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i having an error came out each time i echo this on my index.php

below is my switch code, as i'm using php dynamic site hence i use switch to change the data each time when different php is call.

<?php
function title_switch()
{
    $var = (isset($_GET['page']) && !empty($_GET['page'])) ? $_GET['page'] : 'home';
    switch ($var) {
        case 'home':
            $a['title']   = " &#187; Home";
            $a['meta_d']  = "This page is about my site!";
            $a['meta_k']  = "something, somethingelse";
            $a['slider1'] = "<script type=\"text/javascript\" src=\"./js/jquery.easing.1.3.js\"></script>\n";
            $a['slider2'] = "<script type=\"text/javascript\" src=\"./js/tms-0.3.js\"></script>\n";
            $a['slider3'] = "<script type=\"text/javascript\" src=\"./js/tms_presets.js\"></script>\n";
            $a['main']    = "<script type=\"text/javascript\" src=\"./js/script.js\"></script>\n";
            $a['pageid']  = "page1";
            $a['slider']  = "slide";
            break;
        case 'company':
            $a['title']  = " &#187; Company";
            $a['meta_d'] = "This page is about my site!";
            $a['meta_k'] = "something, somethingelse";
            $a['all']    = "<script type=\"text/javascript\" src=\"./js/all.js\"></script>\n";
            $a['pageid'] = "page2";
            $a['slider'] = "banner";
            break;
        default:
            $a['title']  = " &#187; HTTP 404 - Page Not Found";
            $a['meta_d'] = "";
            $a['meta_k'] = "";
            break;
    }
    return $a;
}
$details = title_switch();
?>  

this is my index.php on line 21

<?php echo $details['all']; ?>

if call home.php it will show below error

Notice: Undefined index: all in C:\wamp\www\site\index.php on line 21 Call Stack

Time Memory Function Location

1 0.0035 258968 {main}( ) ..\index.php:0

if i call company.php it will not show any error...

may I know where did i went wrong? kinda confuse here...

example: if i call www.example.com/company it didnt show error, but if i call www.example.com it show error.

i wanted this code

<?php echo $details['all']; ?>

to show only if www.example.com/company and it will not show if www.example.com is call.

the code inside:

<?php echo $details['all']; ?>

is

case 'company':
        $a['title']  = " &#187; Company";
        $a['all']    = "<script type=\"text/javascript\" src=\"./js/all.js\"></script>\n";

hope this can give a better clearer picture for everyone who can help me to solve the error. thank you.

share|improve this question

closed as too localized by cryptic ツ, SztupY, koopajah, Sudarshan, middaparka Feb 24 '13 at 13:37

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
what is it in line 115? – Aris Feb 24 '13 at 8:55
    
<?php echo $details['all']; ?> by the way, i wanted this code <?php echo $details['all']; ?> to trigger when only company.php is call, if home.php is call, then this code will not trigger... i use the switch but it trigger no matter in home.php or company.php so that's why when i call home.php it show the error... i really lost now where did i went wrong... – Jeff Feb 24 '13 at 9:01
    
then tell us what is home.php and what is company.php. and what do you mean the 'code to trigger'? the variable either is defined or not. – Aris Feb 24 '13 at 9:07
    
<?php echo $details['all']; ?> is to trigger this code $a['all'] = "<script type=\"text/javascript\" src=\"./js/all.js\"></script>\n"; if page is home.php then the javascript no need to trigger, i only need this javascript for company.php – Jeff Feb 24 '13 at 9:11
up vote 5 down vote accepted

$a['all'] is being set only when switch($var) is equal to 'company'. You need to set it on every case.

Inside your switch you can set $a['all'] to an empty value so PHP can at least find the index. A short example:

switch ($var) {
    case 'home':
        $a['all'] = '';
    case 'company':
        $a['all'] = '<script type=\"text/javascript\" src=\"./js/all.js\"></script>\n';
    default:
        $a['all'] = '';
}
share|improve this answer
    
means? i still abit blur here sorry :( – Jeff Feb 24 '13 at 5:31
    
PHP outputs a notice when you try to access a key that does not exist. What he's saying is that your only setting $a['all'] in one of your cases, so if another case is selected, $a['all'] is undefined. – Cluster Feb 24 '13 at 6:35
    
okie, i think i might get what he meant, but i don't want $a['all'] to trigger if home.php is call out, beside this switch i can't think anything else i could code. am still novice in php, any guidance is much appreciated. – Jeff Feb 24 '13 at 8:08
    
@Yvonnesecret You don't have to trigger it. I modified my answer to show you. – Chris Bornhoft Feb 24 '13 at 13:01
    
Baez, thanks!! it was so easy and i couldn't figure it out... such a shame on me.. once again thanks for your help! you saved my day from struggling in front of pc again and again... – Jeff Feb 24 '13 at 13:11

it's not clear what you are trying to do. But define $a['all'] in the function even if it's empty. So, it will be set and not give a warning. Add line $a['all'] = ''; in default:

share|improve this answer
    
this didn't help either... – Jeff Feb 24 '13 at 9:28
    
First make sure that case 'company': is entered by an echo 'inside' there. If it does, the problem is probably in javascript then and you need to bebug that next. – Aris Feb 24 '13 at 9:45
    
the case 'company' is in there, case 'company': $a['title'] = " &#187; Company"; $a['meta_d'] = "This page is about my site!"; $a['meta_k'] = "something, somethingelse"; $a['all'] = "<script type=\"text/javascript\" src=\"./js/all.js\"></script>\n"; $a['pageid'] = "page2"; $a['slider'] = "banner"; break; i wanted case company to trigger the script else if home the script should be appear – Jeff Feb 24 '13 at 9:52
    
then problem is in your javascript. use a debugger, like firebug of firefox to see what happens inside javascript, as it's impossible to figure out if it's entered and where it fails. – Aris Feb 24 '13 at 9:56
    
the javascript is correct, if i didnt use php and use <script> it show no error. however i revised again my question, hope the question give u a clearer picture where it go wrong – Jeff Feb 24 '13 at 10:35

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