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array generation using logics.

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Sathiya S V
Sathiya S V am 29 Mai 2024
Kommentiert: Voss am 29 Mai 2024
x = [0 10 20 30 0 10 20 30 40 0 10 20 30 40 50 0 10]
'x' is the array to be checked.
checked = [0 10 -10 20 0 10 -10 20 -20 0 10 -10 20 -20 30 0 10]
I want the new array like the above mentioned 'checked' array.
The concept is simple to understand in the above given example, if the numbers are countinously increasing in the order of 10 factors in the x array, I need a checked array of incrementing values containing positive and negative number and next should be a next consecutive number in positive sign.
It is simple for me to understand, but for coding I really finding it difficult..I request someone who is more into finding logics to help me with.

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Akzeptierte Antwort

Voss
Voss am 29 Mai 2024
Ran in:
x = [0 10 20 30 0 10 20 30 40 0 10 20 30 40 50 0 10];
diffx = diff(x(:));
start = find([true; diffx <= 0; true]);
dx = min(diffx(diffx > 0));
checked = zeros(size(x));
sequence_length = diff(start);
for ii = 1:numel(sequence_length)
n = 1:sequence_length(ii);
checked(start(ii):start(ii+1)-1) = ceil((n-1)/2)*dx.*(-1).^n;
end
disp(checked);
0 10 -10 20 0 10 -10 20 -20 0 10 -10 20 -20 30 0 10
  2 Kommentare
Sathiya S V
Sathiya S V am 29 Mai 2024
Thanks, it works:)
Voss
Voss am 29 Mai 2024
You're welcome!

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Weitere Antworten (1)

Dyuman Joshi
Dyuman Joshi am 29 Mai 2024
Ran in:
x = [0 10 20 30 0 10 20 30 40 0 10 20 30 40 50 0 10]
x = 1x17
0 10 20 30 0 10 20 30 40 0 10 20 30 40 50 0 10
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y = x;
idx = [1 find(diff(x)~=10)+1 numel(x)]
idx = 1x5
1 5 10 16 17
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for k=1:numel(idx)-1
vec = (1:idx(k+1)-idx(k)-1);
y(vec+idx(k)) = ceil(vec/2).*10.*(-1).^(vec-1);
end
y
y = 1x17
0 10 -10 20 0 10 -10 20 -20 0 10 -10 20 -20 30 0 10
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