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I have two numbers.

First Number is 2875 &
Second Number is 852145

Now I need a program which create third number.

Third Number will be 2885725145

The logic is

First digit of third number is first digit of first number.  
Second digit of third number is first digit of second number.  
Third digit of third number is second digit of first number.  
Fourth digit of third number is second digit of second number;

so on.

If any number has remaining digits then that should be appended at last.

I do not want to convert int to string.

int CreateThirdNumber(int firstNumber, int secondNumber)
{

}

So can anyone suggest me any solution to this problem?

share|improve this question
    
You have algo where are you struck? –  Nikhil Agrawal May 30 '12 at 10:20
3  
What have you tried so far? –  MAK May 30 '12 at 10:20
1  
Hint: use the modulo operator and the division operator. this problem is rather easy to solve –  Shai May 30 '12 at 10:22
    
This is simple.. Just need patience to reach the answer. You should first try yourself before posting. –  Angshuman Agarwal May 30 '12 at 10:22
    
business-logic? Are you sure it's not homework? –  RedX May 30 '12 at 10:30

6 Answers 6

I do not want to convert int to string.

Why?

Without converting to string

Use Modulus and Division operator.

With converting to string

Convert them to string. Use .Substring() to extract and append value in a string. Convert appended string to integer.

share|improve this answer

Here's a bit that will give you a lead:

Say you have the number 2875. First, you need to determine it's length, and then, extract the first digit

This can be easily calculated:

int iNumber = 2875;
int i = 10;
int iLength = 0;

while (iNumber % i <= iNumber){
    iLength++;
    i *= 10;
}

// iNumber is of length iLength, now get the first digit,
// using the fact that the division operator floors the result
int iDigit = iNumber / pow(10, iLength-1);
// Thats it!
share|improve this answer

First a little advice: if you use int in C#, then the value in your example (2885725145) is bigger than int.MaxValue; (so in this case you should use long instead of int). Anyway here is the code for your example, without strings.

        int i1 = 2875;
        int i2 = 852145;
        int i3 = 0;

        int i1len = (int)Math.Log10(i1) + 1;
        int i2len = (int)Math.Log10(i2) + 1;

        i3 = Math.Max(i1, i2) % (int)Math.Pow(10, Math.Max(i1len, i2len) - Math.Min(i1len, i2len));

        int difference = (i1len - i2len); 
        if (difference > 0)
            i1 /= (int)Math.Pow(10, difference);
        else
            i2 /= (int)Math.Pow(10, -difference);

        for (int i = 0; i < Math.Min(i1len, i2len); i++)
            {
            i3 += (i2 % 10) * (int)Math.Pow(10, Math.Max(i1len, i2len) - Math.Min(i1len, i2len) + i * 2);
            i3 += (i1 % 10) * (int)Math.Pow(10, Math.Max(i1len, i2len) - Math.Min(i1len, i2len) + i * 2 + 1);
            i1 /= 10;
            i2 /= 10;
            }
share|improve this answer
    
Thanks :) Thats what I am looking for –  user1425720 May 30 '12 at 13:00

I don't understand why you don't want to use strings (is it homework?). Anyway this is another possible solution:

    long CreateThirdNumber(long firstNumber, long secondNumber)
    {
        long firstN = firstNumber;
        long secondN = secondNumber;
        long len1 = (long)Math.Truncate(Math.Log10(firstNumber));
        long len2 = (long)Math.Truncate(Math.Log10(secondNumber));
        long maxLen = Math.Max(len1, len2);
        long result = 0;
        long curPow = len1 + len2 + 1;
        for (int i = 0; i <= maxLen; i++)
        {
            if (len1 >= i)
            {
                long tenPwf = (long)Math.Pow(10, len1 - i);
                long firstD = firstN / tenPwf;
                firstN = firstN % tenPwf;
                result = result + firstD * (long)Math.Pow(10, curPow--);
            }
            if (len2 >= i)
            {

                long tenPws = (long)Math.Pow(10, len2 - i);
                long secondD = secondN / tenPws;
                result = result + secondD * (long)Math.Pow(10, curPow--);
                secondN = secondN % tenPws;
            }
        }
        return  result;
    }
share|improve this answer

This solves it:

#include <stdio.h>

int main(void)
{

  int first = 2875,second = 852145;
  unsigned int  third =0;
  int deci,evenodd ,tmp ,f_dec,s_dec;

  f_dec = s_dec =1;
  while(first/f_dec != 0 || second/s_dec != 0) {
    if(first/f_dec != 0) {
       f_dec *=10;

    }
    if( second/s_dec != 0) {
      s_dec *= 10;
    }

  }
  s_dec /=10; f_dec/=10;


  deci = s_dec*f_dec*10;


  evenodd =0;tmp =0;
  while(f_dec != 0 || s_dec !=0 )  {
    if(evenodd%2 == 0 && f_dec !=0 ) {
      tmp = (first/f_dec);
      first -=(tmp*f_dec);

      tmp*=deci;

      third+=tmp;
      f_dec/=10;
      deci/=10;
    }

    if(evenodd%2 != 0 && s_dec != 0) {
      tmp= (second/s_dec);
      second -=(tmp*s_dec);
      //printf("tmp:%d\n",tmp);

      tmp*=deci;

      third += tmp;
      s_dec/=10;
      deci/=10;
    }

    evenodd++;
  }
  printf("third:%u\ncorrct2885725145\n",third);
return 0;

}

output:

third:2885725145
corrct2885725145
share|improve this answer
#include <stdio.h>

long long int CreateThirdNumber(int firstNumber, int secondNumber){
    char first[11],second[11],third[21];
    char *p1=first, *p2=second, *p3=third;
    long long int ret;

    sprintf(first,  "%d", firstNumber);
    sprintf(second, "%d", secondNumber);
    while(1){
        if(*p1)
            *p3++=*p1++;
        if(*p2)
            *p3++=*p2++;
        if(*p1 == '\0' && *p2 == '\0')
            break;
    }
    *p3='\0';
    sscanf(third, "%lld", &ret);
    return ret;
}
int main(){
    int first = 2875;
    int second = 852145;
    long long int third;
    third = CreateThirdNumber(first, second);
    printf("%lld\n", third);

    return 0;
}
share|improve this answer
    
when first and second is 10-digit, not enough in int64(third) –  BLUEPIXY May 30 '12 at 16:10
    
The OP said he doesn't want to convert the numbers to strings –  Francesco Baruchelli May 30 '12 at 20:04
    
I thought it was meant as the final result. I think this method is in fact much easier. –  BLUEPIXY May 30 '12 at 21:34

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