add rows between two indexes in an array
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I have an array where the cell values ascend from 1 to 300. Some values occur more often than others.
For values which come up less than 20 times, I would like to add enough of them to get to 20.
Example:
array1 = [1; 1; 1; 2; 2; 2; 2; 2; 3; 3; 3;] % snipit of the array
given that there are 20 of the 1s and 20 of the 3s I am missing 15 of the 2s (I only have 5 of the 2s in the array currently)
In another array I have the index of the values for which there are not 20, as well as the number of indexes missing to get to 20.
array2 = [401,15 ; 516,4 ; 1117, 11]
Since adding 15 indexes to 401 will shift the next index for which I add values by 15, the following could tackle that problem: an array which adds the number of shifts consecutively
for j=2:length(array2)
array3(j,1) = array2(i,2)+array2(i-1,2);
end
%produces following array:
array3=[0; 19; 30]
so now, the question is how do I put the following into actually working code:
for i=1:length(array2)
array1(array2(i+array3(i),1)) add array2(i,2)
end
any help would be very much appreciated!!
6 Commenti
hosein Javan
il 12 Ago 2020
your question is not clear. I suggest you display your original matrix and the matrix you expect the code to yield.
your title says "add row between two indices" which is unclear. you only can insert another row between two rows,
gummiyummi
il 12 Ago 2020
hosein Javan
il 12 Ago 2020
Modificato: hosein Javan
il 12 Ago 2020
is this what you expect? it will embed 15 twos after the 5th two and shifts the rest down.
reslut = [array1(1:24);repelem(2,15).';arrya1(25:44)]
gummiyummi
il 12 Ago 2020
hosein Javan
il 12 Ago 2020
that means array1 is empty vector, are you sure you have run the program and array1 is created in a correct way?
gummiyummi
il 12 Ago 2020
Modificato: gummiyummi
il 12 Ago 2020
Risposte (1)
Walter Roberson
il 12 Ago 2020
0 voti
Since adding 15 indexes to 401 will shift the next index for which I add values by 15
There is a fairly simple way to get around that problem:
Work backwards. Start from the end and go back towards the beginning.
That way, every index that you have not yet worked on is still valid, because it refers relative to the beginning of the array and you have not changed from the beginning of the array to your current point.
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