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I have two table classifieds and state.

classifieds - id, title, state_id

state - id, statename

I am trying to echo out the statename from state. I've tried this query but it echos only the last row.

    <?php
    $query  = "SELECT * FROM classifieds ";
    $result = mysql_query($query) or die(mysql_query());
    while($row = mysql_fetch_array($result, MYSQL_ASSOC))
    {
   ?>

    <div>
   <span>Title: <?php echo $row['title'];?> </span>
    </div>

   <div>
   <span>Name: <?php echo $row['name'];?> </span>
    </div>

      $q = mysql_query("SELECT * FROM classifieds AS C
    LEFT JOIN  state AS S
    ON C.state_id = S.id");
    $z = array();

    while($state=mysql_fetch_array($q))
     {
      array_push($z,$state["statename"]);
     }

     ?>
    <div>
    <span>State: <?php foreach($z as $location) { echo $location; } ?></span>

    </div>

  <?php } // End of the first while loop ?>

Thanks

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4 Answers 4

up vote 2 down vote accepted

You need to move your echo command inside the while loop. Otherwise it will only echo once it has gone through all of the rows.

 <?php
 $q = mysql_query("SELECT * FROM classifieds AS C
LEFT JOIN  state AS S
ON C.state_id = S.state_id");
 while($state=mysql_fetch_array($q)){
    echo "Location: ".$state["statename"];
 }
 ?>

Edit: With your updated code, I can see that your problem is that you first get a list of all the classifieds, then that same list again with the states joined in. You don't need to do the first query at all, only the second one.

 <?php
 $q = mysql_query("SELECT C.*, S.statename 
       FROM classifieds AS C
       LEFT JOIN  state AS S
       ON C.state_id = S.state_id");
 while($row=mysql_fetch_array($q)){
    echo "Title: ".$row["title"]."<br />";
    echo "Name: ".$row["name"]."<br />";
    echo "Location: ".$state["statename"]."<br />";
 }
 ?>
share|improve this answer
    
Still echos all the states. I updated my code above the way it is. –  Rocks May 29 '12 at 16:12
    
@Rocks: Okay, now I think I see what you want to achieve. I updated my answer. –  Kaivosukeltaja May 29 '12 at 18:19
1  
Kaivosukeltaja you my hero, and thanks to others too. –  Rocks May 29 '12 at 19:29

You're overwrting the value of $z on each loop iteration. If it will have multiple results from the database you'll want to make $z an array as well, and then use array_push() to append the value of $state["statename"] to $z

<?php
$q = mysql_query("SELECT * FROM classifieds AS C
    LEFT JOIN  state AS S
    ON C.state_id = S.state_id");

$z = array();

while($state=mysql_fetch_array($q)){
    array_push($z,$state["statename"]);
}
?>

Then use this after your loop to inspect your array...

<?php print_r($z); ?>

...and this to loop over the array and perform the formatting you require

<?php
foreach($z as $location) {
    echo 'Location ' . $location . '<br/>';
}
?>
share|improve this answer
    
Now the result prints like this Location: Array ( [0] => Texas [1] => Arizona [2] => Minnesota ) –  Rocks May 29 '12 at 15:14
    
Ah yes, I've updated the answer. This is useful if you don't have both portions of your code in the same file. This is typically how you structure MVC projects, or use HTML templates, where the database interaction is not on the same php page as your display logic. –  Brad May 29 '12 at 15:26
    
my code is all in one file. I've updated the code the way I have it. –  Rocks May 29 '12 at 16:04

You need to put the echo statement inside the while loop.

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Try this:

<?php
     $q = mysql_query("SELECT * FROM classifieds AS C LEFT JOIN  state AS S ON C.state_id = S.state_id");

      while($state=mysql_fetch_array($q))
      {
           $z =$state["statename"];
           echo "Location: " . $z . PHP_EOL;
      }
 ?>

In your original code, the echo statement outside the loop will only be executed once, i.e. only the last time $z was assigned will be displayed. Placing it inside the loop ensures that it will be executed for each of the rows of data.

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