how to replace elements in top third, middle third, and bottom third of matix

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Marlon Izaguirre
Marlon Izaguirre am 1 Mai 2019
Kommentiert: Ammar am 27 Sep. 2023
This question is soft-locked: new answers that are equivalent to already posted answers may be deleted without prior notice.
My task is the following:
Write a function called trio that takes two positive integer inputs n and m. The function returns a 3n-by-m matrix called T. The top third of T (an n by m submatrix) is all 1s, the middle third is all 2-s while the bottom third is all 3-s. See example below:
M = trio(2,4)
M =
1 1 1 1
1 1 1 1
2 2 2 2
2 2 2 2
3 3 3 3
3 3 3 3
This is the code that I wrote, but it only works for T = trio (4,3). I want my code to work for any input of n,m.
function T = trio (n, m)
T = randi (10, (3 * n) , m);
T ( 1:n , :) = 1;
T ( (n+1):(end-(n-1)) , :) = 2;
T ( (n+3):end, :) = 3;
end
How is it possible to call out only top third, middle third, and bottom third of any matrix?
Thank you in advance.
  6 Kommentare
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mahmoud khaled
mahmoud khaled am 11 Aug. 2020
function T=trio(n,m)
T=[ones(n,m) ; (2*ones(n,m)) ; (3*ones(n,m))];
end
Rik
Rik am 17 Aug. 2020
Bearbeitet: Rik am 18 Aug. 2020
I'm going to delete duplicate answers. I will consider the list below as the list of solutions. From the current answer section I will only leave the top one for each of these:
  1. all answer with general advice about how to solve the question
  2. answers with more than 1 vote
  3. allocating the full size array with ones or zeros and indexing into it, writing the correct values
  4. allocating the full size array with a non-standard function (like randi) and indexing into it, writing the correct values
  5. 3 and 4, but for the three parts separately, requiring concatenation
  6. kron (posted in a comment)
  7. repmat combined with implicit expansion
If new valid solutions are posted I will of course leave those as well, although I think the non-esoteric solutions may be exhausted.

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Akzeptierte Antwort

James Tursa
James Tursa am 1 Mai 2019
Bearbeitet: James Tursa am 1 Mai 2019
Your row indexing is wrong.
The first n rows are 1:n which you have correct.
The second n rows indexing is n more that the first set, so simply add n: n + (1:n)
The third n rows indexing is n more than the second set, which I will let you figure out (it's pretty simple)
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Ammar
Ammar am 27 Sep. 2023
function T = trio (n, m)
T =randi (10, (3 * n) , m)
T ( 1:n , :) = 1
T ( (n+1):2*n , :) = 2
T ( (2*n+1):end, :) = 3
end

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Weitere Antworten (6)

AYUSH GURTU
AYUSH GURTU am 28 Mai 2019
function T = trio (n, m)
T = randi (10, (3 * n) , m);
T (1:n,:) = 1;
T ((n+(1:n)),:) = 2;
T (n+(n+(1:n)):end,:) = 3;
end
  2 Kommentare
sona rai
sona rai am 9 Aug. 2020
% sir this is right code instead of your code.
function T=trio(n,m)
T=randi(10,(3*n),m);
T(1:n,:)=1;
T((n+(1:n)),:)=2;
T((n+(n+(1:n))),:)=3;
end
t

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PRAKASH ANAND
PRAKASH ANAND am 8 Nov. 2019
% That's my trio code.
%From India.
function T=trio(n,m)
x=ones(n,m);
y=2*x;
z=3*x;
T=[x;y;z];
end
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OUSSAMA El GABBARI
OUSSAMA El GABBARI am 19 Jan. 2022
that function you made I see it's very restricted.. I wonder if it'd work for matrices of larger dimensions !

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evan muas
evan muas am 2 Dez. 2019
function T=trio(n,m)
T=[ones(n,m);2*ones(n,m);3*ones(n,m)]
end
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Juvraj Singh Sandhu
Juvraj Singh Sandhu am 4 Okt. 2020
Bearbeitet: Juvraj Singh Sandhu am 4 Okt. 2020
this will work for all inputs
function T= trio(n,m);
T1= ones(n,m);
T2= 2*ones(n,m);
T3= 3*ones(n,m);
T= [T1;T2;T3];
  2 Kommentare
Hashir
Hashir am 8 Sep. 2023
good try, but i dont think function will return 3n by m matrix.
Stephen23
Stephen23 am 8 Sep. 2023
"but i dont think function will return 3n by m matrix."
Please show any positive integer values of m & n for which this function does not return a 3n by m matrix.

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mayank ghugretkar
mayank ghugretkar am 5 Jun. 2019
function T=trio(n,m)
T(3*n,m)=3; % or you can use random no. generation...but since we are assigning alues anyway , this vl work fine !
T(1:n,:)=1;
T((n+1):2*n,:)=2;
T((2*n+1):3*n,:)=3;
end
hope this'll help, welcome !
Doga Savas
Doga Savas am 22 Aug. 2019
function d = trio(n,m)
a = randi(1,n,m);
b = 2 + rand(n,m)*0;
c = 3 + rand(n,m)*0;
d = [a;b;c];
end
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Rik
Rik am 8 Sep. 2023
Ran in:
trio_even_less_baloney = @(n,m) repelem((1:3).',n,m);
n=2;m=4;
trio_even_less_baloney(n,m)
ans = 6×4
1 1 1 1 1 1 1 1 2 2 2 2 2 2 2 2 3 3 3 3 3 3 3 3
Although your point is absolutely valid.
DGM
DGM am 8 Sep. 2023
Yeah, maybe I should've called it trio_reduced_baloney()
I figured repelem() was already officially exhausted. Reshaping/permuting might not be minimal, but it was a reasonable basic option that was still fair game.

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