How do I fix my code to produce ones along the reverse diagonal?

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Alexandra Huff am 7 Aug. 2016

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Kommentiert: Bruno Luong am 12 Jun. 2020

Hi, I am having a problem with my code.

function I = reverse_diag(n)
   I = zeros(n);
   I(1: n+1 : n^2)=1;

I want my code to produce the ones on the reverse diagonal (top right to bottom left). I tried using fliplr because I believe, as of now, this is just a diagonal of ones from top left to bottom right. However, that is not working. Any suggestions?

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Image Analyst am 7 Aug. 2016

Bearbeitet: Image Analyst am 7 Aug. 2016

Alexandra, you might like to read this link on formatting and this link so you can post better questions. You put code as text, and text as code format. I'll fix it this time for you. Also, you might give more descriptive subject lines - all your posts are like "how do I fix my code?" even though they're on different topic.

Don't forget to look at my answer below.

Nava Subedi am 15 Nov. 2016

Bearbeitet: Nava Subedi am 15 Nov. 2016

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function s = reverse_diag(n)

   I = zeros(n);
   I(1: n+1 : n^2)=1;
   s = flip(I, 2) % this line will reverse the elements in each row.

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Answer 1

Star Strider am 7 Aug. 2016

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Bearbeitet: Star Strider am 7 Aug. 2016

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Assuming you can’t use the eye function, this works:

n = 5;
I = zeros(n);
for k1 = 1:n
    I(k1, end-k1+1) = 1;
end
I =
       0     0     0     0     1
       0     0     0     1     0
       0     0     1     0     0
       0     1     0     0     0
       1     0     0     0     0

EDIT — Added output matrix.

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HASTI HARISH am 19 Jun. 2018

how can we do the same without a for loop

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Answer 2

James Tursa am 15 Nov. 2016

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Yet another way using linear indexing:

I = zeros(n);
I(n:n-1:end-1) = 1;

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Harshith Dhananjaya am 9 Jun. 2020

I tried this piece of code:

I = zeros(n);

I(n:n-1:end-1) = 1;

The result when n=1 provides answer [0] instead of [1]. All the other size matrices works fine.

Bruno Luong am 12 Jun. 2020

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Correct, this is a bug for n==1. One can make it works for any n>=1 (but still not for n==0) with

I([1,n:n-1:1-1]) = 1;

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Answer 3

Image Analyst am 7 Aug. 2016

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Try this:

n = 5; % Whatever...
I = fliplr(eye(n))
I =
     0     0     0     0     1
     0     0     0     1     0
     0     0     1     0     0
     0     1     0     0     0
     1     0     0     0     0