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in php i wrote my own debug function which have two arguments: text and a level of message. However i could be also you the php functions for triggering errors. But to debug in development i use sometimes like this:

debug($xmlobject->asXML(),MY_CONSTANT);

now i want to know whether it is a lack of performance in non debug executing because the arguments are calculated indepent whether they will be used inside function? and how to do that right that is only calculated if i need?

Thanks for your help, Robert

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2 Answers 2

up vote 1 down vote accepted

If you write the following portion of code :

debug($xmlobject->asXML(),MY_CONSTANT);

Then, no matter what the debug() function does, $xmlobject->asXML() will be called and executed.


If you do not want that expression to be evaluated, you must not call it; I see two possible solutions :

  • Remove the useless-in-production calls to the debug() function, not leaving any debugging code in your source files,
  • Or make sure they are only executed when needed.

In the second case, a possibility would be to define a constant to configure whether or not you are in debug-mode, and, then, only call debug() when needed :

if (DEBUG) {
    debug($xmlobject->asXML(),MY_CONSTANT);
}


Of course, the makes writting debbuging-code a bit harder... and there is a bit of performance-impact (but far smaller than executing the actual code for nothing).

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well thanks.. the solution @ stackoverflow.com/questions/193044/… is even better.. but i hope to get a more intitutive way or using classes or so :( –  rokdd Jul 18 '11 at 18:41
    
Unfortunately (unlike some other languages such as C, which have macro that are evaluated at compile-time), you cannot have portions of code that will just get removed, in PHP -- because of its interpreted nature, I suppose. –  Pascal MARTIN Jul 18 '11 at 18:55

The arguments are sended by value, ergo the method ->asXML() is executed always.

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@Pascal MARTIN explains how to make your debug function conditional. –  corretge Jul 18 '11 at 17:39

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