22

I am often using echo to debug function code:

public function MyFunc() {

    // some code...
    echo "OK";
    // some code...

}

How can I check that my function print's/echo's something?

(pseudo code):

MyFunc();

if (<when something was printed>){
    echo "You forgot to delete echo calls in this function";
}
7
  • 4
    unclear what you asking. Jul 10, 2015 at 9:39
  • 6
    Since it's your function, you should know what's inside
    – Alma Do
    Jul 10, 2015 at 9:54
  • 2
    @AlmaDo people can be forgetful - this is a great way to clean up.
    – Seiyria
    Jul 10, 2015 at 12:43
  • 1
    @Seiyria well, if function is so long that at first look you can't get if it echoes something or not - then it's a way too long function. I would not make my method longer than ~12 lines (including prototype)
    – Alma Do
    Jul 10, 2015 at 12:50
  • 2
    @AlmaDo it's not a matter of the function being long; the codebase could just be large. I forget that I have console.log in my code occasionally -- I have CI to catch that error, because sometimes you just forget.
    – Seiyria
    Jul 10, 2015 at 13:07

6 Answers 6

36

This should work for you:

Just call your functions, while you have output buffering on and check if the content then is empty, e.g.

ob_start();

//function calls here
MyFunc();

$content = ob_get_contents();

ob_end_clean();

if(!empty($content))
    echo "You forgot to delete echos for this function";
5
  • 1
    As an alternative, you could also check if the headers have been sent: php.net/manual/en/function.headers-sent.php
    – jeroen
    Jul 10, 2015 at 9:58
  • 1
    @jeroen Ah yeah, that's also a way, didn't thought about that :) (Well it maybe gives you some trouble when you already echo'ed something above the function call)
    – Rizier123
    Jul 10, 2015 at 10:00
  • Just be careful if the tested function itself also plays with the output buffer. Jul 10, 2015 at 10:40
  • Be absolutely sure you know what you're doing with the output buffer. Thinkgs might act weird when you get more advanced. I've used outputbuffer only once in the last few years.
    – Martijn
    Jul 10, 2015 at 12:59
  • You can abbreviate that using ob_get_clean().
    – deltab
    Jul 10, 2015 at 19:57
16

You could create a $debug flag and a debuglog() function, which checks for the debug flag and only then echos the message. Then you can toggle your debug messages on and off from one location.

define('DEBUGMODE', true); // somewhere high up in a config

function debuglog($msg){
    if( DEBUGMODE ){ echo $msg; }
}

Should you ever want to get rid of your debug echos, you can search for "debuglog(" and delete those lines of code. This way you won't accidentally delete any echo statements that are required in normal execution or miss any debug echo statements that should really have been removed.

7
  • Sounds good, but eventualy i want to remove all the debuglog calls from my code.... Jul 10, 2015 at 10:03
  • 1
    At which point you could just do a search for all instances of "debuglog(" and delete those lines of code.
    – Matt
    Jul 10, 2015 at 10:05
  • 5
    The most adequate solution, IMHO
    – user3079266
    Jul 10, 2015 at 10:20
  • @GrigoryIlizirov If you search-and-remove debugging statements from your code then you are doing it wrong!
    – Salman A
    Jul 10, 2015 at 11:12
  • I've improved this a bit. A contant can never change value, is a bit safer. A constant is defined globally, no need to global variables, is a bit safer (example.com/?debug=true could break it)
    – Martijn
    Jul 10, 2015 at 13:02
2

It's the bad way checking if something is echoed.

You can set a variable named is_echoed to 1 or you can return the value

public $is_echoed = 0;
//rest
$this->is_echoed = 1;

or

function myFunc()
{
  return "OK";
}
if(myFunc() == 'OK')
     //rest
1

You can use var_dump() and die() to debug your code more efficiently.

$test = "debud test";
public function MyFunc($test)
{
// some code...
var_dump($test); die();
// some code...
}

Reference: http://php.net/manual/en/function.var-dump.php

http://php.net/manual/en/function.die.php

2
  • You can't use that variable inside the function (: it would be a syntax error, add the variable as parameter to the function
    – jmattheis
    Jul 10, 2015 at 9:47
  • My bad forgot to pass the variable to the function :( Jul 10, 2015 at 9:49
1

Why do you want to try such an extensive process of seeing if something has been echoed or not?

For debugging you can definitely use echo to see if the particular block is being hit during a particular use-case. But I would suggest you use flags and return the values to the calling function.

function xyz () {

     if (something) return some_value;
     else return some_other_value;
}

There is no particular need to have variables and use space in storing a 0 or 1 when you can just return a hard-coded literal.

0

I would suggest to you to use something like log4php [1]

But if not, I use a function like this:

define('DEBUG', true);
function debug($msg){
    if(DEBUG){ echo $msg; }
}

Or something like this to see the log in the browser console:

function debug_to_console( $data ) {

    if ( is_array( $data ) )
        $output = "<script>console.log( 'Debug Objects: " . implode( ',', $data) . "' );</script>";
    else
        $output = "<script>console.log( 'Debug Objects: " . $data . "' );</script>";

    echo $output;
}

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