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I am working on a springMVC project in which the user authentication is based on spring security.

the idea is to have a mobile (android) application to be able to send some sort of data to backend.

So before get my hand dirty into android developing I decided to mock the situation of login form using CURL.

the login form in our site is as following :

http://localhost:8080/app/user/login

and I use following command :

curl -F 'username=admin&password=admin' http://localhost:8080/app/user/login

but yet I will get login page in other words I am not able to pass user authentication based on a mock up situation.

just to note : for every request the spring secure will create a randomize token something similar to :

8863F732ADDE24CD167F4EF502A4333D

how should I pass login form based on spring security using mock situation (either CURL or HTTPClient)

share|improve this question
    
What error do you get? – Aleksandr M Oct 24 '12 at 12:53
    
permission denied or from curl the same login form. – austin powers Oct 24 '12 at 12:56
    
Could you show relevant spring-security configuration? – Aleksandr M Oct 24 '12 at 12:57
up vote 4 down vote accepted

Use cURL like this:

 curl -d j_username=admin -d j_password=admin -L http://localhost:8080/app/j_spring_security_check

CSRF

If you get something like Expected CSRF token not found. Has your session expired? that means that CSRF token protection is enabled. To test it with cURL you need a cookie and a CSRF token itself.

The following command will write all cookies to a file named cookie and print out the CSRF token. Spring Security default token parameter name is _csrf, if you've changed it then you need to change grep csrf also.

curl --cookie-jar cookie -L http://localhost:8080/app/j_spring_security_check  | grep csrf

Then you can execute next command which will pass all cookies from file. Don't forget to replace |your_token_value| with an actual value which is printed out by the previous command (and _csrf parameter name if you've changed it).

curl --cookie cookie -d "j_username=admin&j_password=admin&_csrf=|your_token_value|" -L http://localhost:8080/app/j_spring_security_check

From Spring Security 3.x to 4.x

Note that in Spring Security 4.x default value for login-processing-url changed from /j_spring_security_check to POST /login, default value for username-parameter changed from j_username to username and default value for password-parameter changed from j_password to password. If an application explicitly provides these attributes, no action is required for the migration.

share|improve this answer
1  
awesome :)...... – austin powers Oct 25 '12 at 10:21
    
Why the downvote? – Aleksandr M Dec 22 '15 at 11:58
1  
I did not downvote, but I do get Expected CSRF token not found. Has your session expired? when I try this (Spring Boot 1.3.1). I know I can disable CSRF, but I was wondering how to do it when it is enabled? – Wim Deblauwe Jan 21 at 13:51
1  
@WimDeblauwe Updated my answer with info how to use curl when spring-security csrf is enabled. – Aleksandr M Jan 21 at 15:11

You should configure spring to support basic authentication. Then add to your request the following header:

  • name: Authorization
  • value: base64(username:password)

That means that user name and password should be cocatenated into one string with : as separator and then transformed using BASE64 transformation.

share|improve this answer
1  
Actually I don't want to add basic Auth to current config (due to security concerns) but I think there should be a way to mock up the web form. – austin powers Oct 24 '12 at 12:20

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