sqlsrv 自己弄的简单类为什么有问题,
class DB_sqlsrv
{
var $query;
var $result;
function DB_sqlsrv($text)
{
$serverName = "192.168.0.1";
$connectionInfo = array(
"UID"=>"sa",
"PWD"=>"sa",
"Database"=>"ttt");
$conn = sqlsrv_connect( $serverName, $connectionInfo);
$this->query=sqlsrv_query( $conn, $text);
}
function Record()
{
$this->result=sqlsrv_fetch_object($this->query);
return ($this->result)?($this->result):false;
}
}
$sql=new DB_sqlsrv("select * from username");
$record=$sql->Record();
?>
我看来看去这个类是没有问题的,为什么执行一直是这个样子
PHP Parse error: syntax error, unexpected T_VARIABLE in E:\web\test\test\test.php on line 21
不知道哪里的问题,如果把Record()写在sqlsrv()里面可以执行的。谢谢
回复讨论(解决方案)
哪行报错也不标示一下吗,有高亮代码功能为什么不用。
21 行在哪里?
21行在哪里?
$record=$sql->Record(); 这行出错。
楼上的大侠都是牛人,小弟虽然对类不精通,但是这个简单的类,总觉得代码是没有问题的,难道是升级到php 5.3X 以后的问题吗/
class DB_sqlsrv{ var $query;var $result;function DB_sqlsrv($text){$serverName = "192.168.0.1";$connectionInfo = array("UID"=>"sa","PWD"=>"sa","Database"=>"ttt");$conn = sqlsrv_connect( $serverName, $connectionInfo);$this->query=sqlsrv_query( $conn, $text);}function Record(){$this->result=sqlsrv_fetch_object($this->query);return ($this->result)?($this->result):false;}}$sql=new DB_sqlsrv("select * from username");$record=$sql->Record(); 如果是 $record=$sql->Record(); 处报错的话
那么该行是你 #6 代码的 33 行、主贴代码的 35 行
显然是你错误信息中的 line 21
而错误信息 PHP Parse error: syntax error, unexpected T_VARIABLE in E:\web\test\test\test.php on line 21
是说在 E:\web\test\test\test.php 的第 21 行处,意外的遇到了变量描述
而你的类定义代码,经测试并没有语法错误
我的不对,我弄错氏码了。我结帖,谢谢版主,我重开一下,谢谢
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