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Given an arbitrarily long number, how can I output its double? I know how to multiply small numbers together as long as the result is <10, but what about larger integers like 32984335, and doubling something like that? I don't know the right way to handle something like this.

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possible duplicate of Multiplying a 20-digit number in Brainfuck by 2? –  Greg Hewgill Jul 16 '12 at 3:55
    
Yes but he deleted that one... :-( –  Eric J. Jul 16 '12 at 4:01
    
Deleted it because it was thrown offtrack by some guy's opinion; i wanted to focus on the actual question at hand –  MyNameIsKhan Jul 16 '12 at 4:03
2  
Whoever voted to close this, it's not "too localized". Learning how to multiply with a Turing complete language that offers minimal operators is a worthwhile exercise. –  Eric J. Jul 16 '12 at 4:06
    
Anyone have any other insights on this? –  MyNameIsKhan Jul 16 '12 at 15:05
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3 Answers 3

up vote 5 down vote accepted

This is the algorithm you need to implement:

  1. Start the current count with 0;
  2. Multiply the current count by ten: this can be achieved by dupping 10 times, and then adding all dupes together;
  3. Read a digit;
  4. If it's null proceed to 8;
  5. Convert it to an actual number: this can be achieved by subtracting 48;
  6. Add it to the current count;
  7. Proceed to 2;
  8. Duplicate the current count;
  9. Adding the dupes together;
  10. Divide by ten using repeated subtraction; keep quotient and remainder;
  11. Grab the remainder;
  12. Make it a digit (add 48);
  13. Print it;
  14. Grab the quotient from 10;
  15. If it's not zero, goto 10;
  16. The end.

All these steps consists of basic brainfuck idioms, so it should be easy to implement.

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Downvoting because this isn't actually addressing the heart of the question; "multiplying by 10" in step 2 is not much different from the goal of "multiplying by 2." If I can't multiply arbitrary digits by 2, 10 is no different –  MyNameIsKhan Jul 16 '12 at 14:35
    
@AgainstASicilian: I think you are missing the point. Multiplying a number by 10 (or 2) is easy. The hard thing is the ASCII conversion. Your question is not really "how do I multiply by two" but "how do I parse an integer and how do I convert a number to base 10"? +1 from me. –  Mark Byers Aug 8 '12 at 20:50
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Here is my BF code: http://ideone.com/2Y9pk8

->>+>,+
[
    -----------
    [
        -->++++++[-<------>]<
        [->+<[->+<[->+<[->+<[>----<-<+>[->+<]]]]]]>
        [-<++>]<+
        >,+
        [
            -----------
            [->+<]
        ]
        >[-<+>]<
    ]
    <[<]
    >-[<++++++++[->++++++<]>.[-]]
    >[<++++++++[->++++++<]>-.[-]>]
    ++++++++++.[-]
    <+[-<+]
    ->>+>,+
]

It reads each number in each line until EOF, and multiply all numbers by two..

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Here's a start. It will multiply a byte of input, but I think you can build off it to make it work for any number. Basically, you take in a number, and store the number to multiply by (2) in the next pointer. You loop decrementing the first number, and then nest a loop decrementing the second number; in each iteration of the inner loop, you increment the pointer to the right of your second operand. This is your result.

,      take input to ptr 0
  [
     -     decrement first operand (input)
     >++   number to multiply by (2) at ptr 1
     [
        >+   result in ptr 2
        <-   decrement second operand (2)
     ]
     <
  ]
>>     move to result
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I already know more or less how to handle single numbers; I am trying to expand it to multiple –  MyNameIsKhan Jul 16 '12 at 4:32
    
Whoops. Misinterpreted your original statement; I didn't realize that bf input is in ASCII values, hence 0-9. –  knowah Jul 16 '12 at 5:34
    
correct, any ascii values need scaling –  MyNameIsKhan Jul 16 '12 at 13:16
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