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I have two PHP files a.php and b.php. I have some links in a.php like this:

echo "<ul>";    
 foreach($x->channel->item as $entry) {
 echo "<li><a href='NEED SOME CODE HERE TO OPEN b.php' title='$entry->title'>" . $entry->link . "</a></li>";
    }
echo "</ul>";

When the user clicks on that link, the second page b.php should open and ALSO b.php should know the contents of the variable $entry->link so that based on the$entry->link I can do some conditional checks like this:

in b.php, I want to do this check:

if($entry->link=="http://www.google.com") {
 //Some code here
}

How can I do this?

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Is there anything you have already tried? –  FAngel Aug 29 '12 at 15:23
    
I have not started it yet. I am thinking about the logic how can I do this. Need this solution for one of my project that I am going to start soon. I have not written any code for this yet. –  jeewan Aug 29 '12 at 15:25
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closed as not a real question by rdlowrey, j0k, Clyde Lobo, edorian, hakre Aug 30 '12 at 8:50

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

3 Answers

You could just link to

echo "<li><a href='b.php?link=".urlencode(entry->link)."' title='$entry->title'>" . $entry->link . "</a></li>";

And in b.php

if(isset($_GET['link']) && ($_GET['link']=="http://www.google.com")) {
    //Some code here
}
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This looks great, appreciate for your reply. Can the same logic be applied if I do not use <form> and without using $_GET['link'] in the b.php file. I mean just using <a> tag in a.php and using javascript:window.open() and open the second page b.php and used that variable in b.php. In short, without using <form>? –  jeewan Aug 29 '12 at 15:30
    
You don't have to use form to use this code, but the get is needed. Maybe if you keep $entry in session variable, you cout retrive the right link in b.php, but if session var change before you click (by opening a second page) maybe the data in b/php will be different –  Philippe Boissonneault Aug 29 '12 at 16:26
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What about a.php saving the data to a session then when b.php is called that data is already available?

alt method: Querystring or POST vars to from $entry->title?

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Yes, that would be the solution but here I am not using any <form> tag. I am just using the <a> tag and once user clicks on it, the file b.php will open, may be using javascript:window.open() or something like this. –  jeewan Aug 29 '12 at 15:28
    
That would be a way of doing it. jQuery has some very nice logic to handle passing form data page to page. –  Pheagey Aug 30 '12 at 15:59
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There are multiple ways to achieve what you are trying to do, here are two methods you could use:

1)Make the data persistent by using PHP session on the server side;

or

2)Saves the data locally using Web storage:

Here's an example using DOM Storage:
//Stores the data
window.sessionStorage.setItem("key", "my data");
//Retrieve it
window.sessionStorage.getItem("key");

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