finding unknown values in a column by using the indices (indexes) of known values.
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Hello, I'm struggling a lot with some of the indexing methods. Right now I have the next matrix:
1.5000 1.7024
1.5000 1.3119
1.5000 1.3122
0.5000 0.8158
0.5000 1.1760
(it's actually a 200 by 2 matrix, but I have shortened it to make things clearer)
The values in row 1 have been provided by linspace(0.5, 1.5, 5) and the values in row 2 have been entered by the user (they are the user's reaction times, and the latter [the values in col 1] are the stimuli durations).
What I'm trying to do is to find all the user's input when the duration was 1.5000 and find the mean of those values.
So far I used: [r,c]=find(mat==1.5000), and got:
r =
1
2
3
10
17
What I need now is the values next to those rows (that is the ones in col 2) and find their mean.
Hope I was clear and concise. Thanks in advance
Respuesta aceptada
Walter Roberson
el 17 de Jul. de 2012
mat(r, 2)
Note: be cautious on those floating point comparisons! http://matlab.wikia.com/wiki/FAQ#Why_is_0.3_-_0.2_-_0.1_.28or_similar.29_not_equal_to_zero.3F
3 comentarios
Juan Pablo
el 17 de Jul. de 2012
Ryan
el 17 de Jul. de 2012
He is warning you that find(variable == specific number) may not actually return "true" values (matches) that you're expecting because of the reasons outlined in that Matlab Wikia post. It may not apply here, but it's a good tidbit to know about to save yourself potentially from future headaches.
Juan Pablo
el 17 de Jul. de 2012
Más respuestas (2)
Sean de Wolski
el 17 de Jul. de 2012
accumarray time! (happy time :) )
x =[1.5000 1.7024
1.5000 1.3119
1.5000 1.3122
0.5000 0.8158
0.5000 1.1760]
[y,~,idxu] = unique(x(:,1)); %indexes of each row into each unique value
y(:,2) = accumarray(idxu,x(:,2),[],@mean) %their mean
7 comentarios
Juan Pablo
el 17 de Jul. de 2012
Juan Pablo
el 17 de Jul. de 2012
Juan Pablo
el 17 de Jul. de 2012
Sean de Wolski
el 17 de Jul. de 2012
What do you have defined as x? If you clear you workspace and copy the above in, it works.
Juan Pablo
el 17 de Jul. de 2012
Juan Pablo
el 18 de Jul. de 2012
Sean de Wolski
el 18 de Jul. de 2012
doc unique
doc accumarray
!
Elizabeth
el 17 de Jul. de 2012
Editada: Walter Roberson
el 18 de Jul. de 2012
Probably not as efficient as those above, but this is the simplest way I always tried to do it.
j= find(row1==1.5);
for k=1:length(j)
d(k)=c(j(k));
end
meanvalues=mean(d)
5 comentarios
Sean de Wolski
el 17 de Jul. de 2012
Editada: Sean de Wolski
el 17 de Jul. de 2012
why not just:
m = mean(x(x(:,1)==1.5,2))
Juan Pablo
el 18 de Jul. de 2012
Juan Pablo
el 18 de Jul. de 2012
Walter Roberson
el 18 de Jul. de 2012
row1 = mat(:,1);
It is a column, but Elizabeth has called it a row because you confused rows and columns when you phrased the question.
Juan Pablo
el 24 de Sept. de 2013
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