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How does the system perform the 2^56 modulo 7, if it's 32 bits operating system in cryptography for example?

And how it stored in memory?

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9  
Analogy: We can only count up to 10 with our fingers (or 1023, if you use them correctly (and then only 256, if you want to use them comfortably)) but when using the same fingers to hold a pen and a sheet of paper we can handle numbers way larger than that. Substitute fingers for register and pen and sheet of paper by programming language and/or library. –  Joey Aug 22 '10 at 14:11
    
I think it's possible with my fingers :) But how exactly? And i think the right answer it's modular exponentiation –  regexp Aug 22 '10 at 14:21
    
Law of Modulus: (A+B) mod C == ((A mod C) + (B mod C)) mod C Actually, from that, you can derive everything else. –  Ian Aug 22 '10 at 14:31
    
Thank you. I find this also: Montgomery reduction. In fact exists a lot of algorithm for do a modulo with big numbers! :) en.wikipedia.org/wiki/Montgomery_reduction –  regexp Aug 22 '10 at 14:41
    
@regexp: When you say 2^56/7 do you mean "two raised to 56th power, divided by 7", or "two raised to 56th power, modulo 7"? You may want to check up on the notational convention if you want to work further in this field. –  polygenelubricants Aug 22 '10 at 15:12

8 Answers 8

up vote 16 down vote accepted

On arbitrary-precision arithmetic

A 32-bit operating system does not limit you from having custom types that exceed that size. Your application can take two 32-bit words and treat it like one 64-bit number. Most programming languages even have a "double-word" integral type to simplify matters.

You can further extend the concept to create an arbitrary precision integral data type that is only bound by the amount of limited memory. Essentially you have an array of words, and you store your N-bit numbers in the bits of the words of this array.

The fact that it's a 32-bit operating system does not by itself limit the numeric computation that you can do. A Java long, for example, is a 64-bit integral type, regardless of where it's running. For an arbitrary precision, java.math.BigInteger ups the ante and provides "infinite word size" abstraction. And yes, this "feature" is available even in 32-bit operating systems (because that was never a limiting factor to begin with).

See also


On mathematics on the ring of integers

Finding modular multiplicative inverse or modular exponentiation is a common mathematical/algorithmic task in the fields of cryptography.

One identity that you may want to use here is the following:

A * B (mod M) == (A (mod M)) * (B (mod M)) (mod M)

To find x = 256 (mod 7), you do NOT have to first compute and store 256. If you have y = 255 (mod 7) -- a number between 0..6 -- you can find x = y * 2 (mod 7).

But how do you find y = 255 (mod 7)? Well, one naive way is to apply the process linearly and first try to find z = 254 (mod 7) and so on. This is a linear exponentiation, but you can do better by performing e.g. exponentiation by squaring.

That is, if you have say 28, you can square it to immmediately get 216. You can then square that to immediately get 232.


Summary

There are many sophisticated mathematical algorithms applicable to cryptography, and whether or not it's implemented in a program running on a 32-bit or a 64-bit operating system is not directly relevant. As long as enough memory is available, the computer is more than capable of performing arbitrary-precision arithmetic.

Precisely because arbitrary-precision arithmetic is a useful abstraction, many high-performance libraries are available, so that you can build your application on top of a pre-existing framework instead of having to build from the ground up.

Some high-level languages even have arbitrary-precision arithmetic built-in. Python, for example, provides arbitrary precision int and long at the language level.

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Ok, and how it's work when it's more then 64 bit? For example 2^256/4 –  regexp Aug 22 '10 at 14:23
    
Thank you for this detailed answer! –  regexp Aug 22 '10 at 14:50
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@regexp: read the Wikipedia page about arbitrary-precision arithmetics. Abstract out the mathematics from the implementation. I think you're confusing the two for some reason. First you have to accept that 32-bit OSes can compute 2^100 if need be. Once you accept this abstraction, you can then concentrate on the mathematical/algorithmic aspects with regards to cryptography application. –  polygenelubricants Aug 22 '10 at 14:50
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@regexp: 2^256 mod 4 is 0. I can do that without even calculating anything. Again, distinguish the math from the 32-bit/64-bit issue. They're not directly related. –  polygenelubricants Aug 22 '10 at 15:01
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Fantastic answer. Thank you for taking the time to be so informative :) –  HXCaine Aug 22 '10 at 15:11
2**56 == 2**(28+28) == 2**28 * 2**28 == (2**28)**2
2**28 == 2**(14+14) == 2**14 * 2**14 == (2**14)**2
2**14 == 2**(7+7) == 2**7 * 2**7 == (2**7)**2
2**7 == 2**(3+3 +1) == 2**3 * 2**3 * 2 == (2**3)**2 * 2
2**3 == 2**(1+1 +1) == 2**1 * 2**1 * 2 == (2**1)**2 * 2

2**56 == (2**28)**2 == ((2**14)**2)**2 == (((2**7)**2)**2)**2
== (((2*(2**3)**2)**2)**2)**2 == (((2*(2*(2**1)**2)**2)**2)**2)**2

2**56 %7
== (((2*(2*(2**1)**2)**2)**2)**2)**2 %7
== (((2*(2*(2**1 %7)**2 %7)**2 %7)**2 %7)**2 %7)**2 %7
== (((2*(2*(2)**2 %7)**2 %7)**2 %7)**2 %7)**2 %7
== (((2*(2*4 %7)**2 %7)**2 %7)**2 %7)**2 %7
== (((2*(1)**2 %7)**2 %7)**2 %7)**2 %7
== (((2 %7)**2 %7)**2 %7)**2 %7
== ((2**2 %7)**2 %7)**2 %7
== ((4)**2 %7)**2 %7
== (16 %7)**2 %7
== (2)**2 %7
== 4 %7
== 4

so (2**56) % 7 == 4

You'll note that we never dealt with any large numbers (indeed the largest was 56).

Furthermore:

2**224 %7 == (2**56)**4 %7 == (4*4*4*4) %7 ==
((16%7) * (16%7)) %7 == (2*2) %7 == 4 %7 == 4

And thus also 2**896 %7 = 4, etc (since 896 = 4 * 224, where 224 = 4 * 56).

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Modular exponentiation algorithms are used for this kind of operation. This Wikipedia article tells how it is done: http://en.wikipedia.org/wiki/Modular_exponentiation

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Thank you, i think it's what i mean! –  regexp Aug 22 '10 at 14:09

Generally, if you know your numbers are going to get very big, you'll use a library like GMP (Gnu Multi-Precision) to handle the math. It does what you'd do on paper if you had 2^32 fingers on you hands.

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Thank you :) I will try the GMP –  regexp Aug 22 '10 at 14:45
    
You don't need anything more than 16-bit arithmetic to compute 2^56 mod 7. See @polygenelubricant's answer. –  GregS Aug 23 '10 at 2:19

Which system? Which architecture?

Generally speaking on a 32-bit architecture, you are getting overflow results. Some languages have built-in, arbitrarily big, numeral types which can handle these calculations. Examples of this are BigDecimal in Java, and the built-in long ints in Python.

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I mean 32 bits system. I suppose it's can store and operate only with number 2^32 or not? –  regexp Aug 22 '10 at 14:06
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32-bit systems typically can store and operate with 32-bit numbers for one operation. If you want to manipulate larger numbers, you simply do it in several operations (see other answers for references). –  Pascal Cuoq Aug 22 '10 at 14:09
    
But division it's a one operation? Or the system always try do this in several times? –  regexp Aug 22 '10 at 14:15

One uses that (a * b) mod c = ((a mod c) * (b mod c)) mod c. That means that you can basically do

  1. start with x=1
  2. Do x = (x*2)%7 56 times
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1  
You don't want to do this with crypto, though, where in a^b (mod m) each number is thousands of bits long ;-) –  Joey Aug 22 '10 at 14:12
    
@Joey: One definitely uses that identity, though one also uses a^(b+c) = (a^b)*(a^c) and a^(b*c)=(a^b)^c. –  supercat Aug 22 '10 at 17:50

I think your terminology is a bit confused.

A 32 bit operating system or 32-bit architecture is one in which machine addresses are limited to 32 bits. It is not at all unusual for a 32 bit architecture to have arithmetic instructions that operate on 64 bit integers and / or 64 bit floating point numbers.

So, it is quite likely that a machine with a 32 bit architecture (and running a 32 bit operating system) would use 64 bit arithmetic and store the result in memory as a 64 bit long or long long using 2 consecutive 32 bit words.

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too add to other answers which do a good explanation of a 32 int and modular multiplicative inverse and what not

I'll explain what a the 32 bit CPU is

32 bit CPUs as most people know them as, is related to the Address bus size this is that the amount of addresses available so for example on a x86 (your common desktop CPU [AMD, Intel]) processor this allows 2^32 bytes of address space or 4GB this is usually split between the the addressable hardware and the RAM, so the reason for actually implementing a 64 bit Processor was because we were coming closer too the 4GB of RAM limit

as a side note this has previously happened when CPU's were 16bit

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