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ok so im here trying to practice some php (im a super beginner) and so long story short, i put form elements in one page, passed it to the process php. Im just messing aound trying to see what ive learned so far. i dont get any errors, just dont understand why it doesnt work.

<?php 

$yourname = htmlspecialchars($_POST['name']);
$compname = htmlspecialchars($_POST['compName']);

$response = array("please enter correct information","hmm" . "$yourname");

function nametest() {
if (!isset($yourname)){
    $yourname = $response[0];}
    else { 
    $yourname = $response[1];;
    }
}
?>


<?php  nametest(); ?>

what im trying to do is, that if the name isnt set, to make a variable equal to a value inside response.

share|improve this question
1  
You should read this: php.net/manual/en/language.variables.scope.php –  Jamie Wong Jul 20 '11 at 1:05

3 Answers 3

Try

function nametest() {
    if (!isset($yourname)){
        $yourname = $response[0];
    } else { 
        $yourname = $response[1];
    }
    return $yourname;
}
print nametest();

The function needs to return a value to be printed. I also noticed you have two ;; behind line 5.

share|improve this answer
    
and yes, the below answer is correct.. $response is not known by nametest(), you either need to pass it in with nametest($response) or declare it as global. –  Todd Painton Jul 20 '11 at 1:15

Because you are assigning $yourname and $compname in the first two lines:

$yourname = htmlspecialchars($_POST['name']);
$compname = htmlspecialchars($_POST['compName']);

UPDATE You can check if these are set in POST, and therefore not need to check them later:

$yourname = isset($_POST['name']) ? htmlspecialchars($_POST['name']) : "oops, no value";
$compname = isset($_POST['compName']) ? htmlspecialchars($_POST['compName']) : "oops, no value";

They will always be set, even if NULL or empty. So, your later calls to isset() will always be true. Instead, you may check if they are empty with the empty() function:

UPDATE Not necessary according to corrections in comments. Your isset() should work.

// Check with empty()
// but still won't work properly. keep reading below...
function nametest() {
if (!empty($yourname)){
    $yourname = $response[0];}
    else { 
    $yourname = $response[1];;
    }
}

However, there is another problem here of variable scope. The variables are not available inside the function unless you either pass them in as parameters or use the global keyword:

// $yourname is passed as a function argument.
function nametest($yourname, $response) {
  if (!empty($yourname)){
      $yourname = $response[0];}
  else { 
      $yourname = $response[1];;
    }
}

Getting there... Now your function assigns $yourname, but it doesn't return or print any value. Add a return statement, and then you can echo out the result:

function nametest($yourname, $response) {
  if (!empty($yourname)){
      $yourname = $response[0];}
  else { 
      $yourname = $response[1];;
    }

  // Add a return statement
  return $yourname;
}

// Now call the function, echo'ing its return value
echo nametest($yourname, $response);
share|improve this answer
1  
According to PHP.net docs isset() should check for NULL –  cspray Jul 20 '11 at 1:11
    
Also you lost parameter in the last line. –  zerkms Jul 20 '11 at 1:17
    
i thought that, although i set $yourname to equal the data that would be passed from the form on prev page, that thats what i was checking for as far as being empty or not. so although i do understand what you are saying about the $yourname still being set to equal the $_GET method, then i should check the $_GET itself? and then if it IS set, then asign its value to something else? –  somdow Jul 20 '11 at 1:33
    
@somdow you can check if the $_POST value isset() and that's how I would probably do it most of the time. See an addition up near the top of my post –  Michael Berkowski Jul 20 '11 at 1:39

Variable Scope is the biggest mistake here, your function can not 'see' the variables that you created outside of it, do this:

<?php
    .
    .
    .
function nametest($yourname, $response) { // This creates two new variables that
                                          // are visible only by this function
    if (!isset($yourname)){
        $yourname = $response[0];
    } else { 
        $yourname = $response[1]; // Get rid of the extra semicolon
    }

    return $yourname; // This $yourname is only visible by this function so you
                          // need to send it's value back to the calling code
}
?>


<?php  nametest($yourname, $response); ?> // This sends the values of the 
                                          // variables that you created at the
                                          // top of this script
share|improve this answer
    
hi there, and thanks. ok no matter which version of code i try i get the same result which is $response = array("please enter correct information","welcome" . ", " . $yourname); with this line, no matter which code block i try, when i hit the submit button on my form, with nothing entered in the name field, in all this code provided, i should get response [0], which is "enter correct info" but i dont, instead i get "welcome". then when i reload the page and enter in my name "somdow", i get "welcome somdow " isnt that wrong? and again, no matter which one i try, i get the same results. –  somdow Jul 20 '11 at 1:55
    
You can try changing !isset($yourname) to $yourname == '' , it is most likely being set when the variable is being passed even it is null, you can also try empty($yourname) –  Serj Sagan Jul 20 '11 at 2:45

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