使用输入文件类型编辑图像
使用输入文件类型编辑图像
提问于 2013-08-13 18:51:12
我为在mysql中编辑数据做了一个简单的编辑,一切正常,除了当我想编辑输入文件类型的图像时它不工作,它没有给出错误信息它只是不编辑任何东西,当我删除输入文件类型的图像时它工作。通过编辑图像,我的意思是输入一个新图像,它将替换旧图像。
下面是我的代码:
<?php
require("db.php");
$id = $_REQUEST['theId'];
$result = mysql_query("SELECT * FROM table WHERE id = '$id'");
$test = mysql_fetch_array($result);
$name = $test['Name'] ;
$email = $test['Email'] ;
$image = $test['Image'] ;
if (isset($_POST['submit']))
{
$name_save = $_POST['name'];
$email_save = $_POST['email'];
if (isset($_FILES['image']['tmp_name']))
{
$file = $_FILES['image']['tmp_name'];
$image = addslashes(file_get_contents($_FILES['image']['tmp_name']));
$image_name = addslashes($_FILES['image']['name']);
move_uploaded_file($_FILES["image"]["tmp_name"],"photos/" . $_FILES["image"]["name"]);
$image_save ="photos/" . $_FILES["image"]["name"];
mysql_query("UPDATE table SET Name ='$name_save', Email ='$email_save',Image ='$image_save' WHERE id = '$id'") or die(mysql_error());
header("Location: index.php");
}
}
?>
<form method="post">
<table>
<tr>
<td>name:</td>
<td>
<input type="text" name="name" value="<?php echo $name ?>"/>
</td>
</tr>
<tr>
<td>email</td>
<td>
<input type="text" name="email" value="<?php echo $email ?>"/>
</td>
</tr>
<tr>
<td>image</td>
<td>
<input type="file" name="image" value="<?php echo $image ?>"/>
</td>
</tr>
<tr>
<td> </td>
<td>
<input type="submit" name="submit" value="submit" />
</td>
</tr>
</table>Stack Overflow用户
回答已采纳
发布于 2013-08-13 18:58:15
表单数据中缺少“multipart/ form -enctype=”,并且您的表单中没有type=“文件”。
给出下面的代码并尝试。
<?php
require("db.php");
$id =$_REQUEST['theId'];
$result = mysql_query("SELECT * FROM table WHERE id = '$id'");
$test = mysql_fetch_array($result);
$name=$test['Name'] ;
$email= $test['Email'] ;
$image=$test['Image'] ;
if(isset($_POST['submit'])){
$name_save = $_POST['name'];
$email_save = $_POST['email'];
$image_save=$image //Added if image is not chose from the form post
if (isset($_FILES['image']['tmp_name'])) {
$file=$_FILES['image']['tmp_name'];
$image= addslashes(file_get_contents($_FILES['image']['tmp_name']));
$image_name= addslashes($_FILES['image']['name']);
move_uploaded_file($_FILES["image"]["tmp_name"],"photos/" . $_FILES["image"]["name"]);
$image_save ="photos/" . $_FILES["image"]["name"];
}
mysql_query("UPDATE table SET Name ='$name_save', Email ='$email_save',Image ='$image_save' WHERE id = '$id'")
or die(mysql_error());
header("Location: index.php"); }
?>
<form method="post" enctype="multipart/form-data">
<table>
<tr>
<td>name:</td>
<td><input type="text" name="name" value="<?php echo $name ?>"/></td>
</tr>
<tr>
<td>email</td>
<td><input type="text" name="email" value="<?php echo $email ?>"/></td>
</tr>
<tr>
<td>image</td>
<td><input type="file" name="image" /></td>
</tr>
<tr>
<td> </td>
<td><input type="submit" name="submit" value="submit" /></td>
</tr>
</table>此外,您应该通过sql获取上一个映像值,如果在更新时没有选择image,则更新。
页面原文内容由Stack Overflow提供。腾讯云小微IT领域专用引擎提供翻译支持
原文链接:
https://stackoverflow.com/questions/18207155
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