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So I have this bit of code that does not work:

print $userInput."\n" x $userInput2; #$userInput = string & $userInput2 is a integer

It prints it out once fine if the number is over 0 of course, but it doesn't print out the rest if the number is greater than 1. I come from a java background and I assume that it does the concatenation first, then the result will be what will multiply itself with the x operator. But of course that does not happen. Now it works when I do the following:

$userInput .= "\n";
print $userInput x $userInput2;

I am new to Perl so I'd like to understand exactly what goes on with chaining, and if I can even do so.

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3 Answers 3

up vote 8 down vote accepted

You're asking about operator precedence. ("Chaining" usually refers to chaining of method calls, e.g. $obj->foo->bar->baz.)

The Perl documentation page perlop starts off with a list of all the operators in order of precedence level. x has the same precedence as other multiplication operators, and . has the same precedence as other addition operators, so of course x is evaluated first. (i.e., it "has higher precedence" or "binds more tightly".)

As in Java you can resolve this with parentheses:

print(($userInput . "\n") x $userInput2);

Note that you need two pairs of parentheses here. If you'd only used the inner parentheses, Perl would treat them as indicating the arguments to print, like this:

# THIS DOESN'T WORK
print($userInput . "\n") x $userInput2;

This would print the string once, then duplicate print's return value some number of times. Putting space before the ( doesn't help since whitespace is generally optional and ignored. In a way, this is another form of operator precedence: function calls bind more tightly than anything else.

If you really hate having more parentheses than strictly necessary, you can defeat Perl with the unary + operator:

print +($userInput . "\n") x $userInput2;

This separates the print from the (, so Perl knows the rest of the line is a single expression. Unary + has no effect whatsoever; its primary use is exactly this sort of situation.

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Oh wow. Thanks a lot for the explanation. I actually did try the parenthesis and just like you expected it was wrong because it was only one pair. But I thought I understood the Perl operator precedence. Guess not! –  Andy Mar 3 '13 at 6:17
3  
Or print "$userInput\n" x $userInput2 –  Borodin Mar 3 '13 at 12:48

This is due to precedence of . (concatenation) operator being less than the x operator. So it ends up with:

use strict;
use warnings;
my $userInput = "line";
my $userInput2 = 2;
print $userInput.("\n" x $userInput2);

And outputs:

line[newline]
[newline]

This is what you want:

print (($userInput."\n") x $userInput2);

This prints out:

line
line
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x has higher precedence. higher precedence goes first. –  Eevee Mar 3 '13 at 6:13
    
thanks, it was a typo fixed –  perreal Mar 3 '13 at 6:19

As has already been mentioned, this is a precedence issue, in that the repetition operator x has higher precedence than the concatenation operator .. However, that is not all that's going on here, and also, the issue itself comes from a bad solution.

First off, when you say

print (($foo . "\n") x $count);

What you are doing is changing the context of the repetition operator to list context.

(LIST) x $count

The above statement really means this (if $count == 3):

print ( $foo . "\n", $foo . "\n", $foo . "\n" );  # list with 3 elements

From perldoc perlop:

Binary "x" is the repetition operator. In scalar context or if the left operand is not enclosed in parentheses, it returns a string consisting of the left operand repeated the number of times specified by the right operand. In list context, if the left operand is enclosed in parentheses or is a list formed by qw/STRING/, it repeats the list. If the right operand is zero or negative, it returns an empty string or an empty list, depending on the context.

The solution works as intended because print takes list arguments. However, if you had something else that takes scalar arguments, such as a subroutine:

foo(("text" . "\n") x 3);

sub foo {
    # @_ is now the list ("text\n", "text\n", "text\n");
    my ($string) = @_;   # error enters here
    # $string is now "text\n"
}

This is a subtle difference which might not always give the desired result.

A better solution for this particular case is to not use the concatenation operator at all, because it is redundant:

print "$foo\n" x $count;

Or even use more mundane methods:

for (0 .. $count) {
    print "$foo\n";
}

Or

use feature 'say'
...
say $foo for 0 .. $count;   
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