【发布时间】:2015-08-29 19:08:35
【问题描述】:
这就是我所拥有的:
if($_POST['submit']) {
$newAward = new AwardCenter($mysqli);
$arrColumns = array("name", "description", "imageurl", "imagewidth", "imageheight", "autodays", "autorecruits", "category", "subcategory", "ghosts", "advancedwarfare", "blackops3");
$arrValues = array($_POST['newawardname1'], $_POST['description1'], $_POST['imageurl1'], $_POST['imagewidth1'], $_POST['imageheight1'], $_POST['autodays1'], $_POST['autorecruits1'], $_POST['category1'], $_POST['subcategory1'], $_POST['ghosts1'], $_POST['advancedwarfare1'], $_POST['blackops31'],);
if($newAward->addNew($arrColumns, $arrValues)) {
$newAwardInfo = $newAward->get_info_filtered();
$result = $mysqli->query("ALTER TABLE ".$dbprefix."clanawards_members ADD '".$newAwardInfo['name']."' INT( 11 ) NOT NULL DEFAULT '0'");
echo "
<div style='display: none' id='successBox'>
<p align='center'>
Successfully Added New Award: <b>".$newAwardInfo['name']."</b>!
</p>
</div>
<script type='text/javascript'>
popupDialog('Award Center: Location', '".$MAIN_ROOT."members/console.php?cID=".$cID."', 'successBox');
</script>
";
}
}
问题是alter table 根本没有执行。 添加新命令有效
【问题讨论】:
-
前缀变量前可能需要一个空格
-
前缀变量?哪一个?
-
正在寻找 Java,找到了 PHP。 |-)
-
"ALTER TABLE ".$dbprefix." 家族 ...
-
同样的结果。什么都没有
标签: php mysqli alter-table