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I have tried this 100 ways and looked all over the net:

<?php
$dbname = 'pdartist2';
$table = 'subcategories';
// query

$result = mysql_query('SELECT SubHeaderText FROM subcategories where SCID = $SCID');

while($row = mysql_fetch_row($result))
{
    foreach($row as $cell)
        "$cell";
}
mysql_free_result($result);
?>

I am trying to pass the parameter $SCID which is a number, but I can't get the syntax. If I put a number in it works. But I need to be able to pass a variable.

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2  
Use " instead of ' –  prodigitalson Oct 24 '11 at 21:29
    
Just an observation, but what is the "$cell"; line doing? outputting the cell? you may want to put echo $cell; as it would work better. –  Nexerus Oct 24 '11 at 21:30
    
@Nexerus ...and, you know, parse... –  DaveRandom Oct 24 '11 at 21:43

4 Answers 4

up vote 0 down vote accepted

The two answers given regarding changing single quotes to double quotes are correct, however I have found the best way to accomplish what you are doing is to use single quotes for the sql, then simply append variables to the string, for example:

$result = mysql_query('SELECT SubHeaderText FROM subcategories where SCID = ' . $SCID);

// Or

$result = mysql_query('SELECT SubHeaderText FROM subcategories where SCID = ' . $SCID . ' AND someCol = ' . $someValue);

And as Nick Q. mentioned in a comment, you should prep your variables going into SQL so you don't end up the target of SQL injection attacks. My advice would be to learn PDO where you can prepare your statements then bind values.

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Using single quotes in PHP does not allow variables to be passed through. Make your query line this:

$result = mysql_query("SELECT SubHeaderText FROM subcategories where SCID = $SCID");
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2  
It's also worth noting, if $SCID is a user input you should be escaping it. –  Nick Q. Oct 24 '11 at 21:29
    
I'm sorry Nick, but I don't know what escaping it means. –  The old dog Oct 24 '11 at 21:39
    
Escaping means sanitizing data that you use (when passing to MySQL you need to escape quotes, semicolons, etc. as they can be interpreted by MySQL to mean something special. If you don't know what escaping is I highly recommend reading this: terrychay.com/article/… –  Nick Q. Oct 24 '11 at 21:48
    
bobby-tables.com for a nice look at why NOT escaping can lead to fun times. –  Marc B Oct 24 '11 at 21:59

you need to use double quotes around the entire query. I have also added error checking as that is very useful to check it worked as expected

$result = mysql_query("SELECT SubHeaderText FROM subcategories where SCID = '$SCID' ") or die(mysql_error());
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Thanks bumperbox, that fixed it! –  The old dog Oct 24 '11 at 21:36

The issue is that you're using single quote around your query and PHP won't interpret the variable in single quotes, only in double quotes. So you can write your query in one of two ways.

$result = mysql_query("SELECT SubHeaderText FROM subcategories where SCID = $SCID")

OR

$result = mysql_query('SELECT SubHeaderText FROM subcategories where SCID = '.$SCID)

Using the double quote method can look cleaner, but I personally like using the single quotes with concatenation so my editor will highlight that I'm using a variable there.

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