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I'm working on new data type for arbitrary length numbers (only non-negative integers) and I got stuck at implementing square root and exponentiation functions (only for natural exponents). Please help.

I store the arbitrary length number as a string, so all operations are made char by char.

Please don't include advices to use different (existing) library or other way to store the number than string. It's meant to be a programming exercise, not a real-world application, so optimization and performance are not so necessary.

If you include code in your answer, I would prefer it to be in either pseudo-code or in C++. The important thing is the algorithm, not the implementation itself.

Thanks for the help.

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2  
"I got stuck at implementing square root and exponentiation functions"? Stuck with what? Post some code or some pseudo-code for your algorithm clearly defining what you mean by "stuck". –  S.Lott Dec 25 '10 at 22:53
    
I store the arbitrary length number as a string - In what base? 10? –  Mark Byers Dec 25 '10 at 22:54
    
"I store the arbitrary length number as a string" -- Wait, wat? Not only that's a mind-boggling waste of memory (and, to an extent I cannot judge, performance potential), I also imagine this is needlessly hard to handle... –  delnan Dec 25 '10 at 22:54
    
What functions do you have already implemented? How? –  belisarius Dec 25 '10 at 22:54
1  
@tomp good luck with your exams and please note I wasn't meaning to sound harsh, just offering honest heart felt opinions and advice! –  David Heffernan Dec 25 '10 at 23:33

3 Answers 3

up vote 9 down vote accepted

Square root: Babylonian method. I.e.

function sqrt(N):
    oldguess = -1
    guess = 1
    while abs(guess-oldguess) > 1:
        oldguess = guess
        guess = (guess + N/guess) / 2
    return guess

Exponentiation: by squaring.

function exp(base, pow):
    result = 1
    bits = toBinary(powr)
    for bit in bits:
        result = result * result
        if (bit):
            result = result * base
    return result

where toBinary returns a list/array of 1s and 0s, MSB first, for instance as implemented by this Python function:

def toBinary(x):
    return map(lambda b: 1 if b == '1' else 0, bin(x)[2:])

Note that if your implementation is done using binary numbers, this can be implemented using bitwise operations without needing any extra memory. If using decimal, then you will need the extra to store the binary encoding.

However, there is a decimal version of the algorithm, which looks something like this:

function exp(base, pow):
    lookup = [1, base, base*base, base*base*base, ...] #...up to base^9
     #The above line can be optimised using exp-by-squaring if desired

    result = 1
    digits = toDecimal(powr)
    for digit in digits:
        result = result * result * lookup[digit]
    return result
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er, without floating point arithmetic, how can this work? –  David Heffernan Dec 25 '10 at 23:12
    
@David: D'oh. Fixed. Sqrt should now return the largest integer not exceeding N's square root. –  Artelius Dec 25 '10 at 23:17
    
Great answer. I've seen the squaring exponentiation once, but written in functional language, I just completely forgot about it. Also, I have never heard of the Babylonian method. Looks very interesting, thank you. –  tomp Dec 25 '10 at 23:45
    
Your interpretation of exponentation by squaring is probably wrong. At least the 1st line of the function, e.g. result = 1 should be result = base and I think the multiplication by base (on 5th line) isn't probably right either (it's not always the original base). The algorithm is easier when using recursion. –  tomp Jan 24 '11 at 16:18
    
@tomp: Whoops!! Actually, result = 1 was the only part of the function that was correct! I've updated it now. –  Artelius Jan 24 '11 at 23:21

Exponentiation is trivially implemented with multiplication - the most basic implementation is just a loop,

result = 1;    
for (int i = 0; i < power; ++i) result *= base;

You can (and should) implement a better version using squaring with divide & conquer - i.e. a^5 = a^4 * a = (a^2)^2 * a.

Square root can be found using Newton's method - you have to get an initial guess (a good one is to take a square root from the highest digit, and to multiply that by base of the digits raised to half of the original number's length), and then to refine it using division: if a is an approximation to sqrt(x), then a better approximation is (a + x / a) / 2. You should stop when the next approximation is equal to the previous one, or to x / a.

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If you have the four primitive arithmetic operators (+ - * /) implemented and tested then you should be easily able to build functions such as sqrt and pow using these. If not then you need to go back and work on these.

For example you can use Newton's Method to calculate sqrt: http://en.wikipedia.org/wiki/Newton's_method.

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Rubbish. How would you implement sqrt given + - * / ? It's not at all obvious. –  TonyK Dec 25 '10 at 23:05
    
@TonyK It's obvious to me, but then I'm a mathematician. –  David Heffernan Dec 25 '10 at 23:06
    
@Tonyk: using Newton's Method ? It's only high school math, after all. –  Paul R Dec 25 '10 at 23:06
    
I'm a mathematician too. And I've implemented sqrt for arbitrary-length integers. The important thing is to dynamically adjust the precision of your computations as you home in on the solution, so as not to waste time in the early stages. The algorithm is best expressed in 2-adic arithmetic. Like I said, it's not at all obvious. –  TonyK Dec 25 '10 at 23:15
1  
@TonyK Now you are talking rubbish. There's no need for this level of complexity in this context. A basic square root with Newton's method or Babylonian method is not hard. –  David Heffernan Dec 25 '10 at 23:22

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