>我有一个数据库的连接,我正在使用mysqli_fetch_assoc创建一个关联数组以将数据返回到屏幕。这部分代码如下所示:
$sql = "SELECT * FROM Kundregistert ORDER BY ID DESC;";
//
//
$result = mysqli_query($conn, $sql) or die(mysqli_error($conn));
$row = mysqli_fetch_assoc($result);
//
// Avsluta anslutning till db
return ($row['Namn'], $row['Telefonnummer'], $row['Epost'], $row['Dacktyp'], $row['Lagerstatus'], $row['Datum']);
mysqli_close($conn);
}
起初,我将数据库中的所有信息存储在名为"Kund"的列下(我只使用了return $row['Kund'],因为它只有 1 列),然后它没有提供 foreach 错误。现在我通过 7 个变量存储信息,并希望像上面尝试的那样返回所有列。
这是foreach的代码;
foreach($company->getCustomerList() as $key => $obj){
echo "<h3 id='id'>$key</h3> " . $obj->getcustomername() . ", " . $obj->getcustomertfn() . ", " . $obj->getcustomerepost() . "<br>" . $obj->gettirebrand() . ", " . $obj->getstatus() . ": " . $obj->getdate() . "<br>" .
" <a href='classes_serialisering.php?delPart=$key' id='radera'>Radera post $key </a>" . " <a href='classes_serialisering.php?updateView=$key' id='uppdatera'>Uppdatera Post </a><br>";
}
起初,当我只有一列时,我尝试只是将return $row['']更改为"Kund"以外的其他内容,然后我也得到了foreach错误。所以我认为我尝试返回列的方式有问题,但我似乎无法让它工作。
我是 php 的初学者,所以请记住这一点。
谢谢。
编辑*****
interface RegisterCustomer {
function addCustomer($customername, $customertfn, $customerepost, $tirebrand, $status);
function getCustomerList();
}
class Company implements RegisterCustomer {
protected $companyname = '';
public $CustomerList = array();
function read_data(){
//
//Anslut mot databas
$conn = mysqli_connect('xxxxx', 'xxxxx', 'xxxxx')
or die('Could not establish connection to MySQL.');
$db_connected = mysqli_select_db($conn, "xxxxxxx");
//
//
$sql = "SELECT * FROM Kundregistert ORDER BY ID DESC;";
//
//
$result = mysqli_query($conn, $sql) or die(mysqli_error($conn));
$row = mysqli_fetch_assoc($result);
//
// Avsluta anslutning till db
return $row['Namn'];
mysqli_close($conn);
}
function __construct($companyname){
$this->foretag = $companyname;
$this->CustomerList = unserialize($this->read_data());
}
我觉得我在代码中迷失了方向
首先,你的 php 方法 getCustomerList 应该像下面这样修改;
public function getCustomerList()
{
$sql = "SELECT * FROM Kundregistert ORDER BY ID DESC;";
//
//
$result = mysqli_query($conn, $sql) or die(mysqli_error($conn));
$allRows = array();
while($row = mysqli_fetch_assoc($result))
{
$allRows[] = $row;
}
//
// Avsluta anslutning till db
// Return statement should be like below after mysqli_close
//return ($row['Namn'], $row['Telefonnummer'], $row['Epost'], $row['Dacktyp'], $row['Lagerstatus'], $row['Datum']);
mysqli_close($conn);
return $allRows;
}
正如你在上面看到的,MySQLi查询结果应该被迭代并收集在一个数组中,以满足你的情况。
谢谢你可以轻松地在你的结果中,如下所示;
foreach($company->getCustomerList() as $key => $obj){
echo "<h3 id='id'>$key</h3> " . $obj->getcustomername() . ", " . $obj->getcustomertfn() . ", " . $obj->getcustomerepost() . "<br>" . $obj->gettirebrand() . ", " . $obj->getstatus() . ": " . $obj->getdate() . "<br>"." Radera post $key " . " Uppdatera Post";}
请注意,$key将始终是数组当前迭代的索引。还要注意的是,$obj不会是一个具有像getcustomerepost()等成员的类。对于这种使用,您应该从您的方法中返回一个包含您的数据的对象。
也许你可以试试这段代码
$row = mysqli_fetch_assoc($result);
while($row = mysqli_fetch_assoc($result)) {
// Add data from database to variable $array
$array[]['Namn'] = $row['Namn'];
$array[]['Telefonnummer'] = $row['Telefonnummer'];
$array[]['Epost'] = $row['Epost'];
$array[]['Dacktyp'] = $row['Dacktyp'];
$array[]['Lagerstatus'] = $row['Lagerstatus'];
$array[]['Datum'] = $row['Datum'];
}
// Load with this code
for($i=0; $i<count($array); $i++) {
echo $array[$i]['Namn']."<br>";
echo $array[$i]['Telefonnummer']."<br>";
echo $array[$i]['Epost']."<br>";
echo $array[$i]['Dacktyp']."<br>";
echo $array[$i]['Lagerstatus']."<br>";
echo $array[$i]['Datum']."<br>";
}