Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a delivery service that only picks up Monday through Thursday. I only want to give the user the next available three days as an option for a scheduled pickup.

My code works, but I was wondering if there was a more "efficient" way to write what Im trying to achieve?

$numericDay=date('N');
        if ($numericDay==1) {
            echo '<option value="' . date('Ymd', strtotime('+1 days')) . '">' . date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+1 days')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('+2 days')) . '">' . date('l - F j, Y', strtotime('+2 days')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('+3 days')) . '">' . date('l - F j, Y', strtotime('+3 days')) . '</option>';
        }
        if ($numericDay==2) {
            echo '<option value="' . date('Ymd', strtotime('+1 days')) . '">' . date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+1 days')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('+2 days')) . '">' . date('l - F j, Y', strtotime('+2 days')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('next monday')) . '">' . date('l - F j, Y', strtotime('next monday')) . '</option>';
        }
        if ($numericDay==3) {           
            echo '<option value="' . date('Ymd', strtotime('+1 days')) . '">' . date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+1 days')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('+next monday')) . '">' . date('l - F j, Y', strtotime('next monday')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('next tuesday')) . '">' . date('l - F j, Y', strtotime('next tuesday')) . '</option>';
        }
        if ($numericDay>=4 and $numericDay<=7) {
            echo '<option value="' . date('Ymd', strtotime('next monday')) . '">' . date('l - F j, Y', strtotime('next monday')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('next tuesday')) . '">' . date('l - F j, Y', strtotime('next tuesday')) . '</option>';
            echo '<option value="' . date('Ymd', strtotime('next wednesday')) . '">' . date('l - F j, Y', strtotime('next wednesday')) . '</option>';
        }

Thanks in advance for any insight!!!

share|improve this question

closed as off topic by Juan Mendes, Marc B, Radu Murzea, Ben D, Hanlet Escaño Feb 22 '13 at 22:34

Questions on Stack Overflow are expected to relate to programming within the scope defined by the community. Consider editing the question or leaving comments for improvement if you believe the question can be reworded to fit within the scope. Read more about reopening questions here.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
What's not efficient? If you just want a code review, you should go to codereview.stackexchange.com SO is more for when you can't solve a problem –  Juan Mendes Feb 22 '13 at 20:56
5  
If nothing else, you could cut the number of strtotime() calls in HALF by simply caching the values in a variable before building your strings. –  Marc B Feb 22 '13 at 20:58
    
Here must posted problems not rewiews how Marc B said! –  Domuta Marcel Feb 22 '13 at 21:04
    
Also, a switch looks much better :) . –  Radu Murzea Feb 22 '13 at 21:26
    
@Juan Mendes Im still relatively new to stack overflow, I understand this question was more of a discussion question than asking to solve a problem. –  Adam Feb 22 '13 at 23:05

6 Answers 6

up vote 2 down vote accepted

Here is what you need ...

$dateTime = new DateTime();
$x = 0;
while ( $x < 3 ) {
    $dateTime->modify("+1 day");
    if ($dateTime->format("N") > 4)
        continue;
    printf("<option value=\"%s\">%s</option>\n", $dateTime->format("Ymd"), $dateTime->format("l - F j, Y"));
    $x ++;
}

Output

<option value="20130225">Monday - February 25, 2013</option>
<option value="20130226">Tuesday - February 26, 2013</option>
<option value="20130227">Wednesday - February 27, 2013</option>
share|improve this answer
    
Thanks, I's give this a try! –  Adam Feb 22 '13 at 21:12
    
Modified it to print out the option –  Baba Feb 22 '13 at 21:19
1  
It used for printing formatted strings ... Please see php.net/manual/en/function.sprintf.php and php.net/manual/en/function.printf.php –  Baba Feb 22 '13 at 21:24
1  
That doesn't work. At least not for me. If I run the above code, I get saturday, sunday and monday. It should be monday, tuesday and wednesday. OP only wants the next three days that are monday through thursday. –  Rickard Andersson Feb 22 '13 at 21:33
1  
Typo ... it should be $dateTime->format("N") > 4 not $dateTime->format("N") < 4 .. fixed –  Baba Feb 22 '13 at 21:37

Here's what I would do.

$offsets = array(
    1 => array(1, 2, 3),
    2 => array(1, 2, 6),
    3 => array(1, 5, 6),
    4 => array(4, 5, 6),
    5 => array(3, 4, 5),
    6 => array(2, 3, 4),
    7 => array(1, 2, 3)
);

$numericDay = date('N');
foreach ($offsets[$numericDay] as $offset)
{
    $dateFormat = $offset == 1 ? '\T\o\m\o\r\r\o\w - F j, Y' : 'l - F j, Y';
    echo '<option value="' . date('Ymd', strtotime('+' . $offset . ' days')) . '">' . date($dateFormat, strtotime('+' . $offset . ' days')) . '</option>';
}

Edit: Tidied it up a bit.

share|improve this answer
    
Best answer, better then mine –  Roy Feb 22 '13 at 21:22
    
@Rickard Thank you, this works really well! I did not think of using an array of arrays! –  Adam Feb 22 '13 at 21:43
    
@Rickard Andersson Are you getting the "Tomorrow" to echo? –  Adam Feb 22 '13 at 21:59
    
Yeah, it works for me. If the offset is 1, it uses the tomorrow date format. You have to fast-forward todays date to sunday in order to test it though. –  Rickard Andersson Feb 22 '13 at 22:38

Create a while loop:

$echoedDays = 0;
$dateIndex = 0
while ($echoedDays < 3) {

Start from tomorrow's date and check the day number. If it's Mon-Thu (1-4), echo the date and increase $echoedDays. Otherwise just increase $dateIndex and move to the next date.

share|improve this answer

This could also work:

 $numericDay=date('N');

    if($numericDay < 4)
        echo '<option value="' . date('Ymd', strtotime('+1 days')) . '">' . date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+1 days')) . '</option>';
    else
        echo '<option value="' . date('Ymd', strtotime('next monday')) . '">' . date('l - F j, Y', strtotime('next monday')) . '</option>';

    if($numericDay < 3)
        echo '<option value="' . date('Ymd', strtotime('+2 days')) . '">' . date('l - F j, Y', strtotime('+2 days')) . '</option>';
    else
        echo '<option value="' . date('Ymd', strtotime('next tuesday')) . '">' . date('l - F j, Y', strtotime('next tuesday')) . '</option>';

    if($numericDay < 2)
        echo '<option value="' . date('Ymd', strtotime('+3 days')) . '">' . date('l - F j, Y', strtotime('+3 days')) . '</option>';
    else
        echo '<option value="' . date('Ymd', strtotime('next wednesday')) . '">' . date('l - F j, Y', strtotime('next wednesday')) . '</option>';
share|improve this answer

Mod 4 is your friend...

$days = Array("Mon","Tue","Wed","Thu","Fri","Sat","Sun");

for($i=1;$i<=7;$i++){
  if($i > 4){ $n = 1; } else {
    $n = $i%4+1;
  }
  $o = ($n)%4+1;
  $p = ($o)%4+1;
  echo "It's ".$days[$i-1]." and the next three available days are... ".$days[$n-1].", ".$days[$o-1]." and ".$days[$p-1]."\n";
}

Output

It's Mon and the next three available days are... Tue, Wed and Thu
It's Tue and the next three available days are... Wed, Thu and Mon
It's Wed and the next three available days are... Thu, Mon and Tue
It's Thu and the next three available days are... Mon, Tue and Wed
It's Fri and the next three available days are... Mon, Tue and Wed
It's Sat and the next three available days are... Mon, Tue and Wed
It's Sun and the next three available days are... Mon, Tue and Wed
share|improve this answer
$store = array(
    1 => array(
        date('Ymd', strtotime('+1 days')),
        date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+1 days'))
    ),
    array(
        date('Ymd', strtotime('+2 days')),
        date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+2 days'))
    ),
    array(
        date('Ymd', strtotime('+3 days')),
        date('\T\o\m\o\r\r\o\w - F j, Y', strtotime('+3 days'))
    ),
    'm' => array(
        date('Ymd', strtotime('next monday')),
        date('l - F j, Y', strtotime('next monday'))
    ),
    't' => array(
        date('Ymd', strtotime('next tuesday')),
        date('l - F j, Y', strtotime('next tuesday'))
    ),
    'w' => array(
        date('Ymd', strtotime('next wednesday')),
        date('l - F j, Y', strtotime('next wednesday'))
    )
);

$numericDay=date('N');
if ($numericDay==1) {
    echo '<option value="' . $store[1][0] . '">' . $store[1][1] . '</option>';
    echo '<option value="' . $store[2][0] . '">' . $store[2][1] . '</option>';
    echo '<option value="' . $store[3][0] . '">' . $store[3][1] . '</option>';
}
elseif ($numericDay==2) {
    echo '<option value="' . $store[1][0] . '">' . $store[1][1] . '</option>';
    echo '<option value="' . $store[2][0] . '">' . $store[2][1] . '</option>';
    echo '<option value="' . $store['m'][0] . '">' . $store['m'][1] . '</option>';
}
elseif ($numericDay==3) {           
    echo '<option value="' . $store[1][0] . '">' . $store[1][1] . '</option>';
    echo '<option value="' . $store['m'][0] . '">' . $store['m'][1] . '</option>';
    echo '<option value="' . $store['t'][0] . '">' . $store['t'][1] . '</option>';
}
elseif ($numericDay>=4 and $numericDay<=7) {
    echo '<option value="' . $store[1][0] . '">' . $store[1][1] . '</option>';
    echo '<option value="' . $store['t'][0] . '">' . $store['t'][1] . '</option>';
    echo '<option value="' . $store['w'][0] . '">' . $store['w'][1] . '</option>';
}
share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.