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Well, I have this function in a custom script for SMF:

$query = "SELECT id_member, real_name, id_group FROM smf_members WHERE id_group > 0 AND id_group != 9 AND id_group != 12 ORDER BY id_group ASC";

$result = mysql_query($query, $con);


function Display($member_id)
{
$queryDisplay = "SELECT value
    FROM smf_themes
    WHERE id_member = ".$member_id."
    AND variable = 'cust_realfi'";
}

while ($row = mysql_fetch_array($result)) {

Display($row['id_member']);

$resultDisplay = mysql_query($queryDisplay, $con);

echo ("<td>"); 

if (mysql_num_rows($resultDisplay) == 0) echo ("Not yet entered");
else {
 while ($rowDisplay = mysql_fetch_array($resultDisplay)) {
  if (strlen($rowDisplay['value']) > 0) echo ("".$rowDisplay['value'].""); 
 }
}
echo ("</td>"); 

}

If I echo ($member_id); it works just fine, but as soon as I put it like there ^, it doesn't do anything.

What am I doing wrong? :(

share|improve this question
    
There is no echo in the Display function, as I can see. –  Martin Vejmelka Jul 7 '11 at 20:03
3  
Where you actually execute the query? Right now that function does nothing but create and destroy a variable that happens to contain some sql. –  Marc B Jul 7 '11 at 20:03
    
did you try to echo $queryDisplay; –  Senad Meškin Jul 7 '11 at 20:04
    
What do you expect this function to do? You declare a variable which you don't use and then exit the function (eg. the variable is lost) –  Arend Jul 7 '11 at 20:04
    
maybe query database and return results –  bensiu Jul 7 '11 at 20:05

5 Answers 5

up vote 0 down vote accepted

is that the entire function? You are not even running the query. All you are doing is making a string with the sql and not running it.

Edit:

I think you need help in understanding variable scope in PHP.

http://php.net/manual/en/language.variables.scope.php

Basically it says that the code inside of a function has no access to variables (most variables) defined outside of the function. So for example:

$test = "test value";

function testFunc(){
    //Since the code inside this function can't
    //access the variables outside of this function
    //the variable $test below is just an empty
    //variable.
    echo $test;
}
testFunc();

This also works in reverse where variables inside of a function can't be accessed outside that function. This is what you are doing wrong.

function testFunc(){
    $someNewVar = "some new string";
}
testFunc();

//$someNewVar is never defined outside the function so it doesn't exist.
echo $someNewVar;

Once a function is done running, all variables declared and used locally inside of it are deleted from memory.

So to get a variable into the function, you need to pass it as an argument. To get a variable out, you need for the function to return the variable.

function testFunc($testVar){
    echo $testVar;
    $testVar = "some new string";
    return $testVar;
}
$test = "test val";
//passing the variable into the function and setting
//the return value back into $test.
$test = testFunc($test);
echo $test; //test now has "some new string".

Honestly, the php page will describe it better than I can. but this should give you an idea of what is wrong.

share|improve this answer
    
Please check my code as it is now and check for errors? –  Aart den Braber Jul 8 '11 at 12:58
    
No, it's still the same. You have a function that sets a variable. That's it. You need to either return the variable, echo the variable, or set a global variable, which I strongly recommend against. Return or echo it. Look up variable scope. –  Andrew Jul 8 '11 at 13:34
    
@Aart read that. –  Jonathan Kuhn Jul 8 '11 at 15:17
    
Ye, but you don't get it. It works perfectly fine. I just can't get the function to define $queryDisplay. If I put echo ($member_id); in the function and call it, it displays the information I want. –  Aart den Braber Jul 8 '11 at 16:58
    
@Aart Thing is, it doesn't "work perfectly fine". Or else you wouldn't be asking for help. the function needs to return $queryDisplay and you need to set it back in to $queryDisplay outside of the function. so you need to add return $queryDisplay; as the last line of the function and when you call the function do $queryDisplay = Display($row['id_member']);. like I said above, you can't define the value inside of the function and use it outside. Variables inside a function are not available outside. Once the function is over, any variables used in the function are destroyed. –  Jonathan Kuhn Jul 8 '11 at 17:02

Your function doesn't do anything: It assigns a value to a local variable, and then does nothing with the value and the variable. It should either return it (the value) or execute the query.

Also note that doing string concatenation to put the variable in the query is creating a security hole: http://bobby-tables.com/

You should consider using mysqli and parametrized queries as suggested here: http://bobby-tables.com/php.html

At the very least, consider quoting the values you include in the query with the functions provided by PHP to do so. All values. But parametrized queries are better and easier.

share|improve this answer

You are just preparing sql query, but not executing it.

share|improve this answer
    
Updated the first post. I hope it is more clear now. –  Aart den Braber Jul 7 '11 at 20:32

you function only makes a variable $queryDisplay (that is traped within the scope of the function)

share|improve this answer

your query

function Display($member_id){
$queryDisplay = "SELECT value FROM smf_themes WHERE id_member = ".$member_id." AND variable = 'cust_realfi'";
}

right query

    function Display($member_id){
    $queryDisplay = mysql_query("SELECT value FROM smf_themes WHERE id_member = '$member_id' AND variable = 'cust_realfi'");
    while ($row = mysql_fetch_array($queryDisplay));
    return $row['value'];
    }
share|improve this answer
    
lmao why vote down?!? what is wrong with this. post your reasoning for lowering an answer... i swear i think someone is following me around downvoting me... –  rackemup420 Jul 7 '11 at 20:05
    
Maybe he is missing some code from the Display function. As such, it shouldn't be labeled as 'right query'. (?) –  Martin Vejmelka Jul 7 '11 at 20:07
    
there is nothing wrong with it, if the connection string is initialized outside of the function, then the code works fine, worked for me. –  rackemup420 Jul 7 '11 at 20:10
2  
@Matthew Warner - You are returning $row['value'] but where is $row declared? –  James Allardice Jul 7 '11 at 20:11
    
roflcopter down!!! guess thats why i should still be sleeping lmao. sorry bout that i changed it –  rackemup420 Jul 7 '11 at 20:12

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