php - PDO 多个命名占位符不检索数据

Question

如果准备好的语句只有一个命名占位符，那么到目前为止我编写的代码可以正常工作，但是如果查询有多个条件，它不会从数据库返回任何结果。

例如：

$query = array();
$query['columns'] = array('*');
$query['tables'] = array('esl_comments');
$query['where'] = array(
    'esl_comments.commentVisible' => array('=', 'Y')
);

工作正常。但如果我尝试：

$query = array();
$query['columns'] = array('*');
$query['tables'] = array('esl_comments');
$query['where'] = array(
    'esl_comments.commentVisible' => array('=', 'Y'),
    'esl_comments.commentID' => array('=', '1'),
);

（注意附加的 commentID 参数）尽管 mySQL 数据库中有满足条件的数据，但它无法返回任何内容。

我写的 PDO 代码是：

$sql ='SELECT ';
                foreach($query['columns'] as $column){ //What columnns do we want to fetch?
                    $sql.=$column . ", ";
                }
                $sql = rtrim($sql, " ,");
                $sql .=' FROM '; //Which tables will we be accessing?
                foreach($query['tables'] as $tables){
                    $sql.=$tables . ", ";
                }
                $sql = rtrim($sql, " ,"); //Get rid of the last comma
                $sql .=' WHERE ';

                if(array_key_exists('where', $query)) //check if a where clause was provided
                {
                    $fieldnames = array_keys($query['where']);
                    $count = 0;
                    $size = sizeof($fieldnames);
                    $bindings = array();
                    foreach($query['where'] as $where){

                        $cleanPlaceholder = str_replace("_", "", $fieldnames[$count]);
                        $cleanPlaceholder = str_replace(".", "", $cleanPlaceholder);
                        $sql.=$fieldnames[$count].$where[0].":".$cleanPlaceholder." AND ";
                        $bindings[$cleanPlaceholder]=$where[1];
                        $count++;
                    }
                    $sql = substr($sql, 0, -5);  //Remove the last AND
                }
                else{ //no where clause so set it to an always true check
                    $sql.='1=1';
                    $bindings=array('1'=>'1'); //Provide default bindings for the statement
                }

                $sql .= ';'; //Add the semi-colon to note the end of the query
                echo $sql . "<br/><br/>";
            //  exit();
                $stmt = $this->_connection->prepare($sql);

                foreach($bindings as $placeholder=>$bound){
                    echo $placeholder . " - " . $bound."<br/>";
                    $stmt->bindParam($placeholder, $bound);
                }

                $result = $stmt->execute();
                echo $stmt->rowCount() . " records<br/>";

                $results = $stmt->fetchAll(PDO::FETCH_ASSOC);

我正在动态构建查询，因此我通过去除句点和下划线来清理占位符 - 因此使用“cleanPlaceholder”变量。

生成的查询如下所示：

SELECT * FROM esl_comments WHERE esl_comments.commentVisible=:eslcommentscommentVisible AND esl_comments.commentID=:eslcommentscommentID;

被绑定的参数如下所示：

eslcommentscommentVisible - Y
eslcommentscommentID - 1

Answer 1

bindParam 需要参考

该问题是由您在 foreach 循环中绑定参数的方式引起的。

foreach($bindings as $placeholder=>$bound){
    echo $placeholder . " - " . $bound."<br/>";
    $stmt->bindParam($placeholder, $bound);
}

bindParam需要参考。它将变量而不是值绑定到语句。由于 foreach 循环中的变量在每次迭代开始时都会重置，因此只有最后一个引用$bound保持不变，并且您最终将所有占位符绑定到它。

这就是为什么您的代码在$query['where']仅包含一个条目时有效，但在包含多个条目时失败的原因。

您可以通过 2 种方式解决问题：

通过引用传递

foreach($bindings as $placeholder => &$bound) {  //pass $bound as a reference (&)
    $stmt->bindParam($placeholder, $bound);     // bind the variable to the statement
}

按值传递

使用bindValue代替bindParam：

foreach($bindings as $placeholder => $bound) {  
    $stmt->bindValue($placeholder, $bound);     // bind the value to the statement
}