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I have an error in this code. Please help me solve it.

function holiday($today) {    

    $year = substr($today, 0, 4);     

    switch($today) {

      case $year.'-01-01':
          $holiday = 'New Year';
          break;

      case $today:
          $today11 = new DateTime($today);
          $R= $today11->format('l') . PHP_EOL;
          $Sunday='0';

          if($R == 0) {
              $holiday = 'Sunday';
          } else {
              $holiday = 'Normal Day';  
          }
      }

      return $holiday;
}

echo $tday= holiday($today); 
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closed as not constructive by Mihai Iorga, Jashwant, A.K, David, Graviton Sep 6 '12 at 10:03

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance.If this question can be reworded to fit the rules in the help center, please edit the question.

3  
-1 because "please fix this code" is not very helpful either to future visitors or to people answering. Include a better problem description: What happens? What doesn't happen? What errors do you get? What are you trying to do? –  Emil Vikström Sep 6 '12 at 7:05
1  
Do-my-homework-but-I-wont-pay-you type question. –  Jashwant Sep 6 '12 at 7:12
    
@emil Vikstrom : i am trying for get today is Sunday ya normal day. –  sumit Sep 6 '12 at 7:12
    
@jashwant:i don't know what are you saying. –  sumit Sep 6 '12 at 8:01
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3 Answers 3

up vote 0 down vote accepted

Try it:-

function holyday($today)
{
    $start_date = strtotime($today);


    if(date('z',$start_date) ==0)
    {
         return 'New Year';

    }else{

        if(date('l',$start_date) =='Sunday')
        {
             return 'Sunday';

        }else{

            return "Noraml Day";
        }
    }
}

echo holyday('2012-09-06');

Output = Noraml Day

echo holyday('2013-01-01');

Output = New year

share|improve this answer
    
not working for me –  sumit Sep 6 '12 at 9:39
    
what is error? Please explain. –  Abid Hussain Sep 6 '12 at 9:59
    
no response return .how to get output for your code .my post code return output in this variable. echo $tday= holiday($today); –  sumit Sep 6 '12 at 10:20
    
how to include special date in your code for example :2013-02-05 is bank holyday –  sumit Sep 6 '12 at 10:31
    
You can include $spdate = date("Y-m-d"): echo holyday($spdate); and try it. –  Abid Hussain Sep 6 '12 at 10:35
show 3 more comments

Here is a working implementation of your holiday() function:

function holiday($today) {    

$date = strtotime($today);     

//check if Sunday
if (date('l', $date) == 'Sunday') {
    return 'Sunday';
}

//check if New Year
if ((date('j', $date) == 1) && (date('n', $date) == 1)) {
    return 'New Year';
}

//else, just return Normal Day
return 'Normal Day';

}

//$today is in YYY/MM/DD format
echo $tday = holiday($today);

Also, PHP's date reference can come in handy in this case: http://php.net/manual/en/function.date.php

share|improve this answer
    
not working for me –  sumit Sep 6 '12 at 9:10
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Not sure why you're using switch for this, please read up on how to use switch. The function below will work:

function holiday($today) {
    // z returns the number of the day in the year, 0 being first of January
    if(date("z", $today) == 0) {
         return "New Year";
    }

    // w returns the number of the day in the week 0-6 where 0 is Sunday
    if(date("w", $today) == 0) {
         return "Sunday";
    }

    return "Normal Day";
}

$today = date();
echo holiday($today);
share|improve this answer
    
not working for me –  sumit Sep 6 '12 at 9:10
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