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this may be impossible. But I was wondering if its possible to output the content of a define using the value of a variable.

Like this:

define("SEO_HOME", "Home name");
$var="SEO_HOME";
echo $var

This will print off course "SEO_HOME". How can I make it print "Home name" (using the variable $var)?

Edit: Corrected define.

Edit: My all problem his, the site I'll edit use defines to identify all pages, eg:

define("CONTACT_PAGE","Please contact us");
define("INFO_PAGE","Some information about us");

And I'll need to add custom html title on those pages, that owner will be able to edit. So I was thinking I would create a DB table with (id, page, title) where page would have CONTACT_PAGE, INFO_PAGE, etc. and title would be the title itself.

Now to make an edit page for site owner, I'll have this:

//This would be an while mysql_fetch_assoc and not a multidimentional array, but for example this will work
$titleArray=array(array("CONTACT_PAGE", "my title for contact page"),array("INFO_PAGE", "my title for info page"));
?>
<tr>
    <td>Set title for: <?php echo $titleArray[0][0];?></td> 
    <td><input type="text" name="name" value="<?php echo $titleArray[0][1];?>" /></td>
</tr>
<tr>
    <td>Set title for: <?php echo $titleArray[1][0];?></td> 
    <td><input type="text" name="name" value="<?php echo $titleArray[1][1];?>" /></td>
</tr>

This shows on first td -> Set title for: CONTACT_PAGE

And I wanted it to show -> Set title for: Please contact us

Hope this clarifies my doubt.

Thanks

share|improve this question
    
remove ". $var="seo_home"; should be $var=seo_home; –  RezaSh Dec 4 '12 at 18:32
    
imagine value of $var comes from DB, so its a String :) I tried playing around with eval in last 5 minutes, but no luck –  tcardoso Dec 4 '12 at 18:39
    
finally you mean you want to put $var in seo_home constant or seo_home into $var ? –  RezaSh Dec 4 '12 at 20:02
    
I want to have echo printing:"Home name", the value in define. –  tcardoso Dec 4 '12 at 23:58
    
I think i got what you want, see my answer. –  RezaSh Dec 5 '12 at 12:33

4 Answers 4

up vote 0 down vote accepted

you can use constant function:

 mixed constant ( string $name )

Return the value of the constant indicated by name.

constant() is useful if you need to retrieve the value of a constant, but do not know its name. I.e. it is stored in a variable or returned by a function.

This function works also with class constants.

<?php
define("SEO_HOME", "Home name");
$var="SEO_HOME";
echo constant($var);
share|improve this answer
    
Thats exactly what I wanted :) Thanks a lot –  tcardoso Dec 6 '12 at 18:19
define(seo_home, "Home name");
$var=seo_home;
echo $var;

When you define a constant, to use it you just write its name.

BTW, usually giving them highercase and not lowercase.

share|improve this answer

The error with your code is that you swapped the quotes ..

 define(seo_home, "Home name")
        ^------------- Quotes Missing 

 $var="seo_home";
      ^---------------  There should be no quotes 

And also lean to create more readable code by using Upper Case for your constant because they are case sensitive except you enable the case_insensitive option .. See More Details

Example :

define("SEO_HOME", "Home name");
$var = SEO_HOME;
echo $var;
share|improve this answer

if you do

$var=seo_home;

when you'll do echo $var; will show it, but... you can do echo seo_home; and it will show, you don't need a variable.

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