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In C++, how do I combine (note: not add) two integers into one big integer?

For example:

int1 = 123;
int2 = 456;

Is there a function to take the two numbers and turn intCombined into 123456?

EDIT:

My bad for not explaining clearly. If int2 is 0, then the answer should be 123, not 1230. In actuality though, int1 (the number on the left side) would only have a value if int2 goes over the 32 bit limit. So when int2 is 0, then int1 is 0 (or garbage, i'm not sure).

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2  
If int2 is 0, is the answer 123 or 1230? –  R Samuel Klatchko Apr 9 '10 at 21:39
1  
Is int2 always 3 digits? If so, (int1*1000)+int2 works. This could probably be modified for any int2, I'm just not sure how. –  igul222 Apr 9 '10 at 21:40
1  
Interesting problem. Not sure what the best approach is. Hmmm –  Germ Apr 9 '10 at 21:40
    
@ R Samuel Klatchoko: the answer should be 1230. @ igul222: each int will be a 32 bit number that could range from 0 to 2^32, and the combined number will be a 64 bit number if there is an overflow. –  jiake Apr 9 '10 at 21:42

9 Answers 9

up vote 15 down vote accepted

The power of ten, that you need to multiply the first number with, is the smallest one, that is bigger than the second number:

int combine(int a, int b) {
   int times = 1;
   while (times <= b)
      times *= 10;
   return a*times + b;
} 
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except times starts at 10, to handle the case when b = 0, see the question comments. AFAICT that fix makes this approach the only non-string method that yields the correct answer. Plus multiplication is faster than division, this replaces a bunch of divisions with a single multiply. –  Ben Voigt Apr 9 '10 at 22:06
1  
I like this answer the best so far, but it would be better if you used log10 instead of the loop. Also, you might want to make the return type a 64-bit int. –  rmeador Apr 9 '10 at 22:10
    
@sth All you need to do is change the while to a do-while, and b=0 is accounted for. Best Answer! –  csj Apr 9 '10 at 22:26
    
@csj I think this solves my question. I mistook the b=0 scenario (read my edit in question). Thank you all :) –  jiake Apr 9 '10 at 22:32
    
@rmeador what whould be the exact code if we replaced the loop with log10 ? –  fractal_7 Sep 19 '12 at 11:36

You could convert them into strings, combine them and then convert them back to an int?

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Is this the only way to do it? If so, what's the code? –  jiake Apr 9 '10 at 21:38

For each digit in int2, you can multiple int1 by 10 and then add int2:

// merge(123, 0) => 1230
int merge(int int1, int int2)
{
    int int2_copy = int2;
    do
    {
        int1 *= 10;
        int2_copy /= 10;
    } while (int2_copy);

    return int1 + int2;
}

You could get rid of the loop using log10 and ceil.

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Sorry - I wasn't trying to copy you. You just beat me to the punch. –  csj Apr 9 '10 at 21:46
1  
Return type should be something 64 bit (__int64 for MSVC, long long for gcc, might also depend on platform). Also int1 as used in the loop should be 64 bit. Ah, and "int" is not necessarily 32 bit either, so again platform specific type needed :). –  Eugene Apr 9 '10 at 21:54
    
This function looks clock cycle hungry. Would the method posted below by Buckley work better? If so, can anyone show the code? If not, why is the merge() way better\more efficient? –  jiake Apr 9 '10 at 22:04
    
@Bei337 I think converting to string actually requires a loop of divisions by 10 to extract the characters. I would bet money that this is less cpu intensive than Buckley's suggestion. –  csj Apr 9 '10 at 22:19

Assuming both ints are non-negative, and int1 goes on the left and int2 goes on the right, you need to figure out how many digits long int2 is, multiply int1 by 10 a bunch of times, and then add them.

unsigned int int1 = blah;
unsigned int int2 = blah;

unsigned int temp = int2;

do
{
    temp /= 10;
    int1 *= 10;
} while (temp >0)

unsigned int newInt = int1 + int2;
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+1 - excellent use of unsigned! –  p.campbell Apr 9 '10 at 21:45
    
Great approach CSJ. Did you copy from the guy above (Samuel). –  Germ Apr 9 '10 at 21:47
    
@Germ I wasn't trying to copy - Samual was faster at getting it up. –  csj Apr 9 '10 at 21:49
2  
@Germ: This is the common solution, I suspect many people were writing it. I was writing the same thing as Samuel (though I was using log10 and ceil), but stopped when I saw he posted it. csj just happened to be a bit faster than me. –  GManNickG Apr 9 '10 at 21:49
    
CSJ - I didn't know you two were so intimate –  Germ Apr 9 '10 at 21:50

You could use stringstream:

string Append(int _1, int _2){
    stringstream converter;

    converter << _1 << _2;

    return converter.str();
}

then call atoi on the returned string.

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3  
Or use >>.... –  Potatoswatter Apr 9 '10 at 21:51
    
Could you explain a little on stringstream? I'm not familiar with this. –  jiake Apr 9 '10 at 21:59
    
@Bei337: See cplusplus.com/reference/iostream/stringstream –  Void Apr 9 '10 at 22:22

If the numbers you are trying to combine are positive integers you can use pairing Functions.

Pairing function creates a unique number from two. It is also a reversible function.

x,y -> z
z -> x,y

z = (x+y)(x+y+1)/2 + y

Then the reverse is:

w = floor((sqrt(8z+1)-1)/2)
t = (w*w + w)/2
y = z - t
x = w - y

Note. The above is not in any specific language. Just some math...

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The following is essentially sth's accepted solution but with the b==0 fix, and the loop replaced with an expression to calculate the scale directly:

#include <math.h>

int combine(int a, int b) 
{
    int times = 1;
    if( b != 0 )
    {
        times = (int)pow(10.0, (double)((int)log10((double)b)) + 1.0);
    }
    return a * times + b ;
}

In some circumstances (such as a target with an FPU and a good maths library) the expression might be faster than the loop, but I have not tested that hypothesis.

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Another option that works for C too:

#include <stdio.h>

int CombineInt(int int1, int int2)
{
  char cResult[32];

  sprintf(cResult, "%d%d", int1, int2);
  return atoi(cResult);
}
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#include <iostream>
using namespace std;

int main()

{ 
int num1,num2,comb,a,c;

    cout << "Enter the 1st numbers" << endl;
    cin>>num1;
    cout << "Enter the 2st numbers" << endl;
    cin>>num2;
    a=num2/10;
    if(a<=9){
        c=num1*100;
    comb=c+num2;
    cout<<"The combination of the two numbers is "<<comb;
    }
    else if(a>9&&a<=19){
        c=num1*1000;
    comb=c+num2;
    cout<<"The combination of the two numbers is "<<comb<<endl;
    }
     else if(a>19&&a<=29){
        c=num1*10000;
    comb=c+num2;
    cout<<"The combination of the two numbers is "<<comb<<endl;
    }

    return 0;
}
share|improve this answer
    
Yous should explain your idea. Code without explanations has little value. Please add explanations to your post. –  Tacet Apr 28 at 21:50
    
Seriously ? I hope you realize your answer is late, undocumented and wrong ... –  Amxx Apr 29 at 0:58

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