获得给定月份的工作日
https://stackoverflow.com/questions/8396507
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我想计算一个月和年份中的工作日数量。工作日意味着星期一至星期五。我该怎么做 ?
解决方案
一些基本代码:
$month = 12;
$weekdays = array();
$d = 1;
do {
$mk = mktime(0, 0, 0, $month, $d, date("Y"));
@$weekdays[date("w", $mk)]++;
$d++;
} while (date("m", $mk) == $month);
print_r($weekdays);
去除那个 @ 如果您的PHP错误警告未显示通知。
其他提示
您不需要在这个月的每天数量计数。无论如何,您已经知道头28天都包含20个工作日。您要做的就是确定最近几天。将起始值更改为29。然后将20个工作日添加到您的退货价值中。
function get_weekdays($m,$y) {
$lastday = date("t",mktime(0,0,0,$m,1,$y));
$weekdays=0;
for($d=29;$d<=$lastday;$d++) {
$wd = date("w",mktime(0,0,0,$m,$d,$y));
if($wd > 0 && $wd < 6) $weekdays++;
}
return $weekdays+20;
}
尝试这个
function getWeekdays($m, $y = NULL){
$arrDtext = array('Mon', 'Tue', 'Wed', 'Thu', 'Fri');
if(is_null($y) || (!is_null($y) && $y == ''))
$y = date('Y');
$d = 1;
$timestamp = mktime(0,0,0,$m,$d,$y);
$lastDate = date('t', $timestamp);
$workingDays = 0;
for($i=$d; $i<=$lastDate; $i++){
if(in_array(date('D', mktime(0,0,0,$m,$i,$y)), $arrDtext)){
$workingDays++;
}
}
return $workingDays;
}
这是我可以提出的最简单的代码。您确实需要创建一个数组或数据库表来保留假期才能获得真实的“工作日”计数,但这不是问的,所以您走了,希望这对某人有帮助。
function get_weekdays($m,$y) {
$lastday = date("t",mktime(0,0,0,$m,1,$y));
$weekdays=0;
for($d=1;$d<=$lastday;$d++) {
$wd = date("w",mktime(0,0,0,$m,$d,$y));
if($wd > 0 && $wd < 6) $weekdays++;
}
return $weekdays;
}
dateObject方法:
function getWorkingDays(DateTime $date) {
$month = clone $date;
$month->modify('last day of this month');
$workingDays = 0;
for ($i = $month->format('t'); $i > 28; --$i) {
if ($month->format('N') < 6) {
++$workingDays;
}
$month->modify('-1 day');
}
return 20 + $workingDays;
}
从任何日期开始计算一个月的工作日:
public function getworkd($mday)
{
$dn = new DateTime($mday);
$dfrom = $dn->format('Y-m-01');
$dtill = $dn->format('Y-m-t');
$df = new DateTime($dfrom);
$dt = new DateTime($dtill);
$wdays = 0;
while($df<=$dt)
{
$dof= $df->format('D') ;
if( $dof == 'Sun' || $dof == 'Sat' ) ; else $wdays++;
$df->add(new DateInterval('P1D'));
}
return $wdays;
}
找到给定月份的最后一天和工作日
然后做一个简单的循环,例如: -
$dates = explode(',', date('t,N', strtotime('2013-11-01')));
$day = $dates[1];
$tot = $dates[0];
$cnt = 0;
while ($tot>1)
{
if ($day < 6)
{
$cnt++;
}
if ($day == 1)
{
$day = 7;
}
else
{
$day--;
}
$tot--;
}
$ cnt =给定月的工作日总计(星期一至周五)
我想出了一个非环函数。性能更好。看起来似乎很混乱,但它只需要在第一天的工作日和一个月的日子天问PHP:其余的都是基于逻辑的算术操作。
function countWorkDays($year, $month)
{
$workingWeekdays = 5;
$firstDayTimestamp = mktime(0, 0, 0, $month, 1, $year);
$firstDayWeekDay = (int)date("N", $firstDayTimestamp); //1: monday, 7: saturday
$upToDay = (int)date("t", $firstDayTimestamp);
$firstMonday = 1 === $firstDayWeekDay ? 1 : 9 - $firstDayWeekDay;
$wholeWeeks = $firstMonday < $upToDay ? (int)floor(($upToDay - $firstMonday + 1) / 7) : 0;
$extraDays = ($upToDay - $firstMonday + 1) % 7;
$initialWorkdays = $firstMonday > 1 && $firstDayWeekDay <= $workingWeekdays ? $workingWeekdays - $firstDayWeekDay + 1 : 0;
$workdaysInWholeWeeks = $wholeWeeks * $workingWeekdays;
$extraWorkdays = $extraDays <= $workingWeekdays ? $extraDays : $workingWeekdays;
return $initialWorkdays + $workdaysInWholeWeeks + $extraWorkdays;
}
这些功能有效 没有循环.
功能可以计算工作日的数量:
- 一个月第一个星期一的日营
- 每月的天数
// main functions
// weekdays in month of year
function calculateNumberOfWeekDaysAtDate($month, $year)
{
// I'm sorry, I don't know the right format for the $month and $year, I hope this is right.
// PLEASE CORRECT IF WRONG
$firstMondayInCurrentMonth = (int) date("j", strtotime("first monday of 01-$month-$year")); //get first monday in month for calculations
$numberOfDaysOfCurrentMonth = (int) date("t", strtotime("01-$month-$year")); // number of days in month
return calculateNumberOfWeekDaysFromFirstMondayAndNumberOfMonthDays($firstMondayInCurrentMonth, $numberOfDaysOfCurrentMonth);
}
// week days in current month
function calculateNumberOfWeekDaysInCurrentMonth()
{
$firstMondayInCurrentMonth = (int) date("j", strtotime("first monday of this month")); //get first monday in month for calculations
$numberOfDaysOfCurrentMonth = (int) date("t"); // number of days in this month
return calculateNumberOfWeekDaysFromFirstMondayAndNumberOfMonthDays($firstMondayInCurrentMonth, $numberOfDaysOfCurrentMonth);
}
// helper functions
function calculateNumberOfWeekDaysFromFirstMondayAndNumberOfMonthDays($firstMondayInCurrentMonth, $numberOfDaysOfCurrentMonth)
{
return $numberOfWeekDays = (($start = ($firstMondayInCurrentMonth - 3)) < 0 ? 0 : $start) + floor(($numberOfDaysOfCurrentMonth - ($firstMondayInCurrentMonth - 1)) / 7) * 5 + (($rest = (($numberOfDaysOfCurrentMonth - ($firstMondayInCurrentMonth - 1)) % 7)) <= 5 ? $rest : 5);
}
function workingDays($m,$y) {
$days = cal_days_in_month(CAL_GREGORIAN, $m, $y);
$workig_days = 0;
$days_rest = array(5,6); //friday,saturday
for ( $d=1 ; $d < $days+1 ; $d++ ) {
if ( !in_array(date("w",strtotime("{$d}-{$m}-{$y}")),$days_rest) ) {
$workig_days++;
}
}
return $workig_days;
}
这将起作用
// oct. 2013
$month = 10;
// loop through month days
for ($i = 1; $i <= 31; $i++) {
// given month timestamp
$timestamp = mktime(0, 0, 0, $month, $i, 2012);
// to be sure we have not gone to the next month
if (date("n", $timestamp) == $month) {
// current day in the loop
$day = date("N", $timestamp);
// if this is between 1 to 5, weekdays, 1 = Monday, 5 = Friday
if ($day == 1 OR $day <= 5) {
// write it down now
$days[$day][] = date("j", $timestamp);
}
}
}
// to see if it works :)
print_r($days);
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