Multidimensional array indexing question

8 Ago 2016
2 Risposte
Risposta accettata
Aggiornato 9 Ago 2016
3 Visualizzazioni (30 giorni)

0 voti

I have a matrix x that is of size [61 2 45].
linearIndex = find(x(:,1,:) < x(:,2,:));
xAverage = (x(:,1,:) + x(:,2,:))/2;
Now I want to assign the average to anywhere x(:,1,:) < x(:,2,:). I come up with the following but it seems a bit verbose and un-elegant. Thoughts on how to do this better?
[subScriptIndex1, subScriptIndex2, subScriptIndex3] = ind2sub(size(linearIndex), linearIndex);
x(subScriptIndex1, 1, subScriptIndex3) = xAverage(subScriptIndex1, 1, subScriptIndex3);
x(subScriptIndex1, 2, subScriptIndex3) = xAverage(subScriptIndex1, 1, subScriptIndex3);

1 Commento
Mostra -1 commenti meno recenti Nascondi -1 commenti meno recenti

Jason Nicholson
Jason Nicholson il 8 Ago 2016
The new code looks like this:
linearIndex = linearIndex(:,[1,1],:);
x(linearIndex) = xAverage(linearIndex);
This is cleaner.

Accedi per commentare.

Accedi per rispondere a questa domanda.

 Risposta accettata

Stephen23
Stephen23 il 8 Ago 2016
Modificato: Stephen23 il 8 Ago 2016

0 voti

Your understanding is correct: if a logical index is shorter than the array it is being used on, then the index is not expanded in any way. The solution is to make the index the exact size that you require:
x = reshape((1:18)',[3 2 3])
xx = x;
idx = x(:,1,:) < x(:,2,:);
idx = idx(:,[1,1],:) % or repmat
x(idx) = nan
[xx(:) x(:)]

3 Commenti
Mostra 1 commento meno recente Nascondi 1 commento meno recente

Jason Nicholson
Jason Nicholson il 8 Ago 2016
Excellent. That works!
Stephen23
Stephen23 il 8 Ago 2016
Note that this behavior is closely related:
>> X = [1,2,3,4];
>> X([false,true]) % shorter than X
ans =
2
>> X([false,true,false(1,200)]) % longer than X, but only false..
ans =
2
Jason Nicholson
Jason Nicholson il 9 Ago 2016
Interesting.

Accedi per commentare.

Più risposte (1)

Fangjun Jiang
Fangjun Jiang il 8 Ago 2016

1 voto

x=rand(6,2,4);
MeanX=mean(x,2);
idx=x(:,1,:) < x(:,2,:);
x(idx)=MeanX(idx);

3 Commenti
Mostra 1 commento meno recente Nascondi 1 commento meno recente

Jason Nicholson
Jason Nicholson il 8 Ago 2016
Modificato: Jason Nicholson il 8 Ago 2016
The meanX line is better than what I did for sure.
The line starting with x(idx) doesn't work though. You don't get an error but it is wrong. The problem is the size of idx is [6 1 4] while x is of size [6 2 4]. I think what is happening is logical indexing relies on the linear index of an array. Therefore size of idx has 24 elements while x has 48 elements. Only the first 24 elements of x are modified while the 2nd 24 elements are not modified. Try the following to see what I am saying. Note that the 2nd half according to the linear index of x is not modified. The [xx(:) x(:)] when output to the command window, should make this clear.
x = reshape((1:18)',[3 2 3])
xx = x;
idx = x(:,1,:) < x(:,2,:);
x(idx) = nan
[xx(:) x(:)]
Fangjun Jiang
Fangjun Jiang il 8 Ago 2016
How about this? I think it works but what if the second dimension is larger than 2? There must be a a better way.
x=rand(6,2,4);
MeanX=mean(x,2);
MeanX(:,2,:)=MeanX(:,1,:);
idx=x(:,1,:) < x(:,2,:);
idx(:,2,:)=idx(:,1,:);
x(idx)=MeanX(idx);
Jason Nicholson
Jason Nicholson il 9 Ago 2016
Modificato: Jason Nicholson il 9 Ago 2016
Your second suggestion does work.
When the dimension is greater than 2, I think repmat may be the solution.

Accedi per commentare.

Categorie

Scopri di più su Matrix Indexing in Centro assistenza e File Exchange

Prodotti

Tag

Community Treasure Hunt

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

Start Hunting!

Translated by