Storage of first few values in an array but with an if condition
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I am stuck here, because when i write the following code to take in values lesser than or equal to 0.20 and greater than or equal to 0.12, it takes all the values of the first column <= 0.20 and >=0.12. The desired result is taking in first set of values, lesser than or equal to 0.2 and greater than or equal to 0.12 and not all the values.
The code is,
A = [0.25;0.12;0.18;0.21;0.26;0.18;0.19;0.25;0.26;0.12;0.18;0.21];
B = [A(A(:,1) <= 0.20 & A(:,1) >= 0.12,1)];
The output of this is,
B =
0.1200
0.1800
0.1800
0.1900
0.1200
0.1800
What i am desiring is
B =
0.12
0.18
采纳的回答
Rik
2020-5-18
编辑:Rik
2020-5-18
If you want to find the first block of true in L, you can use this code:
A = [0.25;0.12;0.18;0.21;0.26;0.18;0.19;0.25;0.26;0.12;0.18;0.21];
L=A(:,1) <= 0.20 & A(:,1) >= 0.12;
ind1=find(L,1);%first location within L
ind2=find(diff(L)==-1,1);%last location within L
if isempty(ind2),ind2=numel(A);
B=A(ind1:ind2)
Original answer:
Assuming you also wanted the 0.19:
A = [0.25;0.12;0.18;0.21;0.26;0.18;0.19;0.25;0.26;0.12;0.18;0.21];
L=A(:,1) <= 0.20 & A(:,1) >= 0.12;%put in a different variable for readability
B = A(L);
B=unique(B,'stable');%don't sort values
更多回答(1 个)
Guillaume Le Goc
2020-5-18
A = [0.25;0.12;0.18;0.21;0.26;0.18;0.19;0.25;0.26;0.12;0.18;0.21];
ids = find(A<=0.2 & A>=0.12, 2); % second argument specifies you want only the first 2 elements that match the condition
B = A(ids);
Or directly :
A = [0.25;0.12;0.18;0.21;0.26;0.18;0.19;0.25;0.26;0.12;0.18;0.21];
B = A(find(A<=0.2 & A>=0.12, 2));
3 个评论
Rik
2020-5-20
If this answer doesn't solve your question, why did you accept it?
After your comment I have edited my answer. Did you see that?
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