2

下面的代码允许我将 SQL 语句传递给一个类并调用它的方法来显示一个漂亮的结果表,包括列名。

但是,如果没有结果,我仍然希望显示列名。

不幸的是,getColumnMeta它没有像我发现的其他示例那样返回任何数据。

有谁知道如何让 getColumnMeta() 在这个例子中工作,或者当查询返回零行时我可以从 SQL 语句中获取字段名称的另一种方式?

<!DOCTYPE html>
<html>
    <head>
        <meta http-equiv="Content-Type" content="text/html; charset=utf-8">
        <style type="text/css">
            table thead tr td {
                background-color: #ddd;
                padding: 5px;
                font-weight: bold;
            }
            table tbody tr td {
                background-color: #eee;
                padding: 5px;
                color: navy;
            }
            div.sqlCommand {
                font-family: courier;
            }

            h2 {
                border-bottom: 1px solid #777;
            }
        </style>
    </head>
    <body>
        <?php

        $sql = 'SELECT LastName,FirstName,Title FROM employee WHERE 1=2 ORDER BY LastName';

        echo '<h2>sqlite</h2>';
        $dbSqlite = new DbSqlite($sql);
        echo $dbSqlite -> displayHtmlTable();

        class DbSqlite {
            protected $sql;
            protected $records = array();
            protected $columnNames = array();
            public function __construct($sql) {
                $this -> sql = $sql;
                $this -> initialize();
            }

            protected function initialize() {
                $db = new PDO('sqlite:chinook.sqlite');
                $result = $db -> query($this -> sql);
                $result -> setFetchMode(PDO::FETCH_ASSOC);
                $columnsAreDefined = false;
                while ($row = $result -> fetch()) {
                    $this -> records[] = $row;
                    if (!$columnsAreDefined) {
                        foreach ($row as $columnName => $dummy) {
                            $this -> columnNames[] = $columnName;
                        }
                        $columnsAreDefined = true;
                    }
                }

                if (count($this -> records) == 0) {
                    $total_column = $result -> columnCount();
                    var_dump($total_column);

                    for ($x = 0; $x < $total_column; $x++) {
                        $meta = $result -> getColumnMeta($x);
                        //var_dump($meta);
                        //bool(false)
                        //$column[] = $meta['name'];
                    }
                }
            }

            public function displayHtmlTable() {
                $r = '';

                $r .= '<div class="sqlCommand">' . $this -> sql . '</div>';

                $r .= '<table>';

                $r .= '<thead>';
                $r .= '<tr>';
                foreach ($this->columnNames as $columnName) {
                    $r .= '<td>' . $columnName . '</td>';
                }
                $r .= '</tr>';
                $r .= '</thead>';

                $r .= '<tbody>';
                foreach ($this->records as $record) {
                    $r .= '<tr>';
                    foreach ($record as $data) {
                        $r .= '<td>' . $data . '</td>';
                    }
                    $r .= '</tr>';
                }
                $r .= '</tbody>';
                $r .= '<table>';
                return $r;
            }

        }
        ?>
    </body>

</html>
4

3 回答 3

3

元表sqlite_master包含所有信息。以下代码将解析sqlite_master为列名$colnames

$colnames = array() ;

$stmt = $dbh->prepare("SELECT sql FROM sqlite_master WHERE tbl_name = 'put_table_name_here'") ;
$stmt->execute() ;
$row = $stmt->fetch() ;

$sql = $row[0] ;
$r = preg_match("/\(\s*(\S+)[^,)]*/", $sql, $m, PREG_OFFSET_CAPTURE) ;
while ($r) {
  array_push( $colnames, $m[1][0] ) ;
  $r = preg_match("/,\s*(\S+)[^,)]*/", $sql, $m, PREG_OFFSET_CAPTURE, $m[0][1] + strlen($m[0][0]) ) ;
}
于 2012-10-04T05:26:35.800 回答
2
  1. 我会尝试的第一种方法:
    • 运行查询
    • 检查是否有结果返回
    • 如果是,请运行 Your initialize()anddisplayHtmlTable
    • 如果没有,运行 YourinitializeEmptyResult()将运行下一个查询并只填充$this->columnNames[]
SELECT column_name FROM information_schema.columns WHERE table_name = 'my_table_name'

该查询依赖于 MySQL,但其他数据库应该有更多的选择,或者您仍然可以DESCRIBE table从结果中运行和解析列名(应该是 SQL DBMS 独立的)。

  1. 其次,我认为更容易完成:如果查询没有返回结果,则根本不显示列名或表,只显示一条消息:'No results found.'。这可以在您的displayHtmlTable方法中实现:

        public function displayHtmlTable() {
        $r = '';

        $r .= '<div class="sqlCommand">' . $this -> sql . '</div>';

        if(count($this->records) > 0) {
            $r .= '<table>';

            $r .= '<thead>';
            $r .= '<tr>';
            foreach ($this->columnNames as $columnName) {
                $r .= '<td>' . $columnName . '</td>';
            }
            $r .= '</tr>';
            $r .= '</thead>';

            $r .= '<tbody>';
            foreach ($this->records as $record) {
                $r .= '<tr>';
                foreach ($record as $data) {
                    $r .= '<td>' . $data . '</td>';
                }
                $r .= '</tr>';
            }
            $r .= '</tbody>';
            $r .= '<table>';
        } else {
            $r .= '<div class="no-results">No results found for query.</div>';
        }

        return $r;
    }

而且您不必为列名而烦恼...

编辑:对于第一种情况,发现 SQLite 的查询应该与以下内容相同select * from information_schema.columns where table_name = 'xxx'

PRAGMA table_info(table-name);
于 2012-06-13T14:40:10.463 回答
0

只是为了扩展@shadyyx评论:

PRAGMA table_info(table-name);

我没有方便的 PDO_SQLITE 沙箱,但是使用本机 SQLite3 驱动程序,此代码段将为您提供$arrColumns中表table-name的列名:

$db = new SQLite3('db.sqlite');
$db->query('PRAGMA table_info(table-name)');
while ($col = $res->fetchArray(SQLITE3_ASSOC)) {
    $arrColnames[]=$col['name'];
}
print_r($arrColnames);
于 2015-05-01T18:44:28.377 回答