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Is there an easy way without having to use java library to concat two int? Maybe math?

say I have 9 and 10 , then I want it to be 910, or 224 and 225 then I want it to be 224225.

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1  
Do you want the result to also be an integer? – Mark Elliot Nov 10 '10 at 2:34
3  
am i missing something? how about this: String result=9+""+10; or int i=Integer.valueOf(9+""+10); – Pangea Nov 10 '10 at 2:35
    
yes! final result as integer please! – aherlambang Nov 10 '10 at 2:49
up vote 17 down vote accepted

Anything in java.lang.* should be fair game...

int a = Integer.parseInt(Integer.toString(9) + Integer.toString(10));
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I like to make it this int a = Integer.parseInt(9 +""+ 10). Much more precise. – Adeel Ansari Nov 10 '10 at 3:14
1  
@Adeel -- I disagree. Read my comments on pst's answer. – Jeremy Heiler Nov 10 '10 at 3:15
    
@Jeremy: That doesn't hold here. Because if you accidentally remove the empty_quotes, then next morning you will think why should I parse int to int. And that should give you a hint that you have never been that stupid to do it in first place. So, there must be something missing. Oh yeah empty_quotes. – Adeel Ansari Nov 10 '10 at 3:19
    
I made those comments before the OP requested the final result to be an integer instead of a string. If you really want to get nitty gritty, my answer is more precise. Yours is just syntactic sugar. Either way, it accomplishes the same task. – Jeremy Heiler Nov 10 '10 at 3:30
    
@Adeel: I don't see how that can be "more precise". If anything, it is shorter. – Grodriguez Nov 10 '10 at 6:49

This will give you an integer back as expected but only works when b > 0.

int a = 224;
int b = 225;
int c = (int) Math.pow(10, Math.floor(Math.log10(b))+1)*a + b; // 224225

Just a quick explanation: This determines the number of digits in b, then computes a multiplication factor for a such that it would move in base 10 by one more digit than b.

In this example, b has 3 digits, floor(log10(b)) returns 2 (do this intuitively as 10^2=100, 10^3 = 1000, we're somewhere in between at 225). Then we compute a multiplication factor of 10^(2+1), this is 1000. When we multiply a by 1000 we get 224000. Adding 224000 to 225 yields the desired 224225.

This fails at b == 0 because log10(0) is undefined.

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Interesting. +1 – Adeel Ansari Nov 10 '10 at 2:44
    
That was so neat! +1 – tim_wonil Nov 10 '10 at 2:57

You (likely) want string concatenation (you may also want an integer result, if that is the case, see the other answers). If this is true, about the concatenation, imagine a and b are integers:

"" + a + b

This works because the + operator is overloaded if either operand is a String. It then converts the other operand to a string (if needed) and results in a new concatenated string. You could also invoke Integer.toString(a) + Integer.toString(b) or using an appropriate String.format but those methods are more long-winded.

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2  
I've always disliked this notation. If the string was somehow taken out, the intention of concatenating a and b isn't clear. – Jeremy Heiler Nov 10 '10 at 2:37
1  
a + "" + b is a bit more readable to starters. – BalusC Nov 10 '10 at 2:38
2  
My point was that if I accidentally took out the string late Friday and came back in Monday morning to fix my code, I would have assumed that they wanted Integer.toString(a+b) – Jeremy Heiler Nov 10 '10 at 2:41
1  
@Jeremy Fair enough. – user166390 Nov 10 '10 at 2:41
2  
@Jeremy - I see your point, but that is (IMO) a really weak argument. There are lots of small changes that one can make to a Java program that obscure the original intention; e.g. change + to * in an arithmetic expression, change && to ||. The real answer is to be careful when reading and modifying code. – Stephen C Nov 10 '10 at 4:10

Here is my version which works when a,b >= 0.

It is a bit longer, but is 10x faster than the log approach and 5x faster than appending strings.

int concat(int a, int b)
{
   if ( b == 0 )
      a *= 10;
   else
   {
      int tempB = b;
      while ( tempB > 0 )
      {
         tempB /= 10;
         a *= 10;
      }
   }
   return a + b;
}

Feel free to modify this to work for negative numbers.

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a + "" + b

results in error "incompatible types"

// The left operand to previousOperator.
private int leftOperand;

leftOperand = leftOperand + " " + number;

number is defined as int in the method declaration

This works

import java.lang.*

leftOperand = Integer.parseInt(Integer.toString(leftOperand) + Integer.toString(number));

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