php如何做api上传文件接口?

WBOY
Release: 2016-06-23 13:50:56
Original
4935 people have browsed it

现在要是实现上传wav,jpg等文件上传api接口,怎么上传,请高手们提供代码参考


回复讨论(解决方案)

http://wiki.open.t.qq.com/index.php?oldid=4665&title=API%E9%8F%82%E5%9B%A8%E3%80%82/%E5%AF%B0%EE%86%BC%E5%B4%A5%E9%8E%BA%E3%83%A5%E5%BD%9B/%E9%8D%99%E6%88%A3%E3%80%83%E7%94%AF%EF%B9%80%EE%98%BF%E5%AF%AE%E7%8A%B2%E6%B5%98%E9%90%97%E5%9B%A9%E6%AE%91%E5%AF%B0%EE%86%BC%E5%B4%A5 这里有个列子。

有php代码,你给的地址如何看api源代码?

高手呢,怎么没人回复了,只需要api服务器端能把二进制流保存文件即可,或者图片都行

除去准备工作,不就一句 move_uploaded_file 吗?

如何通过api接口来上传?

请高手给点代码看看

谁的 API ?

高手们写个简单的api能上传图片即可

上传图片或者文件,那个简单就搞下,代码我看看案例,谢谢..................!

自己做个api服务器端上传文件用,不知道如何搞

和表单上传一样的写

http://www.w3school.com.cn/php/php_file_upload.asp

require_once "../common_mysql.php";require_once MESSAGE_PATH . 'zh/zh_calendar_message.php';require_once "function_common/user_function.php";require_once "function_common/public_function.php";global $DB;$sql_time = microtime ( true );//$uid = $self_userid;//保存图片$json_result ['status'] = 0;$path = 'upfile';$json_result ['status'] = 0;$json_result ['successmsg'] = '上传失败';if (isset ( $_FILES ['imageZip'] )) {	$upfile = 'upfile/' . $_FILES ['imageZip'] ['name'];	if (! @file_exists ( $path )) {		@mkdir ( $path );	}	$result = @move_uploaded_file ( $_FILES ['imageZip'] ['tmp_name'], $upfile );	if (! $result) {		$json_result ['status'] = 0;		$json_result ['successmsg'] = '上传失败';		$json_result ['datas'] = array ('savePath' => $upfile );		exit ( json_encode ( $json_result ) );	}}$json_result ['status'] = 1;$json_result ['datas'] = array ('savePath' => $upfile );
Copy after login


我的服务器点代码,但是别人如何POST数据过来?

现在问题就是其他人如何把$_FILES通过curl给传过来?





难道只能这样吗?就不能用curl传过来吗?

$file = realpath('gif/1.gif'); //要上传的文件$fields['f'] = '@'.$file;$ch = curl_init();  curl_setopt($ch, CURLOPT_URL,"你的api接口");  curl_setopt($ch, CURLOPT_POST, 1 );curl_setopt($ch, CURLOPT_POSTFIELDS, $fields);curl_exec ($ch);  curl_close ($ch);  
Copy after login

ok谢谢啊,我来试试,非常感谢

Related labels:
source:php.cn
Statement of this Website
The content of this article is voluntarily contributed by netizens, and the copyright belongs to the original author. This site does not assume corresponding legal responsibility. If you find any content suspected of plagiarism or infringement, please contact admin@php.cn
Popular Tutorials
More>
Latest Downloads
More>
Web Effects
Website Source Code
Website Materials
Front End Template