php - 如何在 Mysql 中更新图像

Question

我有一个将图像上传到文件夹的 php 页面，名称被插入到 mysql 表中。现在我想创建一个页面来更新图片并删除目录文件夹中的旧图片或用新图片替换旧图片。

这里是不更新图像或其他字段的代码。

 <?php
// Start a session for error reporting
session_start();

// Call our connection file
require("includes/conn.php");



// Set some constants

// This variable is the path to the image folder where all the images are going to be stored
// Note that there is a trailing forward slash
$TARGET_PATH = "images/";

// Get our POSTed variables
$name = $_POST['name'];
$description  = $_POST['description '];
$price = $_POST['price'];
$image = $_FILES['image'];
$serial = $_POST['serial'];

// Sanitize our inputs
$name = mysql_real_escape_string($name);
$description = mysql_real_escape_string($description);
$price = mysql_real_escape_string($price);
$image['name'] = mysql_real_escape_string($image['name']);

// Build our target path full string.  This is where the file will be moved do
// i.e.  images/picture.jpg
$TARGET_PATH .= $image['name'];


// Here we check to see if a file with that name already exists
// You could get past filename problems by appending a timestamp to the filename and then continuing
if (file_exists($TARGET_PATH))
{
        $_SESSION['error'] = "A file with that name already exists";
        header("Location: updateproduct.php");
        exit;
}

// Lets attempt to move the file from its temporary directory to its new home
if (move_uploaded_file($image['tmp_name'], $TARGET_PATH))
{
        // NOTE: This is where a lot of people make mistakes.
        // We are *not* putting the image into the database; we are putting a reference to the file's location on the server
        $sql = "UPDATE products SET picture = '$image', description = '$description' ,price = '$price' ,name = '$name'  WHERE serial = '$serial'";


 $result = mysql_query($sql) or die ("Could not insert data into DB: " . mysql_error());
        header("Location: updateproduct.php");
        exit; 

}
else
{
        // A common cause of file moving failures is because of bad permissions on the directory attempting to be written to
        // Make sure you chmod the directory to be writeable
        $_SESSION['error'] = "Could not upload file.  Check read/write persmissions on the directory";
        header("Location: updateproduct.php");
        exit;
}
?>

这是表格

   <?php require_once('Connections/shopping.php'); ?>
<?php
$colname_Recordset1 = "1";
if (isset($_POST['serial'])) {
  $colname_Recordset1 = (get_magic_quotes_gpc()) ? $_POST['serial'] : addslashes($_POST['serial']);
}
mysql_select_db($database_shopping, $shopping);
$query_Recordset1 = sprintf("SELECT * FROM products WHERE serial = %s", $colname_Recordset1);
$Recordset1 = mysql_query($query_Recordset1, $shopping) or die(mysql_error());
$row_Recordset1 = mysql_fetch_assoc($Recordset1);
$totalRows_Recordset1 = mysql_num_rows($Recordset1);
?>
<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.01 Transitional//EN" "http://www.w3.org/TR/html4/loose.dtd">
<html>
<head>
<title>Untitled Document</title>
<meta http-equiv="Content-Type" content="text/html; charset=iso-8859-1">
</head>

<body>

<div align="center">
  <form method="post" name="form1" action="updateupload.php">
    <table align="center">
      <tr valign="baseline">
        <td nowrap align="right">Serial:</td>
        <td><?php echo $row_Recordset1['serial']; ?></td>
      </tr>
      <tr valign="baseline">
        <td nowrap align="right">Name:</td>
        <td><input type="text" name="name" value="<?php echo $row_Recordset1['name']; ?>" size="32"></td>
      </tr>
      <tr valign="baseline">
        <td nowrap align="right">Description:</td>
        <td><input type="text" name="description" value="<?php echo $row_Recordset1['description']; ?>" size="32"></td>
      </tr>
      <tr valign="baseline">
        <td nowrap align="right">Price:</td>
        <td><input type="text" name="price" value="<?php echo $row_Recordset1['price']; ?>" size="32"></td>
      </tr>
      <tr valign="baseline">
        <td nowrap align="right">Picture:</td>
        <td><input type="file" name="picture" value="<?php echo $row_Recordset1['picture']; ?>" size="32"></td>
      </tr>
      <tr valign="baseline">
        <td nowrap align="right">&nbsp;</td>
        <td><input name="submit" type="submit" value="Update record"></td>
      </tr>
    </table>
  </form>
</div>
</body>
</html>
<?php
mysql_free_result($Recordset1);
?>

Answer 1

我想你错过了

enctype="multipart/form-data"

处理文件。

http://www.w3schools.com/php/php_file_upload.asp