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I am trying to make a function that takes 2 numbers and will create a list using the first number as a starting number and the second number as the ending value while filling in the values between the starting and ending numbers.

For example:

User passes in 3 and 7:

the output should be (3 4 5 6)

I was trying to do this and use recursion but I am struggling:

 (define (createlist start end)
   (if(= start end)
      '())
   (cons start '())
    (createlist (+ 1 start) end))
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1  
Use cons and work backwards -- build it up from the tail. Also, need to call the function again to make it recursive. –  user166390 Oct 4 '12 at 3:36

2 Answers 2

up vote 4 down vote accepted

There's a repeating pattern found in the solution to this sort of problems where you have to build a list along the way using recursion. Let me illustrate the general steps, I'll let you fill-in the blanks:

(define (createlist start end)
  (if (= <???> <???>) ; the problem is solved when start and end are the same
      '()             ; lists end in null
      (cons <???>  ; if we are not done yet, we `cons` the current value of start
            (createlist <???> end)))) ; with the result of calling the recursion
            ; notice that start is one step closer to the end, so we increment it

The idea of the algorithm is that at each step we add the current start value to the list that is being built with cons, and increment start until it reaches end, at this point the recursion ends.

You should take a look at either The Little Schemer or How to Design Programs, both books will teach you how to structure the solution for this kind of recursive problems over lists.

UPDATE:

Now that you've posted the code you've written so far, I can show you the right answer. Please be very careful with parenthesis [ the closing parenthesis of an if goes after the else part ] and white spaces [ if( is not the same as if ( ], they matter a lot in Scheme. Also indent correctly your code, it'll help you find a lot of bugs:

(define (createlist start end)
  (if (= start end)
      '()
      (cons start
            (createlist (+ 1 start) end))))

Now you can see how the <???> get correctly filled.

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where is it creating the list? –  cougar Oct 4 '12 at 3:44
    
@cougar successive calls to cons create a list. for example this: (cons 1 (cons 2 '())) creates the list '(1 2), notice that a list must end in '(), the null list. –  Óscar López Oct 4 '12 at 3:47
    
ok that makes sense. And i am gonna want to increment start in the bottom code right? –  cougar Oct 4 '12 at 3:58
    
That's right, you're on the right track to understand and solve it now! –  Óscar López Oct 4 '12 at 4:00
1  
dang, thank you soo much for your help! :) –  cougar Oct 4 '12 at 4:21

Here are a few suggestions (without trying to give away the entire solution):

  • use cons instead of append

  • use indentation to show the structure of your program

  • the if doesn't have an else value -- I suspect you meant for the last line to be it -- you'll have to rearrange the parenthesis. Also, common style frowns upon if( and list( -- use if ( and list ( instead (note the spaces). Example:

    (define (my-function a b c)
      (if (= a 3)   ;; note the space between if and (
          b         ;; the 'then' line
          c))       ;; the 'else' line
    
  • if you're recursing, you'll have to call createlist from within its body. Did you mean for the second list to be createlist? Remember that it takes 2 parameters

  • if you don't want infinite recursion, make sure to change the arguments so that they're closer to finishing. In other words, you don't want to recurse with the same values of start and end. Which one should you change, and in what way?

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I was thinking i could just keep incrementing the start value –  cougar Oct 4 '12 at 3:24
    
how could i use cons to add an item to the end of a list? –  cougar Oct 4 '12 at 3:27
1  
So, you have '(a b c) and you want to add 'd? If you don't mind ending up with '((a b c) d), the answer is simple. If you want '(a b c d) as a result, then the answer (once again) involves recursion. So think about it a little bit and come back with a brand new question, illustrating your thinking ;) –  itsbruce Oct 4 '12 at 7:42

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