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I hate using SO as a way to find simple functions, but I really can't find a function like this anywhere:

Given a list (1 2 3 4 5), I'd like the equivalent of (PHP's, Perl's, Python's)

$a = array(1, 2, 3, 4, 5);   
$a[3] = 100;  

Which results in (1 2 3 100 5)

Thanks!

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4  
Have you considered that if this is the kind of functionality that you want out of data structure, random re-assignment of cells, then perhaps you don't really want a list, but instead, maybe a vector? –  Will Hartung Sep 12 '11 at 0:59
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4 Answers

up vote 3 down vote accepted

You can write list-set! of Guile, like so:

(define a (list 1 2 3 4))     ; a is '(1 2 3 4)

(define (list-set! list k val)
    (if (zero? k)
        (set-car! list val)
        (list-set! (cdr list) (- k 1) val)))

(list-set! a 2 100)           ; a is '(1 2 100 4)

(Tried this in DrRacket.)

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Using standard functions without any SRFI:

(set-car! (list-tail lst k) val)
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Guile has a built-in function called list-set! that does exactly what you want, using zero-based indices. For your example, you would have:

(define a '(1 2 3 4 5))
(list-set! a 3 100)

I don't think this is standard Scheme, however, and I don't know if it's really efficient. For a fixed-length array you should probably use a vector:

(define a2 #(1 2 3 4 5))
(vector-set! a2 3 100)

I'm pretty sure this is part of the language standard.

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Normally, set! in Scheme doesn't support places. But with SRFI 17 loaded (if your implementation supports it---Guile does), you can use (set! (list-ref lst 3) 100) if you want. EDIT: Oops, that doesn't work in Guile, but (set! (caddr lst) 100) does. –  Chris Jester-Young Sep 12 '11 at 0:46
    
I think the Scheme equivalent of nth is list-ref, which unfortunately returns a value not a reference (at least in my environment) –  amindfv Sep 12 '11 at 5:06
    
Note thaht "returns a reference" is something that doesn't exist in either Scheme or Lisp. The way that CL's setf works is at the macro level, it doesn't work on some "returned reference". Same goes for srfi-17 in Scheme: it doesn't use a "returned reference", instead, it uses the set!-ed function to find a setter function. –  Eli Barzilay Sep 12 '11 at 5:54
    
@amindfv Yeah, I found list-ref but didn't include it in my edit because of exactly what you said. –  Keith Layne Sep 12 '11 at 6:20
    
@Eli You be careful, mister, or I'll take away the upvote for your answer to my only question ever on SO. Seriously, you can tell that I don't get to do much Lisp any more...thank you for correcting me. Heck, I'm lucky to get to do any reading or programming these days... –  Keith Layne Sep 12 '11 at 6:24
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I may be a bit late, but I have a different answer.

Part of the functional-program paradigm seems to be to try to avoid modifying data when possible. For efficiency reasons you may want to go with the other answers here. But otherwise, consider a non-mutating function such as this:

(define (list-with lst idx val)
  (if (null? lst)
    lst
    (cons
      (if (zero? idx)
        val
        (car lst))
      (list-with (cdr lst) (- idx 1) val))))

Which passes the following tests:

(describe "a function that returns a list with a 'changed' value"
  (it "can modify the edges of lists without having 1-off errors"
    (expect (list-with '(1 2 3 4 5) 0 99) (be equal? '(99 2 3 4 5)))
    (expect (list-with '(1 2 3 4 5) 4 99) (be equal? '(1 2 3 4 99))))
  (it "has something to do with creating new lists"
    (expect (list-with '(1 2 3 4 5) 2 99) (be equal? '(1 2 99 4 5))))
  (it "doesnt just modify the contents of the original list"
    (let ((a '(1 2 3 4 5)))
      (list-with a 2 99)
      (expect a (be equal? '(1 2 3 4 5))))))

(The code is written in Chicken Scheme and the tests with the "missbehave" library. But it seems like pretty portable Scheme.)

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