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How can I convert a long to int in Java?

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9 Answers 9

Simple type casting should do it:

long l = 100000;
int i = (int) l;

Note, however, that large numbers (usually larger than 2147483647 and smaller than -2147483648) will lose some of the bits and would be represented incorrectly.

For instance, 2147483648 would be represented as -2147483648.

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What is the precision of integers? o_O –  khachik Dec 4 '10 at 19:16
@khachik: i think information was swapped for precision. Edited... –  Paul Sasik Dec 4 '10 at 19:18
@Paul: yeah, I'm sorry, you're right. –  Frxstrem Dec 4 '10 at 19:21
@khachik I think the precision is 1. Or maybe 42 of course :) –  extraneon Dec 4 '10 at 19:22
Casting has different meanings for objects and for primitive types. (int) l doesn't try to treat a 64-bit integer as a 32-bit integer, it actually returns a different 32-bit integer with the same 32 lower order bits. With objects, you cast to a more specific child class, but with primitve types, a cast is not really a cast, but a conversion. –  dspyz Dec 6 '10 at 18:09

For small values, casting is enough:

long l = 42;
int i = (int) l;

However, a long can hold more information than an int, so it's not possible to perfectly convert from long to int, in the general case. If the long holds a number less than or equal to Integer.MAX_VALUE you can convert it by casting without losing any information.

For example, the following sample code:

System.out.println( "largest long is " + Long.MAX_VALUE );
System.out.println( "largest int is " + Integer.MAX_VALUE );

long x = (long)Integer.MAX_VALUE;
System.out.println("long x=" + x);

int y = (int) x;
System.out.println("int y=" + y);

produces the following output on my machine:

largest long is 9223372036854775807
largest int is 2147483647
long x=2147483648
int y=-2147483648

Notice the negative sign on y. Because x held a value one larger than Integer.MAX_VALUE, int y was unable to hold it. In this case it wrapped around to the negative numbers.

If you wanted to handle this case yourself, you might do something like:

if ( x > (long)Integer.MAX_VALUE ) {
    // x is too big to convert, throw an exception or something useful
else {
    y = (int)x;

All of this assumes positive numbers. For negative numbers, use MIN_VALUE instead of `MAX_VALUE'

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So a proper conversion will be to detect if the conversion is safe and throw an exception otherwise. Fact stated by @Andrej Herich that suggested Guava library. –  raisercostin Feb 22 '13 at 13:57
Long x = 100L;
int y = x.intValue();

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If using Guava library, there are methods Ints.checkedCast(long) and Ints.saturatedCast(long) for converting long to int.

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There is no need of using libraries –  Grekz Jan 16 '13 at 19:29
@Grekz that's up to the OP. I would in this case. More dependency jars is better than more reinvented wheels unless you have an actual reason not to have more dependency jars. –  djechlin Aug 19 '13 at 20:44
IMHO, this answer is much better than the accepted one, in that it never does something unexpected. –  Mark Slater Dec 2 '14 at 11:07
Since my project already include that jar, it would be more benefit to use it than to write a new helper –  Osify Jun 17 at 3:50
long x = 3;
int y = (int) x;

but that assumes that the long can be represented as an int, you do know the difference between the two?

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Interesting to know is that according to par 5.1.3 in… (The Java Language Spec): Despite the fact that overflow, underflow, or other loss of information may occur, narrowing conversions among primitive types never result in a run-time exception (§11). –  extraneon Dec 4 '10 at 19:21

You can use the Long wrapper instead of long primitive and call Long.intValue()

it rounds/truncate the long value accordingly to fit in an int.

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It may be a good idea to link to the current documentation, as well as expand on this - inevitably, there's going to be some degree of rounding when converting a long to an int. –  Makoto Jun 27 '12 at 1:57
@Makoto you're right, I didn't notice. It's udpated. –  eleonzx Jun 27 '12 at 17:44
Looking at the Java 7 implementation of Long.intValue(), it's just casting. No under/overflow checking is implemented. So at least through Java 7, this option is equivalent to just: (int)someLong. –  buzz3791 Oct 30 '13 at 15:42

In Java, a long is a signed 64 bits number, which means you can store numbers between -9,223,372,036,854,775,808 and 9,223,372,036,854,775,807 (inclusive).

A int, on the other hand, is signed 32 bits number, which means you can store number between -2,147,483,648 and 2,147,483,647 (inclusive).

So if your long is outside of the values permitted for an int, you will not get a valuable conversion.

Details about sizes of primitive Java types here:

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Long l = 100;
int i = Math.round(l);
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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  rink.attendant.6 Oct 25 '13 at 8:26

In java ,there is a rigorous way to convert a long to int

not only lnog can convert into int,any type of class extends Number can convert to other Number type in general,here I will show you how to convert a long to int,other type vice versa.

Long l = 1234567L;
int i = org.springframework.util.NumberUtils.convertNumberToTargetClass(l, Integer.class);

convert long to int

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Spring may be Java, but Java is not Spring. "In java, there is" is a false statement. –  Gordon Apr 17 '13 at 17:58

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