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System.out.println(1 + 2 + "3");

Output: 33

System.out.println("1" + 2 + 3);

Output: 123

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Somewhat related question here for .NET developers: stackoverflow.com/questions/517695 –  Brian Rasmussen Mar 2 '10 at 8:53

7 Answers 7

up vote 35 down vote accepted
+50

Well, it's a thing called order of operations.

1 + 2 is calculated to equal 3 and then the string "3" is appended to it converting the first 3 to a string and printing "33".

In your second instance, "1" is already a string so adding numbers will convert them to strings to match, so appending "2" and then appending "3" and printing "123".

P.S. Strings take precedence because they have a higher casting priority than integers do, therefore it will convert integers to strings but not strings to integers, as with the second example.

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+1 for "...order of operations." –  Tech Jerk Mar 2 '10 at 8:48
1  
+1 Ewww. Implicit casting in C#. I thought C# was supposed to be a purely statically typed language.</sarcasm> –  Evan Plaice Feb 3 '12 at 22:02
    
@EvanPlaice: This is Java? –  U2744 SNOWFLAKE Sep 13 '13 at 3:15
    
good explanation –  Syed Raza Mehdi Oct 2 at 6:49

The first statement adds 1 and 2 (since both are Integers) and then converts them to a string and appends the string "3".

The second statement has a string "1" and converts all following arguments to strings as well. So you get 123.

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In the case of 1 + 2 + "3"

Addition of 1 and 2 is performed first next 3 is concatenated to 3.

In "1" + 2 + 3

1 is concatenated to 2 and the result ("12") is concatenated to 3

The thing to remember is:

If either of the operands to + is a string + acts as concatenation else it works as addition.

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In case of first , it does 1+2 , then it does the string concatenation operation , So that it gives you 33.

In case of second statement it is doing string concatenation for all operand , since first

operand is string. So that it gives you 123

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I'm not a java expert but I suppose expressions are read from left to right here

In the first case it first compute 1 + 3 which gives 3 then 3 + "3" which convert the first 3 to a string and gives "33"

In the second case it starts by "1" + 2 which gives "12" and then "12" + 3 = "123"

This is a side effect of having an operator + which concatenates 2 strings and an other which adds 2 numbers.

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This is defined by the Java Language Specification #15.18.1

The + operator is syntactically left-associative, no matter whether it is determined by type analysis to represent string concatenation or numeric addition. In some cases care is required to get the desired result. For example, the expression:
a + b + c
is always regarded as meaning:
(a + b) + c

Then for each subgroup (a+b) (let's call it x) and (x + c):

If only one operand expression is of type String, then string conversion (§5.1.11) is performed on the other operand to produce a string at run-time.

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The compiler will convert an operand to its string equivalent whenever the other operand of the + is an instance of String.

For the second case: Operator precedence causes the concatenation of "1" with the string equivalent of 2 to take place first. This result is then concatenated with the string equivalent of 3 a second time.

To complete the integer addition first, you must use parentheses, like this:

System.out.println("1" + (2 + 3));

For the first case: Operator precedence will first add 1 and 2. Now,string equivalent of this result is then concatenated with "3".

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