我从MySQL数据库中提取了两条信息,年(2009年,2010年,等)和周(1-52)。我需要将其转换为日期开始和日期结束..
例如:
Year=2010, Week=1 would be (Friday, Jan 1st, 2010) - (Sunday, Jan 3rd, 2010)
Year=2010, Week=33 would be (Monday, Aug 16th, 2010) - (Sunday, Aug 22nd, 2010)
Year=2010, Week=34 would be (Monday, Aug 23rd, 2010) - (Sunday, Aug 29th, 2010)
我将如何在php中执行此操作?
答案 0 :(得分:35)
$year = "2010"; // Year 2010
$week = "01"; // Week 1
$date1 = date( "l, M jS, Y", strtotime($year."W".$week."1") ); // First day of week
$date2 = date( "l, M jS, Y", strtotime($year."W".$week."7") ); // Last day of week
echo $date1 . " - " . $date2;
如果周数低于10,则在数字前附加0。 1将无效,应为01。
答案 1 :(得分:10)
由于这个问题和接受的答案已经发布,DateTime课程使这更容易做到: -
function daysInWeek($weekNum)
{
$result = array();
$datetime = new DateTime();
$datetime->setISODate((int)$datetime->format('o'), $weekNum, 1);
$interval = new DateInterval('P1D');
$week = new DatePeriod($datetime, $interval, 6);
foreach($week as $day){
$result[] = $day->format('d/m/Y');
}
return $result;
}
var_dump(daysInWeek(24));
输出: -
array (size=7)
0 => string '10/06/2013' (length=10)
1 => string '11/06/2013' (length=10)
2 => string '12/06/2013' (length=10)
3 => string '13/06/2013' (length=10)
4 => string '14/06/2013' (length=10)
5 => string '15/06/2013' (length=10)
6 => string '16/06/2013' (length=10)
这具有照顾闰年等的额外优势。
答案 2 :(得分:2)
function getStartAndEndDate($week, $year)
{
//setting the default time zone
date_default_timezone_set('America/New_York');
//getting the
//$firstWeek = date('W',strtotime("January 1 $year", date(time())));
//echo "Year : ".$year."<br/>"."Week : ".$week."<br/>";
$firstWeekThursDay = date('W',strtotime("January $year first thursday",date(time())));
if($firstWeekThursDay == "01")
{
$time = strtotime("January $year first thursday",date(time()));
//echo $time."<br/>";
//echo date('Y-m-d H:i:s',$time)."<br/>";
$time = ($time-(4*24*3600))+(((7*$week)-6)*24*3600);
//echo $time."<br/>";
//echo date('Y-m-d H:i:s',$time)."<br/>";
$return[0] = date('Y-m-d', $time);
$time += 6*24*3600;
$return[1] = date('Y-m-d', $time);
//print_r($return);
}
else
{
$time = strtotime("January 1 $year", time());
//echo "<br/>".$time."<br/>";
//echo date('Y-m-d H:i:s',$time)."<br/>";
$time = ($time-(4*24*3600))+(((7*$week)-6)*24*3600);
//echo $time."<br/>";
//echo date('Y-m-d H:i:s',$time)."<br/>";
$return[0] = date('Y-m-d', $time);
$time += 6*24*3600;
$return[1] = date('Y-m-d', $time);
//print_r($return);
//echo "<br/>End of Hi<br/>";
}
return $return;
}
答案 3 :(得分:0)
试试这个:
$year = 2000;
$week = 1;
$start = date("l, M jS, Y", strtotime("01 Jan ".$year." 00:00:00 GMT + ".$week." weeks"));
$end = date("l, M jS, Y", strtotime($start." + 1 week"));
echo $start." to ".$end;
您需要设置$ year和$ week。然后它将按指定打印间隔。
例如,输出原样是:
Friday, Jan 7th, 2000 to Friday, Jan 14th, 2000
请注意,周数的编号为0-51(易于修复)。
这有点难看,但它确实有效。希望有所帮助!