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I am calling a function that returns an array, but I'm running into this error: Can't use function return value in write context

Lots of people get this error, but I can't see what I've done wrong.

This is the function:

function select_image_styles_from_category($category)
{
$image_details();
switch($category)
{
    case 'twine':
            $image_details[0] = get_bloginfo('template_directory') . '/images/titles/blog-twine.png';
            $image_details[1] = 'on-top';
            break;
    case 'scrapbook':
            $image_details[0] = get_bloginfo('template_directory') . '/images/blog/papers.png';
            $image_details[1] = 'on-top';
            break;
    default:
            $image_details[0] = 'stuff';
            $image_details[1] = 'things';
}

return $image_details;

}

I then call this function from another function and this is the line it errors (there is more in this function, but it's just superfluous to the rest of the question):

function add_img_styles_to_special_categories($the_content_string, $category)
{
        //erroring line
    $image_details() = select_image_styles_from_category($category);
}

Am I missing a cast? Do I need to explicitly construct an array? Have I cocked up the case statement? I really can't see what I'm missing. Any of you gorgeous lovelies have any pointers?

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closed as too localized by deceze, NikiC, Juhana, sachleen, Graviton Jul 24 '12 at 2:43

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What should $image_details be? the first occurance is as a functioncall which would mean in $image_details was a function stored. after this it is an array. an in the erroring line... I'm not sure what you're doing. Why the brackets?? –  kuh-chan Jul 13 '12 at 9:54

2 Answers 2

up vote 1 down vote accepted

You have written code that looks like it's calling a function, when you just want to assign to a variable.

This

$image_details();

means "take the value of $image_details, interpret it as the name of a function and call that function".

So when you (mistakenly obviously) put the extra parens and wrote

$image_details() = select_image_styles_from_category($category);

the compiler read this as "take the value of $image_details, interpret it as the name of a function, call that function and assign the result of select_image_styles_from_category() to it". But you cannot assign anything to the result of a function (you can only store it somewhere), hence the error.

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Yep, clever me, I managed to forget that "()" constructs a function rather than declares a new array variable...! Have changed it now to (array)$image_details and it works. smacks head Thanks for responding : ) –  Gem Jul 13 '12 at 10:03
1  
@Gem: () does not construct a function, it calls one. I know you know what we 're talking about, but familiarizing yourself with the correct terminology could save you pain down the road (increases confidence). –  Jon Jul 13 '12 at 10:06
    
Gah! Yes, that's what I meant : ) Thanks for clarifying! –  Gem Jul 13 '12 at 10:20

$image_details() is a function call and you can't write onto a function. Do you just want to return it to the caller?

return select_image_styles_from_category($category);
share|improve this answer
    
Thank you! Yes, it turns out that I foolishly used "()" to indicate an array not thinking that I was actually creating a function - wow. That was stupid of me : ) What I've changed it to is (array)$image_details on both counts and it actually works now!! –  Gem Jul 13 '12 at 10:01

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