Basic question: how to find range of index values

13 Jun. 2011
7 Respuestas
Respuesta aceptada
7 Visualizaciones (30 días)

0 votos

I want to find the location (range of N index values) over which a variable (mydata) holds a specific value (X)
The variable (mydata) contains many occurrences of X before the occurrence of a plateau - where the value of X is constant for N data points.
ELABORATION:
My problem is a little more complex.
mydata = [1 1 2 3 4 5 6 1 4 4 4 4 4 4 4 1 45 67 8 9 4 4 4 4 4 1 36 2 4 4 4 3 1 1 18 98 99]
I want to find the index values for the 7 (N) consecutive occurrences of '4'. I do not want to find the other occurrences of '4' i.e. one occurrence before the sequence of 7 and later one occurrence of a sequence of 5.

Iniciar sesión para responder a esta pregunta.

 Respuesta aceptada

Etienne O'Brien
Etienne O'Brien el 13 de Jun. de 2011

0 votos

Thank you everyone.
Matt's solution worked for me
S = findstr(mydata,4*ones(1,3));
However, my computer is making heavy weather of this calculation. It's taking several seconds to return the answer as it returns the starting values of sub-occurrences. Unfortunately I realise now that I don't know the precise length of the sequence. For example it could be 1100 or 1500 data points long but I do know that there will be at least 1000. Is it possible to adapt Matt's function to return the first occurrence only?
Thank you.

4 comentarios
Mostrar 2 comentarios más antiguos Ocultar 2 comentarios más antiguos

Matt Fig
Matt Fig el 13 de Jun. de 2011
Several seconds? What size is the data you are looking at? I tested this with data (mydata) which is 1-by-500000 and it took less than a tenth of a second.... For example:
mydata = round((rand(1,500000)>.15)*4);
N = 6; % Look for 6 4s in a row.
tic
M = findstr(mydata,4*ones(1,N));
toc
Elapsed time is 0.005884 seconds.
Etienne O'Brien
Etienne O'Brien el 14 de Jun. de 2011
Thanks Matt,
I'm not quite sure what the reason for this delay was. It has gone now. Thanks for your help with this issue. I have re-posted a somewhat related data question and would be grateful if you have time to look at it also.
Andrew Newell
Andrew Newell el 14 de Jun. de 2011
Etienne, I hope that you selected your own answer by mistake. Matt's was clearly the correct choice.
Etienne O'Brien
Etienne O'Brien el 16 de Jun. de 2011
Yes, you are correct. I am sorry.

Iniciar sesión para comentar.

Más respuestas (6)

Matt Fig
Matt Fig el 13 de Jun. de 2011

3 votos

mydata = [1 1 2 3 4 5 6 1 4 4 4 4 4 4 4 1 45 67 8 9 4 4 4 4 4 1 36 2 4 4 4 3 1 1 18 98 99];
findstr(mydata,4*ones(1,7))
This finds the starting index of a sequence of 7 4s in a row. Change the 4 to a 5 to find a sequence of 7 5s in a row. Change the 7 to a 3 to find a sequence of 3 4s in a row, etc.
Note that the above will return the starting indices of all occurrences of, say, 3 4s in a row - even where those occurrences are sub-occurrences. To limit the search to only those occurrences which are exactly the length desired, simply make one more call to the function:
S = findstr(mydata,4*ones(1,3));
S = S(findstr([0 diff(S)==1 0],[0 0]))
Laura Proctor
Laura Proctor el 13 de Jun. de 2011

0 votos

If you wish to find the corresponding index values where your variable mydata is equal to X, then you can use the find command like this:
iVals = find(mydata==X);
Chirag Gupta
Chirag Gupta el 13 de Jun. de 2011

0 votos

I am not exactly clear about the question, but may be this is a starting point:
mydata = [1 1 2 3 4 5 6 1 1 45 67 8 9 1 36 2 3 1 1 18 98 99];
c = find(mydata==1)
You would probably to refine the condition inside the find, especially if your are dealing with doubles
Laura Proctor
Laura Proctor el 13 de Jun. de 2011

0 votos

The following will find the maximum run and return the index values in that run to a variable named reqVals.
I'm sure there's a tidier way to do this, but off the top of my head:
mydata = [1 1 2 3 4 5 6 1 4 4 4 4 4 4 4 1 45 67 8 9 4 4 4 4 4 1 36 2 4 4 4 3 1 1 18 98 99];
iVals = find(mydata==4);
sVals = iVals([true diff(iVals)~=1]);
eVals = iVals([diff(iVals)~=1 true]);
lVals = eVals - sVals + 1;
[num idx] = max(lVals)
reqVals = sVals(idx):eVals(idx)
Andrei Bobrov
Andrei Bobrov el 13 de Jun. de 2011

0 votos

md = mydata==4;
vf = find([true diff(md)~=0]);
idx = [vf; vf(2:end)-1 length(md)];
indexsevenfour = idx(:,diff(idx)+1== 7)';
MORE variant
idx = bsxfun(@plus,1:7,(1:length(mydata)-7)'-1);
idx(all(bsxfun(@eq,mydata(idx),4*ones(1,7)),2))
Etienne O'Brien
Etienne O'Brien el 13 de Jun. de 2011

0 votos

Thanks Laura and Andrei,
I've followed up Andrei's as it is the shorter.
I'm sorry, I'm a little lost though - I'm almost a complete beginner.
(1) I get this error message: ??? Error using ==> horzcat CAT arguments dimensions are not consistent.
(2) Could you correct me, if I'm wrong here in my interpretation.
md = mydata==4; % This finds the index values of all occurrences of '4' in the data set
vf = find([true diff(md)~=0]); % What does this do?
idx = [vf; vf(2:end)-1 length(md)]; % What does this do?
indexsevenfour = idx(:,diff(idx)+1== 7)'; % Does this provide the index values for the seven consecutive values of '4'
Thank you.

2 comentarios
Mostrar Ninguno Ocultar Ninguno

Matt Fig
Matt Fig el 13 de Jun. de 2011
See my solution above.
Laura Proctor
Laura Proctor el 13 de Jun. de 2011
I would go with Matt's response if you want to find sequence of (7) 4's in a row as that is the simplest way to find the index value of the starting point.
The other methods use logical indexing, which assign values of 1 for true and 0 for false.

Iniciar sesión para comentar.

Categorías

Más información sobre Creating and Concatenating Matrices en Centro de ayuda y File Exchange.

Etiquetas

Community Treasure Hunt

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

Start Hunting!

Translated by