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The following code retrieves and displays the correct data from the database however it gets all the data. I need a way to assign each value it retrieves from the database to a PHP variable. For example, if it gets "Joe", "Henry", and "Robert" from the database, I'd like one variable for each of those and right now it returns and array with all the values.

<?php
dbCon();
$query1 = mysql_query("SELECT * FROM hosts WHERE name!=''");
while($row1 = mysql_fetch_assoc($query1)) {
$res = $row1['name'] . '<br />';
echo $res;
}
?>

Thanks

share|improve this question
    
Let me get this straight. You want variables like $joe, $henry, and $robert? Or did I read the question wrong? –  christopher Dec 15 '12 at 4:00
    
I'd want $joe to equal only "Joe" from the database and likewise for the others. As of right now, it just returns/displays an array listing all the entries it finds –  user1710563 Dec 15 '12 at 4:04
    
I don't think it would be good practice to do that. If your data ever changes, your code won't handle it. Tell us more about what you want this functionality for. –  Anton Dec 15 '12 at 4:07
    
I have 2 columns in this database, one named 'id' and one 'name'. One row contains an id of 1 and the name of Joe and the second with the id of 2 and name of Henry. I would like to display Joe and Henry on my page in 2 different places, not in a list –  user1710563 Dec 15 '12 at 4:12
    
If you only care about name and not id, then don't use * as part of the SELECT statement (use name). –  Kitsune Dec 15 '12 at 4:21

3 Answers 3

up vote 1 down vote accepted
<?php
function echoName($id) {
dbCon();
$query1 = mysql_query("SELECT * FROM hosts WHERE id='$id'");
while($row1 = mysql_fetch_assoc($query1)) {
$res = $row1['name'] . '<br />';
echo $res;
}
}
?>


<div id="joe_div">
<?
echoName("1");
?>
</div>

.....


<div id="henry_div">
<?
echoName("2");
?>
</div>
share|improve this answer
    
you can call echoName() function from anywhere and echo the name of person by providing it id! –  Muhammad Talha Akbar Dec 15 '12 at 4:22
    
hey man i don't know why OPs go to sleep whenever I answer any question! –  Muhammad Talha Akbar Dec 15 '12 at 4:26
    
Sorry about the delay - this gold. Thanks! –  user1710563 Dec 15 '12 at 4:43
    
i used php function for first time in my life and now i learned it that how to use them properly! thanks for your question ;) –  Muhammad Talha Akbar Dec 15 '12 at 4:47

Declare variable variables as such:

while($row1 = mysql_fetch_assoc($query1)) {
  $$row1['name'] = $row1['name']
}

echo $Joe; //returns Joe

Though I don't know why you would ever need that

share|improve this answer
if it gets "Joe", "Henry", and "Robert" from the database, I'd like one variable for each of those

So try this:

<?php
 dbCon();
 $query1 = mysql_query("SELECT * FROM hosts WHERE name!=''");
 while($row1 = mysql_fetch_assoc($query1)) {
 $$row1['name'] = $row1['name'];
}

echo $Joe;
echo $Henry;
echo $Robert;
?>

P.S: I don't know why you want to do this, but i am sure you have a better approach to solve your problem.

share|improve this answer
    
same as @christopher? is it? –  Muhammad Talha Akbar Dec 15 '12 at 4:27
    
oops! i should have loaded all answers before pressing submit. :D –  manuskc Dec 15 '12 at 4:28
    
:) :D ;) what a co-incidence... both have same answer! –  Muhammad Talha Akbar Dec 15 '12 at 4:30

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