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I intend to create a checker function which will be used by another functions. The idea was simple: if the conditions are not fulfilled, stop the function by returning it.

This is the original code:

function awesome(){ 
    $a = "2";
    if ($a != "1"){return;} 
    echo "awesome"; 
}

It worked. Because the $a was 2, the function is returned and the word "awesome" is not appeared. However, there are several functions to check. To avoid repetition, i made it this way:

function test($var){
    if ($var != "1"){return;}
}

function awesome(){
    test("2");
    echo "awesome";
}

function awesomeagain(){
    test("3");
    echo "awesome";
}

but the word "awesome"s are appeared, and the both function awesome() and awesomeagain() are not returned. How to return those two by adding test() function?

Thank you. I really appreciate your help.

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thanks for the editing. I'm really new here, still confused by the formatting. –  fikrirasyid Mar 12 '11 at 16:06
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5 Answers

up vote 1 down vote accepted
function test( $var ) {
    return ( $var == "1" );
}

function awesome() {
    if ( test("2") ) {
        echo "awesome";
    }
}

function awesomeagain(){
    if ( test("3") ) {
        echo "awesome";
    }
}

Fikry, try to re-learn the concept of conditional, this is the basic programming skill. Without it, you will make many buggy code and functions.

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fYou probably shouldn't rely on another function stopping another function form running. Try this instead

function test($var){
    if ($var != "1"){return false;} return true;
}

function awesome(){
    if(test("2"))
    echo "awesome";
}

function awesomeagain(){
    if(test("3"));
    echo "awesome";
}
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thanks for your response, it is quite similar to the previous response and with a very small modification it worked :D –  fikrirasyid Mar 12 '11 at 16:00
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Your test function has to return a value, and you have to test this value in other functions. Something like this:

function test($var) {
  if ($var != "1")
    return false;
  else
    return true;
}

so, your code should be like this:

function awesome() {
  if (test("2"))
    echo "awesome";
}

But, if you want to avid checks, you can throw an exception. This should look like this:

function test($var) {
  if ($var != "1")
    throw new Exception();
}

and in other functions use

function awesome() {
  try {
    test("2");
    echo "yeah";
  } catch ($e) {}      
}
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Wow, thanks! the 'test()' is worked but I made a little modification to the 'awesome()' so the code goes like this: 'if (test("2") == true)' then it works like a charm :D –  fikrirasyid Mar 12 '11 at 15:59
    
In php good practice is to check value and type, so use if (test("2") === true), since in php this will return true ("2" == true), but ("2" === true) will return false. –  dugokontov Mar 12 '11 at 22:08
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function test($var) {
    if ($var != "1"){
        return "awesome";
    }
    // do something else when $var is not "1" here.
}
function awesome(){
    echo test("2");
}
function awesomeagain(){
    echo test("3");
}

That's it! PHP is awesome! :)

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hmm.. i don't do that because the actions will be placed on awesome() and awesomeagain() and those actions are different. btw, yeah PHP is awesome. thanks for your response :D –  fikrirasyid Mar 12 '11 at 16:01
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to return from the function you have to use return keyword

function test($var){
    if ($var == "1"){
        return TRUE;
    }
}

function awesome(){
    if (!test("2")){
        return FALSE;
    }
    echo "awesome";
    return TRUE;
}
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