checking if every component of a vector is nonnegative

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Del
Del 2012년 12월 21일
댓글: Walter Roberson 2022년 3월 2일
What is the easiest way to check whether a vector a is >= 0?
I know you could type
a>=0 and get a vector of ones if that's true, but I am looking for something that will give me only one 1 as an answer.
For instance,
a=[2 5 3 6]; >> a>=0
ans =
1 1 1 1
But I am looking for something that will give me just
ans=
1 (as the answer)
any idea?
  댓글 수: 2
Ganindu
Ganindu 2014년 9월 11일
use, all(a>=0)
Image Analyst
Image Analyst 2014년 9월 11일
That is the same answer that Walter gave below almost 2 years ago.

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답변 (2개)

Walter Roberson
Walter Roberson 2012년 12월 21일
all(a >= 0)
However, what if there are NaN in the array? NaN is "nonnegative" (in some definitions) but also not >= 0 .
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Suraj Parasuram
Suraj Parasuram 2022년 3월 2일
@Walter Roberson Is this available in Simulink? How can I implement this in Simulink?
Walter Roberson
Walter Roberson 2022년 3월 2일
https://www.mathworks.com/help/simulink/slref/minmax.html
minmax block to take the min() of the input.
https://www.mathworks.com/help/simulink/slref/if.html
if-else testing whether the min was >= 0
In some contexts you would instead take sign() https://www.mathworks.com/help/simulink/slref/sign.html .
If you add 2 to the sign() then you can use that as the index into a vector of length 3 -- "some entry less than 0" "smallest entry was 0" "smallest entry was greater than 0"

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Shaun VanWeelden
Shaun VanWeelden 2012년 12월 21일
An extremely intuitive answer would just be return the minimum of the logic matrix that results from your inequality. It will only be 1 if every value turns out to be a 1.
min(A>=0) and by the way it returns a zero for NaN
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Teja Muppirala
Teja Muppirala 2012년 12월 21일
The difference between using ALL and MIN, is that when you use ALL it will stop searching through the vector once it finds even a single location where the condition is not true. So it will work a slight bit faster than MIN in this case.
For example:
% Takes 1 sec. on my PC
R = zeros(1,1e8); R(1) = -1;
tic; for n = 1:10, all(R >= 0); end; toc;
% Takes 2 sec. on my PC
R = zeros(1,1e8); R(1) = -1;
tic; for n = 1:10, min(R >= 0); end; toc;
Walter Roberson
Walter Roberson 2012년 12월 21일
I don't think it has ever been conclusively demonstrated that all() stops at the first false, or whether it is parallelized for "big enough" matrices. My recollection is that someone created a mex version that was found to be faster than all() in ways that you would expect if all() tested all (or most) locations -- e.g., much faster for the mex version if the condition was false early.

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