I want to clean a decay by setting all values to zero after the first negative, please assist me on how to achieve that
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B =
0.0374 0.0216 0.0185 -0.0320 -0.0012 0.0000 0.0063
0.0311 0.0157 0.0177 -0.0364 0.0029 -0.0022 0.0057
0.0244 0.0093 0.0170 -0.0400 -0.0044 -0.0044 0.0050
0.0178 0.0027 0.0164 -0.0428 -0.0056 -0.0065 0.0042
0.0114 -0.0039 0.0160 -0.0448 -0.0064 -0.0084 0.0034
for matrix B i want to set all values in a row after negative to zero.
e.g row 1 should look like;
0.0374 0.0216 0.0185 0.000 0.0000 0.0000 0.0060
OR row 2 to be;
0.0311 0.0157 0.0177 0.0000 0.0000 0.0000 0.0000
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Accepted Answer
Sameer
on 18 Oct 2024
Edited: Sameer
on 18 Oct 2024
To transform the matrix "B", so that all values from the first negative value onwards in each row are set to zero, you can loop through each row, find the first negative value using the "find" function, and set that value and all subsequent values in the row to zero.
Here's how you can do it:
B = [
0.0374 0.0216 0.0185 -0.0320 -0.0012 0.0000 0.0063;
0.0311 0.0157 0.0177 -0.0364 0.0029 -0.0022 0.0057;
0.0244 0.0093 0.0170 -0.0400 -0.0044 -0.0044 0.0050;
0.0178 0.0027 0.0164 -0.0428 -0.0056 -0.0065 0.0042;
0.0114 -0.0039 0.0160 -0.0448 -0.0064 -0.0084 0.0034
];
% Loop through each row
for i = 1:size(B, 1)
% Find the index of the first negative value
first_neg_idx = find(B(i, :) < 0, 1);
% If a negative value is found, set it and all subsequent values to zero
if ~isempty(first_neg_idx)
B(i, first_neg_idx:end) = 0;
end
end
disp(B);
Please refer to the below MathWorks documentation link:
Hope this helps!
More Answers (1)
Star Strider
on 18 Oct 2024
B = [0.0374 0.0216 0.0185 -0.0320 -0.0012 0.0000 0.0063
0.0311 0.0157 0.0177 -0.0364 0.0029 -0.0022 0.0057
0.0244 0.0093 0.0170 -0.0400 -0.0044 -0.0044 0.0050
0.0178 0.0027 0.0164 -0.0428 -0.0056 -0.0065 0.0042
0.0114 -0.0039 0.0160 -0.0448 -0.0064 -0.0084 0.0034];
multmtx = cumprod(B >= 0, 2) % Logical Matrix Multiplied Cumulatively In The Column (2) Dimension
B = B .* multmtx % Multiply By The Original ‘B’ Matrix
.
4 Comments
Star Strider
on 23 Oct 2024
Thank you!
It’s also efficient, and while I kept the two statements separate to demonstrate how it works, they could be combined into a single statement —
B = [0.0374 0.0216 0.0185 -0.0320 -0.0012 0.0000 0.0063
0.0311 0.0157 0.0177 -0.0364 0.0029 -0.0022 0.0057
0.0244 0.0093 0.0170 -0.0400 -0.0044 -0.0044 0.0050
0.0178 0.0027 0.0164 -0.0428 -0.0056 -0.0065 0.0042
0.0114 -0.0039 0.0160 -0.0448 -0.0064 -0.0084 0.0034];
B = B .* cumprod(B >= 0, 2) % Multiply The Original ‘B’ Matrix By The Logical Matrix Multiplied Cumulatively In The Column (2) Dimension
A vote for it would be appreciated!
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