在 PHP 中使用 cURL 的原始帖子

2022-08-30 06:48:45

如何使用cURL在PHP中进行RAW POST?

原始帖子如 无任何编码,我的数据存储在字符串中。数据的格式应如下所示:

... usual HTTP header ...
Content-Length: 1039
Content-Type: text/plain

89c5fdataasdhf kajshfd akjshfksa hfdkjsa falkjshfsa
ajshd fkjsahfd lkjsahflksahfdlkashfhsadkjfsalhfd
ajshdfhsafiahfiuwhflsf this is just data from a string
more data kjahfdhsakjfhsalkjfdhalksfd

一种选择是手动写入要发送的整个HTTP标头,但这似乎不太理想。

无论如何,我可以将选项传递给curl_setopt(),即使用POST,使用文本/纯文本,并从中发送原始数据?$variable


答案 1

我刚刚找到了解决方案,有点像回答我自己的问题,以防其他人偶然发现它。

$ch = curl_init();

curl_setopt($ch, CURLOPT_URL,            "http://url/url/url" );
curl_setopt($ch, CURLOPT_RETURNTRANSFER, 1 );
curl_setopt($ch, CURLOPT_POST,           1 );
curl_setopt($ch, CURLOPT_POSTFIELDS,     "body goes here" ); 
curl_setopt($ch, CURLOPT_HTTPHEADER,     array('Content-Type: text/plain')); 

$result = curl_exec($ch);

答案 2

使用 Guzzle 库实现:

use GuzzleHttp\Client;
use GuzzleHttp\RequestOptions;

$httpClient = new Client();

$response = $httpClient->post(
    'https://postman-echo.com/post',
    [
        RequestOptions::BODY => 'POST raw request content',
        RequestOptions::HEADERS => [
            'Content-Type' => 'application/x-www-form-urlencoded',
        ],
    ]
);

echo(
    $response->getBody()->getContents()
);

PHP CURL 扩展:

$curlHandler = curl_init();

curl_setopt_array($curlHandler, [
    CURLOPT_URL => 'https://postman-echo.com/post',
    CURLOPT_RETURNTRANSFER => true,

    /**
     * Specify POST method
     */
    CURLOPT_POST => true,

    /**
     * Specify request content
     */
    CURLOPT_POSTFIELDS => 'POST raw request content',
]);

$response = curl_exec($curlHandler);

curl_close($curlHandler);

echo($response);

源码


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