我有PHP脚本,允许用户从4个dowpdown列表中进行选择,这些下拉列表包括从MySQL数据库检索的值。
当我在phpMyAdmin控制台上尝试SQL查询时,它工作正常。当我尝试使用PHP脚本时,它不起作用,并且没有任何检索。
@巴尔玛
首先...
<td><select id="site_name" name = "site_name">
<?php
$query_site_name =$wpdb->get_results ("select DISTINCT siteNAME from site_info");
foreach($query_site_name as $site_name)
{
$site_name = (array)$site_name;
echo "<option value = '{".$site_name ['siteNAME']."}'>". $site_name['siteNAME']."</option>";
}
?>
第二...
if(isset($_POST['site_name']))
{
$site_name=$_POST['site_name'];
}
else { $site_name=""; }
我将$ site_name声明为全局变量
SQL查询:
$query_submit =$wpdb->get_results ("select site_info.siteID,site_info.siteNAME ,site_info.equipmentTYPE,site_coordinates.latitude,site_coordinates.longitude,site_coordinates.height ,owner_info.ownerNAME,owner_info.ownerCONTACT,company_info.companyNAME,subcontractor_info.subcontractorCOMPANY,subcontractor_info.subcontractorNAME,subcontractor_info.subcontractorCONTACT from `site_info`
LEFT JOIN `owner_info`
on site_info.ownerID = owner_info.ownerID
LEFT JOIN `company_info`
on site_info.companyID = company_info.companyID
LEFT JOIN `subcontractor_info`
on site_info.subcontractorID = subcontractor_info.subcontractorID
LEFT JOIN `site_coordinates`
on site_info.siteID=site_coordinates.siteID
");
foreach ($query_submit as $obj) {
echo $site_name;
echo "<table width='30%' ";
echo "<tr>";
echo "<td>".$obj->siteNAME."</td>";
echo "<td>".$obj->ownerNAME."</td>";
echo "<td>".$obj->companyNAME."</td>";
echo "<td>".$obj->subcontractorNAME."</td>";
echo "<td>".$obj->siteID."</td>";
echo "<td>".$obj->equipmentTYPE."</td>";
echo "<td>".$obj->latitude."</td>";
echo "<td>".$obj->longitude."</td>";
echo "<td>".$obj->height."</td>";
echo "<td>".$obj->ownerCONTACT."</td>";
echo "<td>".$obj->subcontractorCONTACT."</td>";
echo "<td>".$obj->subcontractorCOMPANY."</td>";
echo "</tr>";
echo "</table>";
}
?>
新的问题是,当我尝试指定用户选择查询时,查询将停止工作。
当我添加这些行时:
where
site_info.siteNAME = ".$site_name."
其中$ site_name是下拉列表中的变量
下拉列表代码:
<form method ="post" action ="" name="submit_form">
<table width="30%">
<tr>
<td>Site Name</td>
<td>Owner Name</td>
<td>Company Name</td>
<td>Subcontractor Name</td>
</tr>
<tr>
<td><select id="site_name" name = "site_name">
<?php
$query_site_name =$wpdb->get_results ("select DISTINCT siteNAME from site_info");
foreach($query_site_name as $site_name)
{
$site_name = (array)$site_name;
echo "<option value = '{".$site_name ['siteNAME']."}'>". $site_name['siteNAME']."</option>";
}
?>
<!--create dropdown list owner names-->
</select></td>
<td><select id="owner_name" name ="owner_name">
<?php
$query_owner_name =$wpdb->get_results ("select DISTINCT ownerNAME from owner_info");
foreach($query_owner_name as $owner_name)
{
$owner_name = (array)$owner_name;
echo "<option value = '{".$owner_name ['ownerNAME']."}'>". $owner_name['ownerNAME']."</option>";
}
?>
</select></td>
<!--create dropdown list Company names-->
</select></td>
<td><select id="Company_name" name ="Company_name">
<?php
$query_Company_name =$wpdb->get_results ("select DISTINCT companyNAME from company_info");
foreach($query_Company_name as $Company_name)
{
$Company_name = (array)$Company_name;
echo "<option value = '{".$Company_name ['companyNAME']."}'>". $Company_name['companyNAME']."</option>";
}
?>
</select></td>
<!--create dropdown list Subcontractor names-->
</select></td>
<td><select id="Subcontractor_name" name ="Subcontractor_name">
<?php
$query_Subcontractor_name =$wpdb->get_results ("select DISTINCT subcontractorNAME from subcontractor_info");
foreach($query_Subcontractor_name as $Subcontractor_name)
{
$Subcontractor_name = (array)$Subcontractor_name;
echo "<option value = '{".$Subcontractor_name ['subcontractorNAME']."}'>". $Subcontractor_name['subcontractorNAME']."</option>";
}
?>
</select></td>
<tr>
<td></td>
<td></td>
<td></td>
<td></td>
<td>
<input type ="submit" name="query_submit" value ="Search" />
</td>
</tr>
</table>
</form>
最佳答案
您需要在站点名称两边加上引号,因为它是一个字符串:
where
site_info.siteNAME = '".$site_name."'
但是,最好使用准备好的语句,而不是将变量替换为SQL,请参见wpdb::prepare()。