为什么我的图像文件无法在 PHP 中上传?
Why won't my image files upload in PHP?
我希望我的用户能够将图像上传到他们的帐户(我的 MySQL 数据库)。但是,当我尝试对其进行编码并上传时,该文件似乎从未上传过并且是空的。我已经在 PHP 设置中检查了最大上传大小等。提前致谢!!
$data = "";
if(isset($_FILES["up"])) {
$data = file_get_contents($_FILES['up']['tmp_name']);
$data = base64_encode($data);
$data = $connection->real_escape_string($data);
} else {
echo '<div style="position:absolute;height:100px;top:0px;left:0px;
border-top-right-radius:20px;border-top-left-radius:20px;
width:100%;background:white;z-index:100;"
>
<font style="color:#BB0000;font-size:2.2vw;">'.$_FILES['up']['error'].'</font>
</div>';
die('');
}
我的 HTML 是:(并且表单提交正确)
<input type="file" accept=".jpg,.png,.jpeg" name="up" id="up"/>
建议:将图片存放在一个目录中。
为什么不问DB?
- read/write 到数据库总是比文件系统慢
- 您的数据库备份将变得更耗时
所以,这是我的解决方案。
第 1 步:创建目录 userPhotos
第 2 步:创建表单
<form action="upload.php" method="post" enctype="multipart/form-data">
Select your profile picture:
<input type="file" name="fileToUpload" id="fileToUpload">
<input type="Upload" value="Upload Image" name="submit">
</form>
第 3 步:创建一个名为 upload.php 的文件来处理文件上传。
<?php
$target_dir = "userPhotos/";
$target_file = $target_dir . basename($_FILES["fileToUpload"]["name"]);
$uploadOk = 1;
$newfilename = ;//assign unique user ID
$imageFileType = pathinfo($target_file,PATHINFO_EXTENSION);
// Check if image file is a actual image or fake image
if(isset($_POST["submit"])) {
$check = getimagesize($_FILES["fileToUpload"]["tmp_name"]);
if($check !== false) {
echo "File is an image - " . $check["mime"] . ".";
if (move_uploaded_file($_FILES["fileToUpload"][$newfilename.$imageFileType], $target_file)) {
echo "The file ". basename( $_FILES["fileToUpload"]["name"]). " has been uploaded.";$uploadOk = 1;
}
} else {
echo "File is not an image.";
$uploadOk = 0;
}
}
if($uploadOK==1){
store the path of image in DB as "/userPhotos/".$newfilename
echo "uploaded photo : <img src='userphotos/".$newfilename."'">
}
//to display the image fetch the path using user ID as put it in src of img tag.
?>
如果有人有更好的解决方案,请告诉我。谢谢,祝你好运。
PHP代码
$data = "";
if(isset($_FILES["up"])) {
$data = file_get_contents($_FILES['up']['tmp_name']);
$data = base64_encode($data);
$data = $connection->real_escape_string($data);
} else {
echo '<div style="position:absolute;height:100px;top:0px;left:0px;
border-top-right-radius:20px;border-top-left-radius:20px;
width:100%;background:white;z-index:100;"
>
<font style="color:#BB0000;font-size:2.2vw;">'.$_FILES['up']['error'].'</font>
</div>';
die('');
}
HTML代码
<form method="POST" enctype="multipart/form-data">
<input type="file" accept=".jpg,.png,.jpeg" name="up" id="up"/>
</form>
我希望我的用户能够将图像上传到他们的帐户(我的 MySQL 数据库)。但是,当我尝试对其进行编码并上传时,该文件似乎从未上传过并且是空的。我已经在 PHP 设置中检查了最大上传大小等。提前致谢!!
$data = "";
if(isset($_FILES["up"])) {
$data = file_get_contents($_FILES['up']['tmp_name']);
$data = base64_encode($data);
$data = $connection->real_escape_string($data);
} else {
echo '<div style="position:absolute;height:100px;top:0px;left:0px;
border-top-right-radius:20px;border-top-left-radius:20px;
width:100%;background:white;z-index:100;"
>
<font style="color:#BB0000;font-size:2.2vw;">'.$_FILES['up']['error'].'</font>
</div>';
die('');
}
我的 HTML 是:(并且表单提交正确)
<input type="file" accept=".jpg,.png,.jpeg" name="up" id="up"/>
建议:将图片存放在一个目录中。
为什么不问DB?
- read/write 到数据库总是比文件系统慢
- 您的数据库备份将变得更耗时
所以,这是我的解决方案。
第 1 步:创建目录 userPhotos
第 2 步:创建表单
<form action="upload.php" method="post" enctype="multipart/form-data">
Select your profile picture:
<input type="file" name="fileToUpload" id="fileToUpload">
<input type="Upload" value="Upload Image" name="submit">
</form>
第 3 步:创建一个名为 upload.php 的文件来处理文件上传。
<?php
$target_dir = "userPhotos/";
$target_file = $target_dir . basename($_FILES["fileToUpload"]["name"]);
$uploadOk = 1;
$newfilename = ;//assign unique user ID
$imageFileType = pathinfo($target_file,PATHINFO_EXTENSION);
// Check if image file is a actual image or fake image
if(isset($_POST["submit"])) {
$check = getimagesize($_FILES["fileToUpload"]["tmp_name"]);
if($check !== false) {
echo "File is an image - " . $check["mime"] . ".";
if (move_uploaded_file($_FILES["fileToUpload"][$newfilename.$imageFileType], $target_file)) {
echo "The file ". basename( $_FILES["fileToUpload"]["name"]). " has been uploaded.";$uploadOk = 1;
}
} else {
echo "File is not an image.";
$uploadOk = 0;
}
}
if($uploadOK==1){
store the path of image in DB as "/userPhotos/".$newfilename
echo "uploaded photo : <img src='userphotos/".$newfilename."'">
}
//to display the image fetch the path using user ID as put it in src of img tag.
?>
如果有人有更好的解决方案,请告诉我。谢谢,祝你好运。
PHP代码
$data = "";
if(isset($_FILES["up"])) {
$data = file_get_contents($_FILES['up']['tmp_name']);
$data = base64_encode($data);
$data = $connection->real_escape_string($data);
} else {
echo '<div style="position:absolute;height:100px;top:0px;left:0px;
border-top-right-radius:20px;border-top-left-radius:20px;
width:100%;background:white;z-index:100;"
>
<font style="color:#BB0000;font-size:2.2vw;">'.$_FILES['up']['error'].'</font>
</div>';
die('');
}
HTML代码
<form method="POST" enctype="multipart/form-data">
<input type="file" accept=".jpg,.png,.jpeg" name="up" id="up"/>
</form>