MYSQL php 数据库插入，包括图片上传

Question

我正在尝试将用户输入插入我的数据库。我想将标题和描述添加到广告表中，并将图像添加到图片表中。 这是我到目前为止想出的，但它根本不起作用。这是一个 posthandler.php 页面，当用户按下提交时将被调用。顶部的变量分配了来自 html 页面的输入名称。目前，我的图片数据库中有路径名和 blob，看看哪个选项效果最好。

请帮忙

<?php

session_start();
echo "You are signed in as ". $_SESSION['username'];

 include 'mysql.php'; 

 $title='title';
 $des='des';
 $image='image';

if(isset($_POST['submit'])) {
   $error = "";
     if (!empty($_POST['title'])) {
             $title= $_POST['title'];
        } else {
             $error = "Please enter a title for your Ad. <br />";
        }
        if (!empty($_POST['des'])) {
             $des = $_POST['des'];
        } else {
             $error = "Please describe your item <br />";
        }
        if (!empty($_POST['image'])) {

           $image=addslashes($_FILES['image']['tmp_name']);
           $name=addslashes($_FILES['image']['name']);
           $image=file_get_contents($image);
           $image=base64_encode($image);
           $filepath = "images/".$filename;
           move_uploaded_file($filetmp,$filepath);
           $image = $_POST['image'];

        } else {

        }

        if (empty($error)) {

        $conn= mysql_connect("localhost","km","data");
        if (!$conn){
            die ("Failed to connect to MySQL: " . mysql_error());

        mysql_select_db("mdb_km283",$conn);

        $sql = "INSERT INTO Advert (title, description) VALUES ('$_POST[title]','$_POST[des]')";
        $sql2 = "INSERT INTO Pictures(image, Path) VALUES ('$_POST[image]' $filepath)";

        mysql_query( $sql,$sql2, $conn );
        //mysql_query( $sql2,$conn );
        mysql_close($conn); 


            echo 'Upload successfull';
        }

        }
}


  ?>

  <!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.1//EN"
    "http://www.w3.org/TR/xhtml11/DTD/xhtml11.dtd">
<html version="-//W3C//DTD XHTML 1.1//EN"
      xmlns="http://www.w3.org/1999/xhtml" xml:lang="en"
      xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
      xsi:schemaLocation="http://www.w3.org/1999/xhtml
                          http://www.w3.org/MarkUp/SCHEMA/xhtml11.xsd"
>

<head>
<link rel="stylesheet" type=text/css" href="stylesheet.css">
<a href="signout.php">Logout</a>

<h1>ERROR - Please go back and fix the below:</h1>
</head>
<body>


<?php 
    if (!empty($error)) {
        echo'<p class="error"><strong>Upload failed. Please go back and fix the below <br/> The following error(s) returned:</strong><br/>' . $error . '</p>';
    } else {

    echo '<meta http-equiv="refresh" content="0; URL=user.php">';


    }


?>


</body>
</html>

Answer 1

$filename = $_FILES['image']['name'];
$filepath = 'image/' . $filename;
$filetmp = $_FILES['image']['temp_name'];
$result = move_uploaded_file($filetmp,$filepath);
if(!$result)
         echo "Photo field was blank";
else 
         echo "uploaded";

然后在这里写你的mysql代码....