Azzera filtri
Azzera filtri

how to generate new matrix with if statment

5 visualizzazioni (ultimi 30 giorni)
Ibrahim AlZoubi
Ibrahim AlZoubi il 17 Mag 2020
Commentato: Walter Roberson il 17 Mag 2020
I have two matrices first one is:
test = [5;6;0;-1;0;5;0;6;0;8];
and the second one is:
test5 = [2;6;8;-1;0;7;8;6;8;8];
how to generate third matrix which is the result after the condition (if statment)...
the condition is if the value of test is equal 0 then the value of the new matrix is 0 , else if the value of the first matrix isn't equal 0 do some calculations on the second matrix which is test5 like (test5*7+5).
so the third matrix values depends on the two matrix before...

Accedi per rispondere a questa domanda.

Risposta accettata

Stanislao Pinzón
Stanislao Pinzón il 17 Mag 2020
Maybe like this?
test = [5;6;0;-1;0;5;0;6;0;8]+2;
test5 = [2;6;8;-1;0;7;8;6;8;8];
if ismember(0,test)
Matrix3 = 0;
else
Matrix3 = test5*7+5;
end
  7 Commenti
Mostra 5 commenti meno recenti
Stanislao Pinzón
Stanislao Pinzón il 17 Mag 2020
or instead
test = [5;6;0;-1;0;5;0;6;0;8];
test5 = [2;6;8;-1;0;7;8;6;8;8];
Matrix3 = test5*7+5;
a = find(test==0);
Matrix3(a) = 0;
Stephen23
Stephen23 il 17 Mag 2020
find is superfluous. Get rid of it.

Accedi per commentare.

Più risposte (3)

Image Analyst
Image Analyst il 17 Mag 2020
Try masking:
test = [5;6;0;-1;0;5;0;6;0;8];
test5 = [2;6;8;-1;0;7;8;6;8;8];
% Now multiply by 7 and add 5 only.
output = test5 * 7 + 5;
% Find indexes where test is zero.
mask = (test == 0)
% Erase where test was 0.
output(mask) = 0
Yundie Zhang
Yundie Zhang il 17 Mag 2020
Modificato: Walter Roberson il 17 Mag 2020
test = [5;6;0;-1;0;5;0;6;0;8];
test5 = [2;6;8;-1;0;7;8;6;8;8];
if test ==0
newMAT = 0
elseif test ~=0
newMAT = (test5*7)+5
end
  2 Commenti
Ibrahim AlZoubi
Ibrahim AlZoubi il 17 Mag 2020
Modificato: Ibrahim AlZoubi il 17 Mag 2020
the result is:
Undefined function or variable 'newMAT'.
when I want to know the new matrix "newMAT"
Walter Roberson
Walter Roberson il 17 Mag 2020
Remember that when you apply if or while to a non-scalar, that the result is only considered true if every item being tested is non-zero.
if test ==0
Only some of the items in test are 0, so that fails
elseif test ~=0
Only some of the items in test are non-zero, so that fails.

Accedi per commentare.

Walter Roberson
Walter Roberson il 17 Mag 2020
Create the new matrix by applying the calculation to all of the entries in the second matrix, as if the rule about 0 was not present. This can be done in vectorized form in a single statement.
Now, everywhere that there is a 0 in the first matrix, replace the content of the third matrix with 0. This can be done in vectorized form in a single statement, using logical indexing.
  3 Commenti
Mostra 1 commento meno recente
Stephen23
Stephen23 il 17 Mag 2020
"so you mean to edit the 3rd matrix manually ?"
No. Use logical indexing:
https://www.mathworks.com/company/newsletters/articles/matrix-indexing-in-matlab.html
which could be generated very simply using ==.
Walter Roberson
Walter Roberson il 17 Mag 2020
For example:
A = randi(10, 5, 8);
A(A>7) = -1;

Accedi per commentare.

Categorie

Scopri di più su Assessments, Criteria, and Verification in Help Center e File Exchange

Tag

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by