use*_*387 0 javascript php codeigniter
这在我的codeigniter函数中不起作用我有id并且无法获得该id.请帮助我.这是我的观点,我试图通过该功能发送我的id.
<script type="text/javascript">
function makeajaxcall(id) {
//alert(id);
var r = confirm("Do you want to Delete");
if (r == true) {
window.location.href = "<?php echo site_url('controller_d/login/admin_link_delete_user?id='.id);?>";
} else {
x = "You pressed Cancel!";
alert(x);
}
}
</script>
改变这一行:
window.location.href = "<?php echo site_url('controller_d/login/admin_link_delete_user?id='.id);?>";
至:
window.location.href = "<?php echo site_url('controller_d/login/admin_link_delete_user');?>?id="+id;