = ia(ib);
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Guillaume
Guillaume 2016년 6월 28일
I find that method of creating a cell array very odd!
K = {'111'; '223'; '111'; '125'; '111'; '125'};
is less to type and a lot simpler.

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추가 답변 (3개)

Guillaume
Guillaume 2016년 6월 28일
Dr. Siva Srinivas Kolukula has the right idea: use unique. His answer is unnecessarily complicated though.
First though, do not use numbered variables. If they're numbered it means that they've got some sort of relationship. That relationship is much better expressed by putting the content of these variables together into the same container: matrix, cell array, map, table, etc. In your case, a cell array seems best.
Anyway, the third return value of unique is what you're after:
d = {'111', '223', '111', '125', '111', '125'}
[~, ~, uid] = unique(d, 'stable') %'stable' is optional. If not present unique ids are assigned alphabetically
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Guillaume
Guillaume 2016년 6월 28일
Well, the question was "I will like to receive a vector where similar strings have the same number", which the above does.
José-Luis
José-Luis 2016년 6월 28일
Indeed, but that's not what the example result showed. Anyway, interpreting questions is an art sometimes...

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KSSV
KSSV 2016년 6월 28일
편집: KSSV 2016년 6월 28일
clc; clear all ;
K = [{'111'} ; {'223'} ; {'111'} ; {'125'} ;{'111'} ; {'125'}] ;
[val,idx] = unique(K,'stable') ; % get unique values
iwant = zeros(size(K)) ; % initialize what you want
count = 0 ;
% loop for each equal string
for i = 1:length(idx)
count = count+1 ;
Index = strfind(K,val{i}) ;
Index = find(not(cellfun('isempty', Index))) ;
iwant(Index) = count ;
end
KSSV
KSSV 2016년 6월 28일
Jose-Luis idea is good....but only one step is needed.
[val,ia,your_answer] = unique(K,'stable') ; % get unique values
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José-Luis
José-Luis 2016년 6월 28일
No, what the op wanted, if I understood correctly, is the index to the first occurrence. Therefore that wouldn't work.

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