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Please compare the CURRENT and DESIRED results below to see what I'm trying to do.

$arr=array(
array('list_name'=>'Food', 'list_item'=>'bread'),
array('list_name'=>'Food', 'list_item'=>'meat'),
array('list_name'=>'Drinks', 'list_item'=>'water'),
array('list_name'=>'Drinks', 'list_item'=>'milk')
);

foreach($arr as $row){   
  echo $row['list_name'].'<br>'; 
  echo $row['list_item'].'<br>';
  echo '<br>___<br>';
}

CURRENT RESULT

Food
bread

___
Food
meat

___
Drinks
water

___
Drinks
milk

___

DESIRED RESULT

Food
1.bread
2.meat
___

Drinks
1.water
2.milk
___

UPDATE

More complex, yet more generalizable example:

$arr=array(
array('list_name'=>'Food', 'list_item1'=>'bread', 'list_item2' => 2001),
array('list_name'=>'Food', 'list_item1'=>'meat', 'list_item2' => 2002),
array('list_name'=>'Drinks', 'list_item1'=>'water', 'list_item2' => 2003),
array('list_name'=>'Drinks', 'list_item1'=>'milk', 'list_item2' => 2004)
);

DESIRED RESULT

Food
1.bread, 2001
2.meat, 2002
___

Drinks
1.water, 2003
2.milk, 2004
___
share|improve this question
    
Why the downvotes? I think I've written a high-quality question. –  tim peterson Mar 2 '13 at 20:04
    
I think you should describe your problem better... –  jadkik94 Mar 2 '13 at 20:06
3  
Seems clear enough to me –  IMSoP Mar 2 '13 at 20:06
    
I think its pretty self explanatory from the title and from comparing the current vs. desired result. –  tim peterson Mar 2 '13 at 20:07
1  
I believe he's saying that your problem is clear (contrary to jadkik94's opinion). –  MichaelRushton Mar 2 '13 at 21:31

4 Answers 4

up vote 4 down vote accepted

You could iterate over the array and add the item data to a new array (one for each list_name).

For example:

$new_array = array();

foreach ($arr as $row)
{
  $new_array[$row['list_name']][] = $row['list_item'];
}

foreach ($new_array as $name => $items)
{

  echo $name . '<br>'; 

  foreach ($items as $index => $item)
  {
    echo ($index + 1) . '. ' . $item . '<br>';
  }

  echo '___<br>';

}

With your update:

$new_array = array();

foreach ($arr as $row)
{

  $name = $row['list_name'];

  unset($row['list_name']);

  $new_array[$name][] = $row;

}

foreach ($new_array as $name => $items)
{

  echo $name . '<br>'; 

  foreach ($items as $index => $item)
  {
    echo ($index + 1) . '. ' . implode(', ', $item) . '<br>';
  }

  echo '___<br>';

}
share|improve this answer
1  
Neat approach; I've appropriated some of your code as an alternative in my answer, as I've had reason to use both in the past :) –  IMSoP Mar 2 '13 at 20:21
    
@MichaelRushton To make it more generalizable, i'm wondering how to extend your answer if the lists contained more items. I'm gonna add that to my question right now. –  tim peterson Mar 2 '13 at 21:20
    
It'll work with any number of list_items and any number of list_names. Or do you mean if there's a further breakdown? E.g. Food => bread => Hovis? –  MichaelRushton Mar 2 '13 at 21:22
    
@MichaelRushton No, no further breakdown. Can you see my updated answer/desired result? Sorry I'm just working this out now myself. –  tim peterson Mar 2 '13 at 21:25
1  
Yep, updated answer. –  MichaelRushton Mar 2 '13 at 21:29
$arr=array(
array('list_name'=>'Food', 'list_item'=>'bread'),
array('list_name'=>'Food', 'list_item'=>'meat'),
array('list_name'=>'Drinks', 'list_item'=>'water'),
array('list_name'=>'Drinks', 'list_item'=>'milk')
);

$names = array();

foreach ( $arr as $item){
    $name = $item['list_name'];
    if(!in_array($name, $names)){
        $names[] = $name;
        echo $name ."<BR>";
    }
    echo $item['list_item']."<BR>";
}
share|improve this answer
    
Could you add some commentary as to what this code is doing? If I read it right, this is the same as my first suggestion, but if the list is not sorted correctly, it will echo items under the wrong header, whereas mine would produce a duplicate header. –  IMSoP Mar 2 '13 at 20:48
    
Have you tested either of yours? they don't work given the initial array –  ElefantPhace Mar 2 '13 at 20:54
    
I was actually tempted to write mine in pseudo-code, as I was explaining the general pattern. If there are problems with them, please add as comments on my answer. –  IMSoP Mar 2 '13 at 22:06

One common recipe for this is to store the current heading/section into a variable as you loop over the list. Then each time you encounter a new heading, you echo that heading, and re-start your numbering (or close your HTML <ol> tag, etc).

$current_section = NULL;
foreach ( $arr as $row )
{
    if ( $current_section != $row['list_name'] )
    {
        // Begin new section
        echo $row['list_name'];
        // Remember current section
        $current_section != $row['list_name'];
    }

    // Output current item
    echo $row['list_item'];
}

Note that this approach will only work if your list is sorted such that all "food" items come together, then all "drinks", etc.

Otherwise, you can use the alternative approach of re-structuring your array so that there is a sub-array for each section, and then using a pair of nested loops:

$new_array = array();
foreach ($arr as $row)
{
    $new_array[$row['list_name']][] = $row['list_item'];
}

foreach ( $new_array as $section_name => $items )
{
    echo $section_name;
    foreach ( $items as $row )
    {
        echo $row;
    }
}
share|improve this answer

Ok, I made a mistake earlier but I tested this and it does work.

<?php
$food = array('bread', 'meat');
$drink = array('water', 'milk');

$object = array('food' => $food, 'drink' => $drink);

foreach($object as $row){   
  echo $row[0].'<br>'; 
  echo $row[1].'<br>';
  echo '<br>___<br>';
}
?>
share|improve this answer
    
As I commented on your previous answer, this is only useful if you have control over the source data structure. The code in the question is clearly an example, and presumably comes from elsewhere in the code. –  IMSoP Mar 2 '13 at 20:51
    
Perhaps but I can only work with what parameters I'm given in the original question. –  Phillip Mar 2 '13 at 20:52
    
My point is you're not working with the parameters in the original question. You're inventing a completely different data structure. –  IMSoP Mar 2 '13 at 22:03
    
Not at all. In the original question he defined the array himself. I did the same. –  Phillip Mar 2 '13 at 22:05
1  
Ok. Enough debate. Lets gt back to having fun coding! –  Phillip Mar 2 '13 at 22:40

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