year函数 问题,在线给分
如$year=过的年数,如5
$staff_join=开始的年月日 如2008-05-02
我现要 把开始的年月日加上年数,如 2008-05-02+5=2013-05-02 用什么表达式呀,
要可运行的代码,谢谢
小弟这样 ($Begin=(date("Y",$staff_join)+$year) 出错, 输出1970)
------解决方案--------------------
- PHP code
<?php $year = 5;
$staff_join ="20010-05-02";
$a = strtotime("+".$year." Year")-time();
$staff_join = strtotime($staff_join)+$a;
echo date('Y-m-d',$staff_join);
?>
------解决方案--------------------
这里赋值写错了
$staff_join ="20010-05-02";
改成$staff_join ="2010-05-02";
------解决方案--------------------
- PHP code
$year = 5;
$staff_join = '2008-05-02';
$arrdate= explode('-',$staff_join);
$arrdate[0] += $year;
$staff_out = implode('-',$arrdate);
echo $staff_out; //2013-05-02
echo "
";
echo $arrdate[0]; //2013
?>
------解决方案--------------------
<?php
$year = 5;
$staff_join='2008-05-02';
$join_date = mktime(0, 0, 0,
substr($staff_join, 5, 2), substr($staff_join, -2, 2), substr($staff_join, 0, 4));
echo date('Y-m-d', $join_date), "\n";
$join_date_5_years_later =
strtotime("+$year Year", $join_date );
echo date('Y-m-d', $join_date_5_years_later);
?>
------解决方案--------------------
- PHP code
<?php $value = 5;
$year = date('Y');
$year += $value;
echo $year.date('-m-d');
------解决方案--------------------
$year = 5;
$staff_join = '2008-05-02';
$Begin = date("Y-m-d", strtotime("+$year year $staff_join));
------解决方案--------------------
给楼上老大改下
<?php
$year = 5;
$staff_join = '2008-05-02';
$Begin = date("Y-m-d", strtotime("+$year year $staff_join"));
echo $Begin;
?>
------解决方案--------------------
<?php
$year = 5;
$staff_join = '2008-05-02';
$Begin = date("Y-m-d", strtotime("+$year year,$staff_join"));
echo $Begin;
?>
------解决方案--------------------
看来已经解决了
------解决方案--------------------
strtotime
------解决方案--------------------
老兄去研究一下strtotime函数,手册上有详细说明。