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new to perl, trying to playing around with its syntax a bit, then I got this error message

$ perl testP
syntax error at testP line 3, near "$_ ("
Execution of testP aborted due to compilation errors.


$_=$_+1 foreach $_ (@_);

Can anyone tell me what went wrong and how to fix it? thanks.

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2 Answers 2

up vote 10 down vote accepted

foreach variable ( array ) is used in normal notation like:

foreach $_ ( @_ ) {
    $_ = $_ + 1;

But you used the reverse notation, that is operation first, and loop then.

In this case you cannot provide variable name for the loop (which is useless anyway, since you're using default variable $_), and the loop should look:

$_ = $_ + 1 foreach @_;

Please also note that you can use for instead of foreach, and if you simply want to increment variable, you can do it with ++ operator, thus making it to:

$_++ for @_;
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This is great, thanks a lot. – user685275 Apr 28 '11 at 11:56

$_ will get each different value of @_ on each iteration of the foreach, and the ++ operator will postincrement the values.

So something like this will work:

foreach (@_) {$_++;}

Note: $_++ is equivalent to $_ = $_ + 1

$_ and @_ are special variables in perl and they have an special behavior, in this case $_ in the context of a foreach loop takes the current value on each iteration.

Special variables are one of the complex and powerful parts of perl. You can get some more information about how they work on the special vars documentation.

Another thing is you shouldn't use a special variable as target of the foreach as they most probably won't work as expected (see also the foreach documentation)

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$_++ for @a works too in case OP wants to use the alternative syntax. – musiKk Apr 28 '11 at 11:49
I still don't quite understand, why post incrementing the $_ value should not work. why writing like foreach (@_) {$_++;} is different with writing like $_=$_+1 foreach $_ (@_); – user685275 Apr 28 '11 at 11:50
Thanks for answering, appreciate it. – user685275 Apr 28 '11 at 11:56
If what is wanted is to get the number of elements into $_, then that will NOT work, because foreach local()izes $_. After the loop, $_ will contain whatever value it had before the loop, and the count will not be accessible... – tadmc Apr 28 '11 at 12:01
@user685275: First, on foreach either you specify a variable (like foreach $myvar (@myarray) { /* do whatever with $myvar */}) or you don't specify anything and use the special var $_ (like foreach (@myarray) { /* do whatever with $_ */}, on the other hand you have a wrong syntax, the sentence you want to execute (if I understood well $_=$_+1) goes after the foreach as I said on the examples. I hope now is more clear. – pconcepcion Apr 28 '11 at 12:01

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