Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

ARITHMETIC EVALUATION section in bash manual lists following operators among others:

   id++ id--
          variable post-increment and post-decrement
   ++id --id
          variable pre-increment and pre-decrement

As I understand, ++x and --xx increase or decrease the variable before other operations are performed? For example x++:

$ x=5; echo $(( ++x / 2 ))
3
$ x=5; echo $(( x++ / 2 ))
2
$ 

However, when are x++ and x-- useful? And in general what is the difference between variable post-increment/decrement and pre-increment/decrement in bash?

share|improve this question
4  
You already identified the difference, so what is the question here? –  Ansgar Wiechers Jun 13 '13 at 9:24

2 Answers 2

Both post-ops and pre-ops change (increase/decrease) value of the variable.

The difference is what they evaluate to: pre-ops evaluate to the value of the variable after the change, and post-ops - to the value before the change.

When the evaluated value isn't used, there is no difference. I.e. these two lines have the same effect:

((x++))
((++x))

Both pre-ops and post-ops are used to remove the need for an explicit assignment. I.e. make code shorter. So, instead of writing this:

x=$((x + 1))
y=$((x * 5))

You can write this:

y=$((++x * 5))

Conversely, instead of this:

y=$((x * 5))
x=$((x + 1))

You can write this:

y=$((x++ * 5))

Most often these operations are used in loop bodies and loop control expressions.

share|improve this answer

Quoting from Increment and decrement operators:

In languages that support both versions of the operators, the pre-increment and pre-decrement operators increment (or decrement) their operand by 1, and the value of the expression is the resulting incremented (or decremented) value. In contrast, the post-increment and post-decrement operators increase (or decrease) the value of their operand by 1, but the value of the expression is the operand's original value prior to the increment (or decrement) operation.

So, you'll find:

$ x=5; echo $(( x++ / 2 ))
2
$ echo ${x}                     // The effect of post-increment is visible here
3
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.