[英]dropdown list php with selected value from database
我一直在php的下拉框中工作,它链接到表profile_staff和potential_client表结构如下
表1 - potential_client
pc_id | pc_staff 1 | prav
表2 - profile_staff staff_id | staff_name 1 | shree 2 | prav
其中填充值应来自表profile_staff列staff_name,并且所选值应来自potential_client列staff_id。 下面是我到目前为止所做的代码。 它在下拉列表中显示空值。 请指教。
<?php
$sql2 = "SELECT profile_staff from potential_client WHERE pc_id = '$pc_id'";
$sql1= "SELECT staff_name from profile_staff";
$result1 = mysql_query($sql1);
$result2 = mysql_query($sql2);
echo '<select name="pc_staff">';
while($row = mysql_fetch_array($result1) && $row1 = mysql_fetch_array($result2)) {
if ($row === $row1) {
echo '<option value="' . $row . '" selected="selected" />';
} else {
echo '<option value="' . $row1 . '" />';
}
}
echo '</select>'; ?>
谢谢你们这里是工作代码。
<?php
$sql = "SELECT staff_name FROM profile_staff";
$result = mysql_query($sql);
$row = mysql_fetch_array($result);
echo "<select name='pc_staff' <option value = '0'> Select Staff </option>";
while ($row = mysql_fetch_array($result)) {
if ($row['staff_name'] == $search_user['pc_staff']) {
$selectCurrent=' selected';
echo '<option value="'.$search_user['pc_staff'].'" '.$selectCurrent.'>'.$search_user['pc_staff'].'</option>';
}
else
{
echo "<option value='" . $row['staff_name'] ."'>" . $row['staff_name'] ." </option>";
}
}
echo "</select>"; ?>
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