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I need to link to an external site in my drop down menu that hosts a pdf that changes file name every Friday. I had previously asked this question but I am a beginner to php so I am having a tough time implementing it. Any help would be greatly appreciated.

Ex.

www.extranet.frostyacres.com/portal_resources/1/Market Report 05-24-13.pdf
www.extranet.frostyacres.com/portal_resources/1/Market Report 05-31-13.pdf
www.extranet.frostyacres.com/portal_resources/1/Market Report 06-07-13.pdf
www.extranet.frostyacres.com/portal_resources/1/Market Report 06-14-13.pdf

I have tried to use this in a drop down menu in an html file, not sure if thats possible.

$startingDate = strtotime('2013-06-07');
echo '<a href="https://www.extranet.frostyacres.com/portal_resources/1/Market Report ' . date('m-d-y', $startingDate) . '.pdf">Market Reports</a>';

?

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What have you tried? On what specific part are you stuck? Where is the relevant problem code? –  PeeHaa Jun 15 '13 at 15:30
    
I have added this php code between the <li> tags of my menu in my index.html file. Do I need to refer to a seperate php file or can I just add the code to the html file? –  JSki Jun 15 '13 at 15:39
    
And what is the problem with the above code? Doesn't it work? What does it output instead? –  PeeHaa Jun 15 '13 at 15:40
    
It only links to the start date 06-07-13 –  JSki Jun 15 '13 at 15:43
    
you want links for all fridays since a given start date? –  Sharky Jun 15 '13 at 15:44

2 Answers 2

up vote 0 down vote accepted
<?php

    // all fridays from startingdate till NOW
    $display_only_the_most_recent_friday = false; // all fridays or most recent only
    $startingDate = strtotime('2013-01-01'); // lets test from start of 2013

    $start = time(); // now
    $end = $startingDate; // our loop will $start from now and scan back till the $end

    // we will check every day from $start to $end
    // in every loop we are going one day back -=(60 * 60 * 24)
    for($checkdate=$start;$checkdate>=$end; $checkdate -=(60 * 60 * 24))
    {
        if ( date('N', $checkdate) == "5" ) // and if this day is the fifth day we echo
        {
            echo '<a href="https://www.extranet.frostyacres.com/portal_resources/1/Market Report '.date('m-d-y', $checkdate).'.pdf">Market Reports</a>';
            if($display_only_the_most_recent_friday)
                break;
        }
    }

?>

Its working http://3v4l.org/N3cQW

(it shows newest first)

share|improve this answer
    
Thank you Sharky, I have it in a drop down menu and when I put the php in the menu it has a link for every Friday. How do I have only one link with the pdf from the most recent Friday? –  JSki Jun 15 '13 at 15:59
    
echo Date('m-d-y', strtotime("Last Friday")); –  edelwater Jun 15 '13 at 16:00
    
@user2276514 if you really want to use my code and display only the recent friday, put a break; right after the echo so the for loop will stop as soon as the first echo occurs. or see the updated answer. i added a variable so you can control it. –  Sharky Jun 15 '13 at 16:02
    
@user2276514 see updated answer. you just need to set true; or false; on that first variable. –  Sharky Jun 15 '13 at 16:09
    
@Sharky thanks a lot you really helped me out appreciate it! –  JSki Jun 15 '13 at 16:12

You could use:

echo Date('m-d-y', strtotime("Last Friday"));

To display the last friday and then add the amount of times (-7) for the amount of fridays you want to show like so:

function display_last_fridays($n) {
    for ($i=0;$i<$n;$i++) {
        echo Date('m-d-y', strtotime($i*-7 . " days Last Friday")) . "<br/>";
    }
}
display_last_fridays(5);
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