identifying entry elements in rows of logical matrix

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julian gaviria il 25 Gen 2023

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Commentato: Dyuman Joshi il 27 Gen 2023

Risposta accettata: Stephen23

I want to identifiy the entry elements (i.e., the first "1" value) in the rows of the following logical matrix

input_matrix = [1 1 1; 0 1 1; 0 0 0; 0 1 0];

the expected matrix would be the following:

output_matrix = [1 0 0; 0 1 0; 0 0 0; 0 1 0];

The position of the "entries" (first "1" values) in both input and output matrices is respected. Also, Further "1" values (following the entries) have been replaced with "0" values.

Thanks in advance for any hint.

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Dyuman Joshi il 26 Gen 2023

Modificato: Dyuman Joshi il 26 Gen 2023

@julian gaviria Just a note -

My and Stephen's code did exactly what was asked.

You should have clarified what exactly you wanted, in your question statement. The comments on my code clearly indicated what the code does, and you should have picked up from them that it is not what you want to do and mentioned it in reply to that.

Nevertheless, @Stephen23 has already provided an answer for your query.

I will be deleting my solution.

julian gaviria il 26 Gen 2023

Thank you @Dyuman Joshi

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Stephen23 il 25 Gen 2023

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https://it.mathworks.com/matlabcentral/answers/1900615-identifying-entry-elements-in-rows-of-logical-matrix#answer_1156300

Modificato: Stephen23 il 26 Gen 2023

A = [1,1,1;0,1,1;0,0,0;0,1,0]
A = 4×3
     1     1     1
     0     1     1
     0     0     0
     0     1     0
B = A .* (cumsum(A,2)==1) % replace .* with & to get a logical output
B = 4×3
     1     0     0
     0     1     0
     0     0     0
     0     1     0

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Stephen23 il 26 Gen 2023

Modificato: Stephen23 il 26 Gen 2023

c1_logical.mat

"Would you mind to let me know your thoughts on why the following elements from the attached logical c1_input matrix were wrongly indexed? "

My answer does not use any indexing. But lets take a look at your uploaded data anyway:

S = load('c1_logical.mat')
S = struct with fields:
     c1_input: [390×168 logical]
    c1_output: [390×168 logical]
I = S.c1_input; % your data are actually logical, not numeric.
O = I & (cumsum(I,2)==1); % so I will use & here, not .*
isequal(O, S.c1_output)
ans = logical
   1

row 4 col 14 (case: 0 1 0)

I(4,1:20)
ans = 1×20 logical array
   0   0   0   0   0   0   0   0   1   0   0   0   0   1   0   0   0   0   0   0
O(4,1:20)
ans = 1×20 logical array
   0   0   0   0   0   0   0   0   1   0   0   0   0   0   0   0   0   0   0   0

We can clearly see that the first "1" in row 4 is in column 9, and that is indeed the only "1" that is given in that row in the output matrix:

find(O(4,:))
ans = 9

I would not expect any "1" elements of the output around column 14 of that row. It is unclear what the problem is.

row 110 col 23 (case: 0 1 1)

I(110,1:26)
ans = 1×26 logical array
   0   0   0   0   0   0   0   1   0   0   0   0   0   0   0   0   0   0   0   0   0   0   1   1   0   0
O(110,1:26)
ans = 1×26 logical array
   0   0   0   0   0   0   0   1   0   0   0   0   0   0   0   0   0   0   0   0   0   0   0   0   0   0

We can clearly see that the first "1" in row 110 is in column 8, and that is indeed the only "1" that is given in that row in the output matrix:

find(O(110,:))
ans = 8

I would not expect any "1" elements of the output around column 23 of that row. It is unclear what the problem is.

Fangjun Jiang il 26 Gen 2023

Isn't it funny that my solution was correct after all?

Dyuman Joshi il 27 Gen 2023

MATLAB works in mysterious ways XD

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Fangjun Jiang il 25 Gen 2023

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https://it.mathworks.com/matlabcentral/answers/1900615-identifying-entry-elements-in-rows-of-logical-matrix#answer_1156280

in = [1 1 1; 0 1 1; 0 0 0; 0 1 0];
M=size(in,1);
temp=[zeros(M,1), in];
d=diff(temp,1,2);
out=(d==1)
out = 4×3 logical array
   1   0   0
   0   1   0
   0   0   0
   0   1   0

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Dyuman Joshi il 25 Gen 2023

This wouldn't work if there is a 1 after a 0

in = [1 1 0 1; 0 1 1 1; 0 0 0 0; 0 0 1 0];
M=size(in,1);
temp=[zeros(M,1), in];
d=diff(temp,1,2);
out=(d==1)
out = 4×4 logical array
   1   0   0   1
   0   1   0   0
   0   0   0   0
   0   0   1   0

Fangjun Jiang il 25 Gen 2023

You are right!

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