-2

I want to put a number like 123456 in to a array of digits. Could you please give me a hint to the process? Can i define an array with unknown number of elements?

7
  • 1
    The number of digits needed can be found by using a base-10 logarithm (and adding 1). After that, it's just a matter of modding by 10 and dividing by 10 repeatedly.
    – Cornstalks
    Sep 9 '13 at 4:56
  • 1
    What language proogramming? C or C++ ? Sep 9 '13 at 4:56
  • @MohsenPahlevanzadeh: It's tagged C.
    – Cornstalks
    Sep 9 '13 at 4:56
  • 3
    Hint: what do you get for 123456 % 10 and 123456 / 10?
    – Yu Hao
    Sep 9 '13 at 4:57
  • myvar = 1233456 % 10 ; // mod operator and : myvar = 123345 / 10 ; //devide operator Sep 9 '13 at 4:59
7

First calculate no of digits

int count = 0;
int n = number;

while (n != 0)
{
    n /= 10;
    cout++;
}

Now intialize the array and assign the size:

if(count!=0){
   int numberArray[count];

   count = 0;    
   n = number;

   while (n != 0){
       numberArray[count] = n % 10;
       n /= 10;
       count++;
   }
}
4
  • 1
    Careful if number == 0, as that would then create an array of size zero (which is undefined behavior).
    – Cornstalks
    Sep 9 '13 at 5:06
  • Forgot to add that condition, Will surely edit that. Thanx for pointing out Sep 9 '13 at 5:09
  • Thanks. This helped immensly! I'm a newbie
    – Destructor
    Sep 9 '13 at 5:35
  • Do accept the answer if that helped you: See how accepting answer works: meta.stackexchange.com/questions/5234/… Sep 9 '13 at 6:11
2

If you don't mind using char as the array element type, you can use snprintf():

char digits[32];
snprintf(digits, sizeof(digits), "%d", number);

Each digit will be represented as the character values '0' though '9'. To get the integer value, subtract the character value by '0'.

int digit_value = digits[x] - '0';
0

"Can i define an array with unknown number of elements ?"

If the number is too large you can input it as string and then accordingly extract digits from it

Something like following :

char buf[128];
int *array;
//fscanf(stdin,"%s",buf);

array = malloc(strlen(buf) * sizeof(int)); //Allocate Memory
int i=0;
do{
 array[i] = buf[i]-'0'; //get the number from ASCII subtract 48
 }while(buf[++i]); // Loop till last but one 
0
int x[6];
int n=123456;
int i=0;
while(n>0){
   x[i]=n%10;
   n=n/10;
   i++;
}
2
  • 1
    When I count the digits in 123456 they don't seem like they'd in fit in an array of five items.
    – dcaswell
    Sep 9 '13 at 5:00
  • 1
    You would need x[6] since there are 6 digits! Sep 9 '13 at 5:00
-1

Here are teh steps. First, get the size needed to store all the digits in the number -- do a malloc of an array. Next, take the mod of the number and then divide the number by 10. Keep doing this till you exhaust all digits in the number.

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