Comparing vector elements by percentage

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yousef Yousef am 1 Nov. 2015

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https://de.mathworks.com/matlabcentral/answers/252186-comparing-vector-elements-by-percentage

Beantwortet: Image Analyst am 2 Nov. 2015

Angle=[5 10 20 60 180 190 195 300 310], these angles determine the possible directions of robots. If there are 2 robots starting with the same angle or plus minus 5%(5 degrees) they will make collision. I'd like to have the result in on vector such that:[2 2 1 1 1 2 2 1 1]. Any help?

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Stefan Raab am 2 Nov. 2015

Bearbeitet: Stefan Raab am 2 Nov. 2015

Hello,

the codeline

collision(i)= Angle(inToleranceIndexes)

won't work, if inToleranceIndexes has more than one value==1. Then Angle(inToleranceIndexes) i.e. is [300 310] and you can't assign a vector to a single element as you do with collision(i).

But a question in general: You say tolerance is 0.05*targetValue, that means your tolerance increases with increasing start-angle. Is this really how it is supposed to be?

Best regards, Stefan

yousef Yousef am 2 Nov. 2015

Hi,the tolerance is plus minus 5 degrees.The tolerance is fixed and can not be changed.I have another try,please check it.

Angle=[5 10 20 60 180 190 200 300 310];
collision=[];
for i=1:9
c=[];
targetValue = Angle(i);
tolerance = 0.5 * targetValue;
differences = abs(Angle-targetValue) ;
inToleranceIndexes = differences < tolerance;
withinTolerance = Angle(inToleranceIndexes);
c=[c;inToleranceIndexes];
end
collision=[collision;c];

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Image Analyst am 2 Nov. 2015

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https://de.mathworks.com/matlabcentral/answers/252186-comparing-vector-elements-by-percentage#answer_198179

As mentioned in your duplicate question there will be no collision unless you have different starting points. And all your code does is tell you that each angle interferes/collides with no other angle except itself, which is pretty useless.