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'd really appreciate anyone's help in this. Basically I want to make an array of lists made from other arrays in order to get round the limitations of wordpress' do_shortcode function. I'm doing this using a number of functions.

LONG VERSION OF THE PROBLEM:

The code currently looks like this:

    /* These are the functions contained in a functions file */

    function output_entry_data() {
   $postdate = get_the_date('j/n/y');
   $entrytitle = get_the_title();

return ('<li><p class="postmeta">'. $postdate. '</p><h3>'. $entrytitle. '</h3></li>');
    }



    function output_month_data($entrynomax = '', $month = '', $entrydata = '') {
   $entryno = 1;

   while($entryno <= $entrynomax) {
    echo $entrydata[$entryno];
    $entryno++;
   }

    }


    function output_year_data($monthlynomax = '', $year = '', $monthlydata = '') {
   $monthno = 1;

   while($monthno <= $monthnomax) {
    echo do_shortcode('<h4>[slider title="'. $month. '"]</h4><ul>'. $monthlydata[$monthno]. '</ul>[/slider]');
    $monthno++;
   }

    }

    /* This is from a loop that determines whether you have reached the end of a month or a year */

    $entrydata[$entryno] = output_entry_data();
    $entrynomax = $entryno;

    $monthlydata = array($monthno => $monthno);
    $monthlydata[$monthno] = return(output_month_data($entrynomax, $month, $entrydata));
    $monthlynomax = $monthno;

    $annualdata[$yearno] = array($yearno => $yearno);
    $annualdata[$yearno] = return(output_year_data($monthlynomax, $year, $monthlydata));

    $entryno = 1;
    $monthno = 1;
    $yearno++;
    $yearo = get_the_date('Y');

    /* The idea is that all the data gets outputted at the end of the loop like this: */

    $yearnomax = $yearno;

    echo ('<ul>');

   $yearno = 1;

   if($yearno <= $yearnomax) {
    echo do_shortcode('<h3>[expand title ="'. $year. '"]</h3><ul>'. $annualdata[$yearno]. '</ul>[/expand]');
    $yearno++;
   }

    echo('</ul>');

At the moment the code is successfully creating the $entrydata[$entryno] array because the function output_entry_data() simply returns a line of code each time.

However, when I try to create the array $monthlydata[$monthno] for each month, it simply runs the function output_month_data() and makes a big list of all the monthly entries, rather than passing the data to the array to be used by the other functions.

I can see that this is because I used 'return' in output_entry_data() and 'echo' in output_month_data()

SHORT VERSION OF THE PROBLEM

Each item in the array $entrydata[$entryno] is a string containing a list item tag, I want output_monthly_data() to return one big string of all the items in $entrydata[$entryno] to be used by other functions, rather than echo them as the code currently does. Can this be done when there's a while loop involved?

Many thanks, I'd appreciate any input here.

share|improve this question

1 Answer 1

Yes, this is (easily) possible. There are at least two ways

  1. Concatenate strings and return the resulting string:

    function output_month_data($entrynomax = '', $month = '', $entrydata = '') {
      $entryno = 1;
    
      $return = '';
      while($entryno <= $entrynomax) {
        $return .= $entrydata[$entryno]; # concatenate strings
        $entryno++;
      }
    
      return $return;
    }
    
  2. Store results in an array and use implode to return a string containing all items:

    function output_month_data($entrynomax = '', $month = '', $entrydata = '') {
      $entryno = 1;
    
      $return = array();
      while($entryno <= $entrynomax) {
        $return[] = $entrydata[$entryno]; # append to array
        $entryno++;
      }
    
      return implode('', $return); # change '' to any glue you want
    }
    
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.