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Given the following code snippet:

int i = 0;

int y = + ++i;

System.out.println(y);

The result is 1. Why is this a valid declaration? Can anyone explain what is =+?

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Not a question I'd care about, because no one should write code like this. But my guess is ++i = 1 is straightforward enough, and the extra plus sign is a unary plus, as if you'd written int i = +1; Not necessary, but acceptable. –  duffymo Apr 22 '13 at 11:14
    
Is this a question from a test? Doesn't look like something you'd encounter in actual code... –  creinig Apr 22 '13 at 11:18
    
Indeed it is actually an OCJP (formally known as SCJP) test question. Best to understand it anyway. –  Peter Jaloveczki Apr 22 '13 at 11:20

4 Answers 4

up vote 7 down vote accepted
int y = + ++i;

The first + in this line is simply the unary + operator (see: Assignment, Arithmetic, and Unary Operators). It does nothing. It's similar to the unary - operator. The line above is equivalent to:

int y = ++i;

which increments i and then assigns the new value of i to y.

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Thanks a lot, explains it well! –  Peter Jaloveczki Apr 22 '13 at 11:23

Here + indicates the value is positive or not,i.e. unary operator and if you changes the value to - then the answer will be -1. i.e. int y = - ++i; will give -1.

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The first plus after the equals sign is the sign of the value. So it means it is a positive number.

int y = - ++i; would return -1

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Java guarantees that it will be evaluated left-to-right. Specifically, ++ has higher precedence than +. So it first binds those, then it associates the addition operations left to right

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