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My code is like this:

<?php
define("ERROR", "SOMETHING WRONG WITH MY DATABASE");
... 
if (!mysql_query($q)){
  die(ERROR);
}
?>

Now I want to replace "SOMETHING WRONG WITH MY DATABASE" with mysql_error() in case I want to debug it. what is the easiest way ?

This does not seem to work work: define("ERROR", mysql_error());

---- edit ---

I don't want to use mysql_error() under production environment, it may help the attacker figure out something related to my database? That's my point of using a constant string

as in C you can do #define x yourfunction() I'm not sure if I can do the same in php

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What's wrong with just using a function? –  Juhana Mar 29 '12 at 12:22
    
@Juhana I added my explanation.. –  w00d Mar 29 '12 at 12:29
    
function my_error() { return mysql_error() } - when you go live replace mysql_error() with a string. There's no reason to try to make a function "constant", whatever that means. –  Juhana Mar 29 '12 at 12:30
    
ok.. maybe that's the only way to go –  w00d Mar 29 '12 at 12:34
    
Why not turn it to a global variable instead? –  Jomar Sevillejo Mar 30 at 0:21

4 Answers 4

up vote 3 down vote accepted

The simple answer is "you cannot do that". The whole point of constant is that it's constant as in its value is never changed. If it refers to a function call, the function can return any value - and it's not constant any more.

One trick you can do is define the function call itself to be the value of the constant - and then eval it on demand, something like this:

define("ERROR", "return mysql_error()");
...
die(eval(ERROR));

However this is really a rather bad code. You'd be much better off doing

die(mysql_error());
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1  
Your horrible, horrible eval() would require the constant to be defined with a value of return mysql_error(); or it won't output anything. But why on earth anyone would do that is beyond me. –  DaveRandom Mar 29 '12 at 12:25
    
Or prepending the static string to the error message, as @DaveRandom suggests. –  Scott Wilson Mar 29 '12 at 12:25
    
is mysql_error() unsafe in a production environment ? I don't want to display the mysql error so the attacker can get something out of it... that's my point of using a constant string. –  w00d Mar 29 '12 at 12:25
1  
@iKid what I do is something like this: Have a global var boolean called $__DEVMODE, which is true in dev and false in production. Then have a function like this: function mysql_safe_error ($link = NULL) { return ($GLOBALS['__DEVMODE']) ? mysql_error($link) : mysql_errno($link); }. Then your code would be if (!mysql_query($q)) { die(mysql_safe_error()); } –  DaveRandom Mar 29 '12 at 12:28
    
@DaveRandom yes, agree, my mistake, I updated that. In any event, it's a rather bad practice. –  Aleks G Mar 29 '12 at 12:33

A constant should be exactly what the name implies - constant. You cannot redeclare a constant, and anything that has a variable value should be stored in - you guessed it - a variable.

However, you could do something like this:

<?php

  define("ERROR", "SOMETHING WRONG WITH MY DATABASE: ");

  // ... 

  if (!mysql_query($q)){
    die(ERROR . mysql_error());
  }

?>
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mysql_error() has to be called AFTER the sql operation that you are trying to catch. You cannot catch this error with a predeclared constant or variable. You either have to call it directly, or call another function which calls it, like so:

die(mysql_error());

or:

define("ERROR", "Database Problem ");

function Err() {
  $sql_err = ERROR . mysql_error();
  return $sql_err;
}
// sql operation here, then test for error
die(Err());
share|improve this answer

You can use something like Stefan suggested and add a DEBUG constant which you can switch between prod and dev environment:

define('DEBUG', 1);

// In the function:
// ...
echo ERROR;

if (DEBUG){
  echo mysql_error();   
}

die();
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