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If I want to increment a value and then store it in another variable, why is it not possible to do it on one line of code?

This works

var count = 0;
count++;
var printer = count;
alert(printer); //Prints 1

But this doesn't

var count = 0;
var printer = count++;
alert(printer); //Prints 0
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4 Answers 4

up vote 10 down vote accepted

You're using the post-incrementing operator. The increment happens after the assignment expression is complete.

Use the pre-incrementing version instead...

++count;

Or use the += operator...

count += 1;
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2  
+1, MDC is always better than w3cschools :) –  Alfabravo Aug 9 '12 at 14:16

You need to do

var count = 0;
var printer = ++count;
alert(printer); 

The JavaScript Arithmetic Operators section of the w3schools page has a decent breakdown with a Try Me lab. In short, if you do the increment/decrement operation before the variable, it will occur before it is used in the current operation. If you include it afterwards, it will occur after the current operation.

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Aha, so that's why! Thnx. –  CalabiYau Aug 9 '12 at 14:11
1  
w3schools? Really? w3fools.com :-) –  Garrett Vlieger Aug 9 '12 at 14:29
    
@GarrettVlieger Even bad places can source good information –  Jaime Torres Aug 9 '12 at 14:38

It can be done in one line.

//Example 1
var count = 0;
count++;
var printer = count;
alert(printer); //Prints 1

//Example 2
var count2 = 0;
var printer2 = count2++;
alert(printer2);   //Prints 0
printer2 = count2++;
alert(printer2);   //Prints 1

// Example 3, in one line
var count2 = 0;
var printer2 = count2 + 1;
alert(printer2);   //Prints 1

// Example 4, in one line
var count2 = 0;
var printer2 = ++count2;
alert(printer2);   //Prints 1
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++ changes the results depending on where you use it:

 y = 0;
 x = y++; // post-increment

is equivalent to

 y = 0;
 x = y;
 y = y + 1;

and

 x = ++y; // pre-increment

is equivalent to

 y = 0;
 y = y + 1;
 x = y;
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