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Introduction

In today’s world, the average person has 70-80 different passwords across multiple accounts. While users wouldn’t care if their Webkinz password got leaked, bank account details being stolen is much more detrimental to users. In order to keep them safe, banks are required by the FTC to have proper security to keep users passwords safe. The common algorithm used is hashing. Technically speaking, hashing is a method of making a finite string of characters into a fixed size. Early hashing algorithms weren’t used for the use of encryption but data compression.The first person to use hashing was HP Luhn. HP Luhn, in an internal memo of IBM written in 1953, talked about putting information into buckets to speed up a searches. For example, a phone number like 508 905 9318 would be broken down into 5 numbers (50,89,05,93,18) and a new set of numbers was generated by adding the digits together (5,17,5,12,9), or bucket 5175129. Now if we needed to retrieve this phone number and the relevant information that is grouped with the phone number, we just need to calculate the hash value. Although this hash bucket may have multiple values, it's easier to search through a smaller bucket versus the entire database. Over the years, computer scientists have improved his algorithms and is now used in a variety of contexts such as cryptography, graphics, and as we talk about in this article, security. The common type of hashing algorithm we use in the security sector is known as password hashing. Password hashing takes the plaintext password, and turns it into a series of unintelligible characters called ciphertext. This way if a hacker wants these passwords, they have to hack into the database to get these passwords,and they have to decrypt the ciphertext which is extremely complex if you don’t know the specifics of the algorithms. Our paper will be more specifically looking at a category of algorithms called Secure Hash Algorithm, or SHA.

What is SHA

SHA is a family of hashing algorithms developed by the NSA and is published by the National Institute of Standards and Technology (NIST). First SHA algorithm, SHA-0, can input 160 bit messages and outputs a hashed value that is 40 values. This type of algorithm didn’t have much of a use due to the fact that it had a security flaw and was replaced with SHA-1 in 1995. There are several uses for SHA-1. We obviously talked about the use of SHA-1 for password hashing, but there are also uses for verification. Say we want to download a file from a website other than the developers website. If we can use the SHA1 hashed value of the file from the website and compare it to the developers, if the values don’t line up, we know that the file is not only not the same but could also contain malware. These are just some of the uses for SHA 1. But the question remains, how exactly does the SHA 1 algorithm work?

SHA-1 Walkthrough

Step 1:

Initialize 5 strings as "Hash Values"

H1 = 0x67452301
H2 = 0xEFCDAB89
H3 = 0x98BADCFE
H4 = 0x10325476
H5 = 0xC3D2E1F0


Step 2:

Take the word you want to hash (in binary), and append a 1 to the end of it. Then append as many zeros as it takes to make it divisible by 512, with the length of the message in a 64 bit integer appended at the end of the string.

Example:

The word "Hello" in binary is:

                     01001000 01100101 01101100 01101100 01101111
                       (H)      (e)      (l)      (l)      (o)

Add 1 to the end:

= 01001000011001010110110001101100011011111

Since "Hello" is less than 448 we add 0’s until the string is 448 bits long:

= 01001000011001010110110001101100011011111000…0 (len = 448 bits)

Lastly take the length of the string before processing (40 bits in this case) append that as a 64 bit integer

= ...0000101000 (length of added bits = 64)

So total length is 512 in this example

010010000110010101101100011011000110111110………0101000


Step 3A:

Break message into 512-bit chunks

Taking the example from above, since it is 512 bits, we will only have one chunk

Step 3B:

Break each chunk into 16, 32-bit words

Example:

The words would be

    W0 = 01001000011001010110110001101100
W1 = 01101111100000000000000000000000
W2-W14 = 00000000000000000000000000000000
W15 = 00000000000000000000000000101000

Step 4:

Extend the first chunk to 80 32-bit words using the function


for i from 16 to 79
     w[i] = (w[i-3] xor w[i-8] xor w[i-14] xor w[i-16]) leftrotate 1

Example:

 Using the example we have been using, the first iteration would go like this:
   w[16] = (w[16-3] xor w[16-8] xor w[16-14] xor w[16-16]) leftrotate 1
   w[16] = (w[13] xor w[8] xor w[2] xor w[0]) leftrotate 1
 The xor function will compare the bits of the two strings in in each index
and give an output based on the input of the the strings
      A        B       A xor B
      0        0    ->    0
      0        1    ->    1 
      1        0    ->    1
      1        1    ->    0
   w[13] = 00000000000000000000000000000000
    xor
   w[8]  = 00000000000000000000000000000000
    xor
   w[2]  = 00000000000000000000000000000000
    xor
   w[0]  = 01001000011001010110110001101100

         = 01001000011001010110110001101100
         
The leftrotate x function shifts each bit x times to the left. Any bits 
that are shifted past the beginning of the string are cycled back to the end of the string.
Taking the string we got, we leftrotate the string one bit
01001000011001010110110001101100
= 10010000110010101101100011011000


So, after the first iteration W16 is added to the chunk as:

W16 = 10010000110010101101100011011000
After all of the iterations, we should have a chunk of 2560 bits
(From now on we will be switching from binary representation to hex for simplicity)

Step 5A:

 Initialize The "Holding Values" for the chunk with "Hash Values"
 A = H1
 B = H2
 C = H3
 D = H4
 E = H5

Step 5B:

 For each word in the chunk, obtain an F and K value
   First 20 words:
      K = 0x5A827999
      F = (B ∧ C)∨((¬B) ∧ D)
   Next 20 words:
      K = 0x6ED9EBA1
      F = B ⊕ C ⊕ D 
   Next 20 words:
      K = 0x8F1BBCDC
      F = (B ∧ C) v (B ∧ D) v (C ∧ D)
   Last 20 words:
      K = 0xCA62C1D6
      F =  B ⊕ C ⊕ D

Example:

On the first iteration,
  K = 0x5A827999
  F = (0xEFCDAB89 ∧ 0x98BADCFE) v ((NOT 0xEFCDAB89) ∧ 0x10325476)
          (B)           (C)             (¬B)             (D)
  F = 0x32327676


Step 5C:

  Assign new "Holding Values" after every iteration

Temp = (A leftrotate 5) + F + E + K + w[i]

E = D
D = C
C = (B leftrotate 30)
B = A
A = Temp

Example:

 After iteration 1:
   Temp = (A leftrotate 5) + F + E + K + w[0]
   A leftrotate 5 = E8A4602C
   F = 32327676
   E = C3D2E1F0
   K = 5A827999
   W0 = 48656C6C
 So we assign the "Holding Values" as:
   Temp = 281919E97
   E = 10325476
   D = 98BADCFE
   C = (leftrotate 30 B) = EFCDAB89
   B = 67452301
   A = 281919E97 

Step 6:

 Add "Holding Values" to "Hash Values"
   H1 = H1 + A
   H2 = H2 + B
   H3 = H3 + C
   H4 = H4 + D
   H5 = H5 + E

Examples:

 (Assume "Holding Values" from the last step are those of the final iteration)
   H1 = 0x67452301 + 0x281919E97 = 0x2E8D6C198
   H2 = 0xEFCDAB89 + 0x67452301  = 0x15712CE8A
   H3 = 0x98BADCFE + 0xEFCDAB89  = 0x188888887
   H4 = 0x10325476 + 0x98BADCFE  = 0xA8ED3174
   H5 = 0xC3D2E1F0 + 0x10325476  = 0xD4053666


Repeat steps 5 and 6 for each chunk. After the last chunk, move on to step 7

Step 7

Complete hash by appending H values back together using:

HH = (H1 leftrotate 128) V (H2 leftrotate 96) V (H3 leftrotate 64) V (H4 leftrotate 32) V H5

Example: If these are the final hashes from iterating through all chunks

   H1 = B3099B3DF4683F306175ED806E58C04AFFE622F6
H2 = 372AE26109B3DE38C9E56BB84E9D6DE2FB28ABFB
H3 = 28F142FF30F862A2405D9232E85714C23C567E9B
H4 = 91F2DF811E4615B20F161B86FD746874FA139A6E
H5 = ABED8613F2D98B8B7166B11E2AF8EFEC08197000

Then after doing the leftrotates

   H1 leftrotate 128 = FFE622F6B3099B3DF4683F306175ED806E58C04A
   H2 leftrotate 96  = 4E9D6DE2FB28ABFB372AE26109B3DE38C9E56BB0
   H3 leftrotate 64  = 405D9232E85714C23C567E9B28F142FF30F862E0
   H4 leftrotate 32  = F2D98B8B7166B11E2AF8EFEC0819700C91F2DF90
   H5 stays the same

Finally, adding the strings together gives us:

   HH = f7ff9e8b7bb2e09b70935a5d785e0cc5d9d0abf0

Alumni Liaison

Basic linear algebra uncovers and clarifies very important geometry and algebra.

Dr. Paul Garrett