8

In given example:

int a, b, c;
a = 2111000333;
b = 1000222333;
c = a + b;
System.out.println("c= " + c);

will return: c= -1183744630 , why?

How to fix that?

11

Your integer is overflowing. An integer has a maximum value of Integer.MAX_VALUE (2^31 - 1). If the value becomes bigger, your variable will not have the right value anymore.

A long has a bigger range.

long a, b, c;
a = 2111000333;
b = 1000222333;
c = a + b;
System.out.println("c= " + c);
| improve this answer | |
  • 1
    @Scharrels - what if it's needs to stay as integer? – Registered User Feb 14 '10 at 14:51
  • 1
    If it needs to stay an int, you could cast the long value to an integer, int newInt = (int) c;. Although, I am not completely sure if this would be a good approach. – Anthony Forloney Feb 14 '10 at 14:52
  • 1
    You cannot put values this big in an integer, so you're stuck then. If you need to do part of your calculations with big values, which will become small afterwards, cast your integers to longs, do the calculations and cast them back. However, be aware that the value must be smaller than Integer.MAX_VALUE when you cast it back. – Scharrels Feb 14 '10 at 14:54
  • 3
    @reg: Remember that in Java integral types are always signed and you cannot detect overflow except when using a larger type. That's by design and yes, in some cases actually unfortunate. – Joey Feb 14 '10 at 14:56
  • 1
    But how can I predict how big variable will became? Should we declare 'doubtful' variables (e.g. account balance) as long by default? – mary.ja45 Feb 14 '10 at 15:11
9

The MAX_VALUE of a Java long is 9223372036854775807, so Scharrels' solution works for your example.

Here's another solution that can go even higher, should you need it.

BigInteger a = new BigInteger(2111000333);
BigInteger b = new BigInteger(1000222333);
BigIntegerc = a.add(b);
System.out.println("c= " + c);

This approach is bounded only by JVM memory.

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  • I would check if (b > LONG.MAX_VALUE - a) before going for heavy BigInteger object. – fastcodejava Feb 14 '10 at 18:47
4
long a, b, c;
a = 2111000333;
b = 1000222333;
if (b > LONG.MAX_VALUE - a) {
   // a and b cannot be added.
}
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2

The maximum value of an int in Java is 2,147,483,647. When you want to compute something over this value, you must use the long type.

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1

Java Datatypes

The int data type is a 32-bit signed two's complement integer. It has a minimum value of -2,147,483,648 and a maximum value of 2,147,483,647

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