Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

So I am using a REST API, where the API issues a POST request to my server in JSON format. Following is the information it sends:

info: {
id: "9890dsds8",
number: 5,
amount: 33
},
sig: "8jhjbhb78979899h"

sig is a SHA1 signature of the info, this should be used to validate the post. For example, we can validate the info in Ruby with (as given in their example):

require 'json'
require 'cgi'
require 'digest/sha1'

key = "some_key"
params = CGI::parse(post_body)
digest = Digest::SHA1.hexdigest(params["info"]+key)

if digest == params["sig"]
# Valid signature
info = JSON.parse(params["info"])
# Respond with status code 200 and some unique_id
else
# Invalid signature. You should response with a non-200 response code.
end

The unique_id must be a string of UTF8 characters 50 characters in length or less and should be the only contents of the body of your response.

Though I am quite able to understand what's happening, I am not completely able to figure out everything. Mostly, may be because its in Ruby.

Can someone please help me on how to do this in PHP? I am not able to handle this JSON POST request in PHP. A PHP converted version of the snippet would be extremely appreciated. I am also not sure, how to deal with SHA1 aspects in PHP, any special knowledge required?

Thanks a lot!!

share|improve this question
    
What is you PHP code so far? –  hakre Feb 23 '12 at 22:21
add comment

1 Answer

I assume that the API will populate the "response" variable in your POST array.

Then:

//Get the JSON string
$json_string = $_POST['response'];

//Decode JSON string to array
$decoded = json_decode($json_string);

//Calculate SHA1 (I am not sure how ruby is concatenating a string with an array, so I will just convert the array to string using implode).
$key = 'somekey';
$hash = sha1(implode("",$decoded['info']) . $key);

if($hash == $decoded['sig']){
 //OK!
}else{
 //Not OK!
}
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.