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Like in Perl, if a hash key is uninitialized then if you perform the below code

$hash{$key} =~ $hash{$key}++

then the value for that particular key increases to 1 (cause, it's first undefined and then as per the context, here it's numaical ... it takes the value to 0 ... increases it to 1).

My question is, does the same concept follows in case of C# as well? I mean, if I perform the above code in c# what would be the result? Will it be 1 or what?

Any idea?

Thanks, Rahul

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That is a bizarre and convoluted way to see if a hash has a certain key. Don't do that. –  ysth Feb 21 '11 at 17:13

2 Answers 2

up vote 3 down vote accepted

That bit of code makes no sense.

If you want to know if the key exists in the hash:

if (exists $hash{$key}) { ... }

If you want to know if it has a value defined:

if (defined $hash{$key}) { ... }

If you want to increment the value,

$hash{$key}++

As it is, you're attempting to do a regex match in a rather nonsensical way.

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It's not nonsensical; it's both incrementing and testing if it was previously defined (because postincrement returns 0 when its argument is undef, and undef=~0 will be false). But it's extremely obfuscated. –  ysth Feb 21 '11 at 17:35
    
Ah, yes, good point. –  David Precious Feb 21 '11 at 18:05
1  
Actually, I'm wrong; the string matched against is the value after the increment, so this is undef=~0 or 2=~1 or 3=~2 etc and will never match. –  ysth Feb 21 '11 at 19:28
    
@ysth/@David, yes, correct that ... it's not the way at all to check whether a hash key exist or not and neither it's my code ... I found that in someone else code and had to perform something same in C# ... Also, apart from nonsensical/obfuscated ... it's confusing too :) –  Rahul Feb 21 '11 at 20:42

OOPS!!! Sorry ... I got it; actually the Perl code mentioned is meant to check/confirm whether the particular "KEY" exist or not ... OR sort of that.

So, in C# I cna just check for "hashtable.containskey(key)" ... that will do the trick.

Thanks.

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Close, what the above code actually did was check to see if the original value was defined. It's possible to have a key that both exists, and is undefined. –  Brad Gilbert Feb 21 '11 at 19:10

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