Use array values as assignment indecis

1 visualizzazione (ultimi 30 giorni)
Gabriel Stanley
Gabriel Stanley il 23 Nov 2022
Commentato: Matt J il 8 Mag 2023
A = N-by-2 array, wherein A(:,1)<A(:,2)
B = M-by-2 array, wherein B(:,1)<B(:,2)
A and B are essentially time stamps.
C = unique(vertcat(A,B));
[~,D] = ismember(A,C);
[~,E] = ismember(B,C);
C([D(1,1):D(1,2),...D(N,1):D(N,2)],2) = any scalar, or an array with a sufficient number of elements to dstribute.
C([E(1,1):E(1,2),...E(N,1):E(N,2)],3) = any scalar, or an array with a sufficient number of elements to dstribute.
I'm hung up on defining those assignment indecis [D(1,1):D(1,2),...D(N,1):D(N,2)] without using a loop, i.e.
IdcsD = double.empty;
for i=1:size(D,1)
Idcs = [Idcs,[D(i,1):D(i,2)]];
end
C(IdcsD) = Value;
  3 Commenti
Mostra 1 commento meno recente
Matt J
Matt J il 23 Nov 2022
Please show an example for small N and showing the desired output D.
Gabriel Stanley
Gabriel Stanley il 23 Nov 2022
Modificato: Gabriel Stanley il 23 Nov 2022
Value is a scalar, while OBE

Accedi per commentare.

Accedi per rispondere a questa domanda.

Risposta accettata

Matt J
Matt J il 23 Nov 2022
Modificato: Matt J il 23 Nov 2022
Ran in:
The question has nothing to do really with ismember. It's more about how to turn a list of interval end points into indices. One way is as follows:
D=[1 5 9;
2 7 12]' %interval end points
D = 3×2
1 2 5 7 9 12
C=rand(1,12);
nc=length(C);
assert(all(diff(D,1,2)>=0) & all(D(:)>0) & all(D(:)<=nc) ,'Invalid data present')
D=D+[0,1]; s=0*D+[1,-1];
csum=cumsum( accumarray(D(:),s(:),[nc+1,1]) );
Idcs=logical(csum(1:end-1))',
Idcs = 1×12 logical array
1 1 0 0 1 1 1 0 1 1 1 1
Idcs=find(Idcs) %Shouldn't be needed. Use logical indices above.
Idcs = 1×9
1 2 5 6 7 9 10 11 12
  5 Commenti
Mostra 3 commenti meno recenti
Gabriel Stanley
Gabriel Stanley il 8 Mag 2023
So in the case of the interval end points of D defining a subset of some larger data set C, nC should be set to the maximum index of the relevant dimension in C?
Matt J
Matt J il 8 Mag 2023
The dimension/shape of C seems irrelevant to this task. I think you would just flatten C to C(:) and apply the code above as is.

Accedi per commentare.

Più risposte (0)

Categorie

Scopri di più su Logical in Help Center e File Exchange

Tag

Prodotti


Release

R2019b

Community Treasure Hunt

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

Start Hunting!

Translated by