Replacing elements of a logical index vector

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Kashmir Singh
Kashmir Singh el 10 de Feb. de 2016
Editada: Jos (10584) el 10 de Feb. de 2016
“Idx” is a logical index vector when a certain “power on” condition is true (e.g. idx=Pwr_on>threshold) Say the result is 5 "zeros" and 5 "ones" per cycle i.e. idx=[0;0;0;0;0;1;1;1;1;1;0;0;0;0;0;1;1;1;1;1;0;0;0;0;0.........] Every time idx is true; I need to replace the first element and last element with “0” within the index. So effectively idx=[0;0;0;0;0;0;1;1;1;0;0;0;0;0;0;0;1;1;1;0;0;0;0;0;0.........] Any suggestions
  1 comentario
Adam
Adam el 10 de Feb. de 2016
Editada: Adam el 10 de Feb. de 2016
How are you defining "first element and last element...within the index" for a general case? It is clear in this example, but is this as complicated as your data gets? i.e. there are always n 0's followed by n 1's and then this just cycles every 2n elements?

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Image Analyst
Image Analyst el 10 de Feb. de 2016
This will do it. It's explicit so you can see what's going on. Of course, you could collapse it all down into a single line of code (though that may be hard to follow).
idx=[0;0;0;0;0;1;1;1;1;1;0;0;0;0;0;1;1;1;1;1;0;0;0;0;0]
di = [0; diff(idx)]
leadingEdges = find(di>0)
trailingEdges = find(di<0)-1
idx(leadingEdges) = 0;
idx(trailingEdges) = 0

Más respuestas (2)

Kashmir Singh
Kashmir Singh el 10 de Feb. de 2016
There's always zero's followed by one's. However the power duty cycle varies i.e. it's not always 5 zero's followed by 5 one's. This can be varied by increasing/decreasing the duty cycle.
Jos (10584)
Jos (10584) el 10 de Feb. de 2016
Editada: Jos (10584) el 10 de Feb. de 2016
X = logical([0 1 1 0 1 1 1 0 0 1 1 1 1 0 0 0 1 1 1 1 1])
Y = fliplr(conv(fliplr(conv(double(X),[1 1],'same')),[1 1],'same'))>3

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