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.

I have a hash of arrays, as follows:

my %hash = (
234 => ["Larry", "Curly", "Moe"],
235 => ["bb", "ab", "aa", "ab", "bb"],
236 => ["aa", "ab", "bb", "aa", "bb"],
)

For each key in my hash, I would like to loop through each element of the array, assign that to a scalar variable so that I can process it, then move onto the next element of the array. Once I have processed all the elements of the array for a key, I want to onto the next key and individually process all of the elements of its array, and so on.

I found and modified a snippet of code that iterates over the hash values (the array of each key in this case). Then I have a nested for-loop, that iterates over each element of that array. However, it's not doing what I expect it to.

for my $value (values %hash) {
    for (@$value) {
        my $index = shift($_);
       #process index
    }
}

Error Message Not an ARRAY reference at [line number]

For example, for the first iteration, I want $index to equal Larry so that I can process it. Next iteration, I want $index to equal Curly so that I can process it. Next iteration, $index should equal Moe, process it. Next iteration, $index should equal bb, and so on.

There may be a better function than shift. The shift function takes the first element off of the array. I want the hash of arrays to retain it's values so that I don't have to repopulate the hash of arrays.

thanks

share|improve this question

1 Answer 1

up vote 6 down vote accepted

The problem is that your list in @$value is already a list of your array elements, not arrays. Which is why you cannot use shift on it. All you need is:

for my $value (values %hash) {
    for my $index (@$value) {  # "Larry", "Curly", "Moe" etc
       ....
       #process index
    }
}

You probably don't want to use shift on your array anyway, since that will delete entries from your original structure.

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.