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How to convert a Long value into an Integer value in Java?

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8  
first you need to check if you Long doesn't exceed Integer MaxValue. –  Lukasz Baran Apr 27 '11 at 12:26
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7 Answers 7

up vote 99 down vote accepted
Integer i = theLong != null ? theLong.intValue() : null;

or if you don't need to worry about null:

// auto-unboxing does not go from Long to int directly, so
Integer i = (int) (long) theLong;

And in both situations, you might run into overflows (because a Long can store a wider range than an Integer).

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It's the best answer because it handles NULL values. –  Viacheslav Dobromyslov Apr 6 at 1:05
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Here are three ways to do it:

Long l = 123L;
Integer correctButComplicated = Integer.valueOf(l.intValue());
Integer withBoxing = l.intValue();
Integer terrible = (int) (long) l;

All three versions generate almost identical byte code:

 0  ldc2_w <Long 123> [17]
 3  invokestatic java.lang.Long.valueOf(long) : java.lang.Long [19]
 6  astore_1 [l]
 // first
 7  aload_1 [l]
 8  invokevirtual java.lang.Long.intValue() : int [25]
11  invokestatic java.lang.Integer.valueOf(int) : java.lang.Integer [29]
14  astore_2 [correctButComplicated]
// second
15  aload_1 [l]
16  invokevirtual java.lang.Long.intValue() : int [25]
19  invokestatic java.lang.Integer.valueOf(int) : java.lang.Integer [29]
22  astore_3 [withBoxing]
// third
23  aload_1 [l]
// here's the difference:
24  invokevirtual java.lang.Long.longValue() : long [34]
27  l2i
28  invokestatic java.lang.Integer.valueOf(int) : java.lang.Integer [29]
31  astore 4 [terrible]
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8  
+1 for the byte code –  Thilo Apr 28 '11 at 6:28
9  
Minor styliustic issue: You should probably use the upper-case suffix 123L for readability. –  Joey Jul 12 '12 at 12:48
    
Or you can use a good font... and here we go again... :D (just j/k, I also do that) –  David Cesarino Mar 31 '13 at 22:22
    
It doesn't work with NULL value –  Viacheslav Dobromyslov Mar 8 at 8:35
1  
@SeanPatrickFloyd yep. Don't forget that Long variable value could be NULL sometimes. –  Viacheslav Dobromyslov Mar 11 at 13:29
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Integer intValue = myLong.intValue();
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This is the correct answer! –  Evan Byrne Oct 26 '13 at 1:15
    
Looks much cleaner than (int) (long) imo. –  Gaʀʀʏ Dec 10 '13 at 20:41
    
It doesn't work with NULL value –  Viacheslav Dobromyslov Mar 8 at 8:35
    
@ViacheslavDobromyslov yes, you are right. It's obvious –  birdy Apr 4 at 8:56
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If you care to check for overflows and have Guava handy, there is Ints.checkedCast():

int theInt = Ints.checkedCast(theLong);

The implementation is dead simple, and throws IllegalArgumentException on overflow:

public static int checkedCast(long value) {
  int result = (int) value;
  checkArgument(result == value, "Out of range: %s", value);
  return result;
}
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You'll need to type cast it.

long i = 100L;
int k = (int) i;

Bear in mind that a long has a bigger range than an int so you might lose data.

If you are talking about the boxed types, then read the documentation.

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Use it

Integer.parseInt(String.valueOf(myLong))
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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);
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4  
Overcomplicated! –  genobis Apr 5 '13 at 13:38
1  
I think you forgot to create an abstract factory somewhere –  Mehrdad Jun 27 at 9:37
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