I am facing a problem with ismember subfunciton in Matlab.

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Sainath
Sainath 2017년 3월 6일
댓글: Guillaume 2017년 3월 6일
I am facing a problem with ismember subfunciton in Matlab.
UseCase:
Simulation_Time_Vecort = 0:0.01:42;
TestVector =
0 1.0000
0.7000 0
0.8000 1.0000
7.3100 0
7.4100 1.0000
13.6200 1.0000
20.3200 1.0000
27.0200 1.0000
33.0200 1.0000
39.9200 1.0000
Simulation_Values_Vecort = zeros(1,length(Simulation_Time_Vecort));
FlagSignalName_Value = [Simulation_Values_Vecort ; Simulation_Values_Vecort]';
FlagSignalName_Value(:,1) = double(Simulation_Time_Vecort);
FlagSignalName_Value(:,2) = ismember(Simulation_Time_Vecort,TestVector_Data(:,1)');
Problem: When I try to excute this script, ismember is not executed as expected. For some cases though the value exist in both vectors used in ismember function states above, output is not displayed or updated as value 1. In my case for value ‘0.7000’ ismember result is displayed as 0

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답변 (1개)

Walter Roberson
Walter Roberson 2017년 3월 6일
This is expected. http://matlab.wikia.com/wiki/FAQ#Why_is_0.3_-_0.2_-_0.1_.28or_similar.29_not_equal_to_zero.3F
If you have a new enough MATLAB version, use ismembertol
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Stephen23
Stephen23 2017년 3월 6일
편집: Stephen23 2017년 3월 6일
Surely a tolerance is the only robust solution. For example (I used this round2sf):
>> A = 0.996;
>> B = 0.994;
>> round2sf(A,2)
ans = 1.0000
>> round2sf(B,2)
ans = 0.99000
The values differ by only 0.002, but rounding to 2 sigfig will make them diverge, not converge. Using a tolerance would resolve this. All pairs of values that differ by a little less than least significant figure and that are on the rounding boundary will diverge...
Guillaume
Guillaume 2017년 3월 6일
Ah yes, but your values differ on the 3rd significant digit. From the example data provided, I'm assuming that the values only differ by a few eps.
Yes, tolerance comparison is more robust. My suggestion was for if you don't have ismembertol.

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