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Ok, I have the following code:

$array = mysql_query("SELECT artist FROM directory WHERE artist LIKE 'a%' 
        OR artist LIKE 'b%' 
        OR artist LIKE 'c%'");
    $array_result= mysql_fetch_array($array);

Then, when I try to echo the contents, I can only echo $array_result[0];, which outputs the first item, but if I try to echo $array_result[1]; I get an undefined offset.

Yet if I run the above query through PHPMyAdmin it returns a list of 10 items. Why is this not recognized as an array of 10 items, allowing me to echo 0-9?

Thanks for the help.

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I know that % is the usual wildcard, but have you tried using * instead? –  JMichelB Aug 9 '11 at 18:52

3 Answers 3

up vote 13 down vote accepted

That's because the array represents a single row in the returned result set. You need to execute the mysql_fetch_array() function again to get the next record. Example:

while($data = mysql_fetch_array($array)) {
  //will output all data on each loop.
  var_dump($data);
}
share|improve this answer
    
Thanks a bunch. Oddly enough, when I use this, it doesn't get the value for the data in first row. I.e. Say first artist is Apple, the second is Banana, the third is Cantaloupe. When I var dump, it just does Banana -> Cantaloupe -> etc, no apple. –  Ando Aug 9 '11 at 19:09
    
@Ando: Does it get 'apple' when you use PMA (PhpMyAdmin)? Could be: (1) Your php-generated SQL query doesn't filter the records appropriately. (2) You don't ORDER BY, but you LIMIT, thus maybe the record with 'apple' is left behind while filtering. –  Dor Aug 9 '11 at 19:14
    
My SQL query does bring back Apple, and I do ORDER BY artist ASC. What is peculiar is if I ORDER BY desc, then it shows Apple at the bottom, but then it is missing the item that should be first...very odd –  Ando Aug 9 '11 at 19:20
    
Also, if I use while(list($artist) = mysql_fetch_array($result)) { echo $artist; } the list shows only items 1-9 instead of 0-9. –  Ando Aug 9 '11 at 19:23
    
Try posting the exact code, table description (SHOW TABLE STATUS LIKE "tbl_name"; DESCRIBE tbl_name;) and output, we'll try and see where's the problem. –  Dor Aug 9 '11 at 19:32

You should be using while to get all data.

$array_result = array();
while ($row = mysql_fetch_array($array, MYSQL_NUM)) {
    $array_result[] = $row;
}
echo $array_result[4];
share|improve this answer
1  
The data is stored in PHP's memory space anyway. Copying that data is usually useless. –  Dor Aug 9 '11 at 19:16
    
@Dor I fail to see how moving the data into an array is useless. How else are you going to access the data? Suppose you want the two rows, you're not going to be able to get both of them in the same iteration of the while loop, so it's going to be a good idea to first copy the data into a usable array. –  Dave Chen Oct 19 '14 at 4:50

I prefer to use this code instead:

$query  = "SELECT artist FROM directory WHERE artist LIKE 'a%' 
        OR artist LIKE 'b%' 
        OR artist LIKE 'c%'";           
$result = mysql_query($query) or die(mysql_error());


while(list($artist) = mysql_fetch_array($result))
{
echo $artist;
}

If you add more fields to your query just add more variables to list($artist,$field1,$field2, etc...)
I hope it helps :)

share|improve this answer
    
Or: while($data = mysql_fetch_assoc($result)) { extract($data); /*...*/ }. See: php.net/manual/en/function.extract.php –  Dor Aug 9 '11 at 19:09

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