How can I avoid infinite while loop?
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N = 1; while (N<11) n = ((N*2)+(N+1))/N; N = n end
I wish to assign the value of 'n' to 'N' and compare if it's less than '11' and again enter the loop until 'N' is equal to 11. Please help.
Risposta accettata
dpb
il 11 Lug 2014
Well, since
((N*2)+(N+1))/N = (2*N+N+1)/N = (3*N+1)/N
n=3+1/N
and the expression approaches 3+ as a limit, never approaching anything near 11, the answer to the question posed is "you can't".
Need a different problem statement; perhaps you're looking for the point at which the change is less than some epsilon or something of that nature?
I'll wait for clarification of the actual problem nature before guessing further...
1 Commento
Shashanka
il 11 Lug 2014
Thank you for the response! The example was a simplified version of the code I'm trying to run, which has decimal inputs. I have attached an image of the actual code below for your reference. The 'AxIFN' is to be updated with the latest value of 'AxIFN1' which is calculated with each iteration. Finally giving a value of 'AxIFN' which is less than '0.4'.
Thank you!
Più risposte (2)
Daniel
il 11 Lug 2014
Set a number equal to the number of times you want to loop (this case I chose 11), subtract each time you're in the loop, and add an and condition
LOOP_LIMIT = 11;
N = 1;
while (N < 11 && LOOP_LIMIT > 0)
n = ((N*2)+(N+1))/N;
N = n;
LOOP_LIMIT = LOOP_LIMIT-1;
end
1 Commento
Shashanka
il 11 Lug 2014
Thank you for the response! The example was a simplified version of the code I'm trying to run, which has decimal inputs. I have attached an image of the actual code below for your reference. The 'AxIFN' is to be updated with the latest value of 'AxIFN1' which is calculated with each iteration. Finally giving a value of 'AxIFN' which is less than '0.4'.
Thank you!
C.J. Harris
il 11 Lug 2014
Modificato: C.J. Harris
il 11 Lug 2014
0 voti
You have an infinity loop because your seed (N) is starting at one. Note that your equation ((N*2)+(N+1))/N is in fact equal to 3+(1/N), thereby meaning you'll only get 11 (or greater) for values less than 0.125.
Not sure why you even need a loop, can't you just rearrange, therefore getting n = 1/(11-3) = 0.125.
1 Commento
Shashanka
il 11 Lug 2014
Thank you for the response! The example was a simplified version of the code I'm trying to run, which has decimal inputs. I have attached an image of the actual code below for your reference. The 'AxIFN' is to be updated with the latest value of 'AxIFN1' which is calculated with each iteration. Finally giving a value of 'AxIFN' which is less than '0.4'.
Thank you!
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