find the row number of values greater than...

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Richard
Richard el 15 de Ag. de 2012
I would like to find in which column a desired number is first located. From the example below:
x = [0,1,3,2,5,22,24,1,2,6,0.3,.5,30,43,45,32,22,56];
Here, I would like to know where the first number greater than 20 is located. However, if the number of successive values >20 is less than 3 I would like to move onto the next set of values. So the outcome from x (above) should be 13 i.e. the first value greater than 20 which is followed by successive (more than 3) values greater then 20 is in column 13.
I realise that I can find the first value by:
a = find(x>20,1,'first');
but I dont know how to complete what is described above.

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Respuesta aceptada

Andrei Bobrov
Andrei Bobrov el 15 de Ag. de 2012
Editada: Andrei Bobrov el 15 de Ag. de 2012
One way:
y = x > 20;
t = [true, diff(y) ~= 0];
k = find(t);
k = [k;k(2:end)-1,numel(t)];
idx = k(1,all(y(k)) & diff(k)+1 > 3);
second way (for vector-row):
y = x > 20;
k = [strfind([~y(1),y],[0 1]);strfind([y,~y(end)],[1 0])];
idx = k(1,diff(k) + 1 > 3);
other way ( Image Processing Toolbox ):
y = x > 20;
s = regionprops(y,'Area','PixelIdxList');
idxs = s([s.Area] > 3).PixelIdxList;
idx = idxs(1);
  2 comentarios
Richard
Richard el 15 de Ag. de 2012
The second method you mentioned works great. After finding that location how would it then be possible to remove the first values greater than 20 i.e. change them to nans? So, from this example x(6:7) to nan so that the peaks (if plotted) would only show for the second set of values.
Andrei Bobrov
Andrei Bobrov el 15 de Ag. de 2012
Editada: Andrei Bobrov el 15 de Ag. de 2012
for your case:
y = x > 20;
k = [strfind([~y(1),y],[0 1]);strfind([y,~y(end)],[1 0])];
idx = k(1,diff(k) + 1 > 3);
idxx = find(y);
x(idxx(idxx < idx)) = nan;

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Más respuestas (1)

Azzi Abdelmalek
Azzi Abdelmalek el 15 de Ag. de 2012
Editada: Azzi Abdelmalek el 15 de Ag. de 2012
x = [0,1,3,2,5,22,24,1,2,6,0.3,.5,30,43,45,32,22,56];
a = find(x>20);l=1;
for k=1:length(a)-2
if a(k+2)==a(k+1)+1 & a(k+1)==a(k)+1
ind(l)=a(k);l=l+1;
end
end
result=min(ind)

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