How to replace negative elements in a Matrix with zeros?

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Matthew Davern
Matthew Davern on 17 Jan 2018
Edited: Walter Roberson on 4 May 2024
A = [2, 3, -1, 5; -1, 4, -7, -3; -6, 0, 3, 9; 7, 6, -3, 8];
B = [9; 17; 15; -3];
AI = inv(A)
I = A*AI
X = AI*B
A*X
Now I am trying to set up a nested for loop to redefine negative elements in A. I need to replace negative elements in A with a zero. How do I go about doing this?

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Accepted Answer

Stephen23
Stephen23 on 17 Jan 2018
Edited: Stephen23 on 20 Dec 2018
The simplest way is to use max:
A = max(A,0)
For example:
>> A = [2, 3, -1, 5; -1, 4, -7, -3; -6, 0, 3, 9; 7, 6, -3, 8]
A =
2 3 -1 5
-1 4 -7 -3
-6 0 3 9
7 6 -3 8
>> A = max(A,0)
A =
2 3 0 5
0 4 0 0
0 0 3 9
7 6 0 8
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DGM
DGM on 30 Apr 2021
Doing this:
B = max(A);
returns the maximum values along dim1.
On the other hand, doing this:
B = max(A,0)
is equivalent to doing
B = max(A,zeros(size(A)))
In these cases, we're comparing each element of A against 0 and picking the largest of the two values.
Stephen23
Stephen23 on 30 Apr 2021
Edited: Stephen23 on 30 Apr 2021
Michael Seitaridis wrote: "I did not read in the documentation this syntax, nor I can understand it"
I just looked in https://www.mathworks.com/help/matlab/ref/max.html and found this:
"Shouldn't A = max(A,0) produce ... "
The max documentation describes it as:
"C = max(A,B) returns an array with the largest elements taken from A or B."
What my answer shows is consistent with that explanation (given scalar expansion). Lets consider element A(1,4), which has value five. Can you explain why you think that the "largest" of zero and five should be zero? As far as I am aware, five is generally considered to be larger than zero.
"(replace max number in every row) ?"
I do not see that written anywhere in max the documentation.

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More Answers (2)

Jan
Jan on 17 Jan 2018
Or:
A(A < 0) = 0
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Jerzy Pela
Jerzy Pela on 27 Feb 2020
Edited: Jerzy Pela on 27 Feb 2020
I compared both methods, since it was one of the bottlenecks in my calculations and max(A,0) was significantly faster. Keep it in mind if you need to do that calculation numerous times in your script. Otherwise both methods are equal

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Johnny Zheng
Johnny Zheng on 14 Oct 2020
A = A*(A>0);
This also works!
Have a summary of possible methods:
A = A*(A>0);
A = max(A,0);
A(A<0) = 0;
  2 Comments
Stephen23
Stephen23 on 14 Oct 2020
For non-scalar A (such as that shown in the question) the mtimes operator needs to be replaced with an element-wise times operator otherwise an error or incorrect output is quite likely:
A.*(A>0)
https://www.mathworks.com/help/matlab/matlab_prog/array-vs-matrix-operations.html
Also note that this method changes -Inf values to NaN, which may be an undesired side-effect:
>> A = [-1,0,1,;-Inf,Inf,NaN];
>> A = A.*(A>0)
A =
0 0 1
NaN Inf NaN

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