Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This might sound silly and might sound unsafe but i have collums in my called poke1hp all the way up to poke6hp. I need to make it so that if a variable is set to 1 it will select and echo out the poke1hp collum and if the variable is 6 it will echo out the poke6hp

So he is what i got which should work but is not.

if ($_SESSION['pickedslot'] == '1') {$tablename = "poke1hp";}
if ($_SESSION['pickedslot'] == '2') {$tablename = "poke2hp";}
if ($_SESSION['pickedslot'] == '3') {$tablename = "poke3hp";}
if ($_SESSION['pickedslot'] == '4') {$tablename = "poke4hp";}
if ($_SESSION['pickedslot'] == '5') {$tablename = "poke5hp";}
if ($_SESSION['pickedslot'] == '6') {$tablename = "poke6hp";}

The i do a select with the $tablename also at this point i echo out the $tablename and all is working fine the column name is in there. Now i try and use the collum name in side the variable i set above in a select

// here we grab the users hp 
$grabhp = $db->prepare("select '$tablename' from new_battles WHERE username = ?");
$grabhp ->execute(array($_SESSION['username']));
$grabhp2 = $grabhp ->fetch(); 

echo $grabhp2 ['$tablename'];

But i get nothing printed out... i know instead of having columns i could have rows but i have coded it this way...

share|improve this question
    
php doesn't expand variables inside of single quote delimited strings. –  goat Jul 4 '13 at 2:32
    
i try double ones but still does not work –  user2442903 Jul 5 '13 at 7:08
add comment

1 Answer

up vote 0 down vote accepted

Variables are not expanded within single quotes:

http://php.net/manual/en/language.types.string.php

I would recommend not using quotes for your example, but you could use double quotes.

echo $grabhp2[$tablename];

or

echo $grabhp2["$tablename"];

should work just fine.

The way I write PHP, I would actually refine the code you presented into this:

switch ($_SESSION['pickedslot']) {
    case '1':
        $tablename = "poke1hp";
        break;
    case '2':
        $tablename = "poke2hp";
        break;
    case '3':
        $tablename = "poke3hp";
        break;
    case '4':
        $tablename = "poke4hp";
        break;
    case '5':
        $tablename = "poke5hp";
        break;
    case '6':
        $tablename = "poke6hp";
        break;
}

and

function stmt_bind_assoc(&$stmt, &$out) {
    $data = mysqli_stmt_result_metadata($stmt);
    $fields = array();
    $out = array();

    $fields[0] = $stmt;
    $count = 1;

    while($field = mysqli_fetch_field($data)) {
        $fields[$count] = &$out[$field->name];
        $count++;
    }   
    call_user_func_array(mysqli_stmt_bind_result, $fields);
}

// here we grab the users hp 
$grabhpStatement = $db->prepare("select '$tablename' from new_battles WHERE username = ?");
$grabhpStatement->bind_param("s",$boundusername);
$boundusername = $_SESSION['username'];

$grabhpStatement->execute();

stmt_bind_assoc($grabhpStatement, $row);

while ($grabhpStatement->fetch()) {
   print_r($row); //to give you an idea of how to handle it
}

In the example you provided, you're incorrectly handling MySQLi prepared statements.

Here's a reference:

http://php.net/manual/en/mysqli.quickstart.prepared-statements.php

share|improve this answer
    
i have changed the echo to echo $grabhp2["$tablename"]; but still does not work.... –  user2442903 Jul 4 '13 at 8:19
    
This issue, I think, is that you're improperly using MySQLi prepared statements. I would recommend doing some research on those. Alternatively, you can use this: php.net/manual/en/mysqli.query.php + php.net/manual/en/mysqli-result.fetch-assoc.php –  Timothy Zorn Jul 10 '13 at 15:47
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.