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I am reading Damian Conway's "Perl Best Practices" and found the following code snipet:

$have_reconsidered{lc($name)}++;

I am trying to figure out what is going on here with the hash. I know ++ increments by one in a numeric context, but what does it do to a hash?

From perlop documentation:

undef is always treated as numeric, and in particular is changed to 0 before incrementing (so that a post-increment of an undef value will return 0 rather than undef). The auto-decrement operator is not magical.

So in the example above, is the value for the key lc($name) being initialized to 0 and then incremented to 1 by ++?

In general, where could I find out more about the behaviors of ++, +=, etc...?

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In the statement, $hash{key}++, ++ is operating on the element of the hash, not the hash itself. %hash++ is not allowed. the only less than obvious bit is that if $hash{key} doesn't exist, it is instantiated to 0 then incremented. This will happen with +=, .= creates an empty string and appends to it. –  flies Jun 27 '11 at 21:07
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3 Answers

up vote 3 down vote accepted

%have_reconsidered is your hash. $name is a string. lc($name) returns the lowercased string. $hash{$key} will return the scalar value from hash %hash stored with key $key. so:

// get scalar value from hash at key lc($name) and post-increment it
$have_reconsidered(lc($name)}++;

so, all you do is increment the value in a hash at a given index (namely lc($name))

test case:

#!/bin/env perl
my %hash = ( 'a' => '2' );
my $name = 'A';
print $hash{lc($name)}++; // prints 2 (incremented after statement)
print $hash{lc($name)};   // prints 3
print ++$hash{lc($name)}; // prints 4 (incremented before statement)
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@knittl: I understood that, but in the context the code appeared in (which I know I did not include in my question), the value for the key lc($name) did not seem to be defined or addressed before. –  yarian Jun 27 '11 at 17:03
    
@YGomez: you should then include the original code in your question. what's the value of $name? –  knittl Jun 27 '11 at 17:05
1  
@knittl: The value of name doesn't matter. It's more the value of $hash{lc($name)}. I think I understood from your response though. If the value of $hash{lc($name)} is defined, then it will be incremented by 1. Else it will be initialized to 1, yes? –  yarian Jun 27 '11 at 17:06
1  
@YGomez: else it will be initialized to 0, then incremented by 1. you can add new keys to hashes, that's the beauty of it. perl will even create all variables on the fly if they didn't exist before. you can use strict to avoid such mistakes –  knittl Jun 27 '11 at 17:08
2  
This isn't intricacies so much as the combination of two simple features...++ and using a hash element in a modifiable context. You aren't going to find documentation that iterates through all the possible combinations of different features. –  ysth Jun 27 '11 at 23:20
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Hash values are scalars, so $have_reconsidered{lc($name)}++; increments the scalar $have_reconsidered{lc($name)}. If that scalar was previously undefined or didn't exist, ++ will set it to 1.

The goal of this code is probably to remove duplicates.

>perl -E"++$seen{$_} for qw( a a a b c a d ); say keys %seen;"
cabd

I prefer a similar but different approach because it preserves order.

>perl -E"say grep !$seen{$_}++, qw( a a a b c a d );"
abcd
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From perlop: "Note that just as in C, Perl doesn't define when the variable is incremented or decremented" Could you please explain the difference between your two sample codes? –  yarian Jun 27 '11 at 18:16
    
@YGomez, In the first, the result is extracted from the hash. In the latter, the result is a filtering of the original list. –  ikegami Jun 27 '11 at 18:35
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$have_reconsidered{lc($name)} is the value of the hash %have_reconsidered that belongs to the key lc($name). This value could definitely be numeric, but even if it is a string, it can still be auto-incremented (see http://perldoc.perl.org/perlop.html#Auto-increment-and-Auto-decrement).

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