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Novice question: how would you write this in racket?

10x - 6 = 3x + 7

I am having a hard time trying to figure out where would I put the = 3x + 7.

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2  
The thing you have described does not look like a function. That is, there's no clear input-output relationship described by 10x - 6 = 3x + 7. Other answers are trying to infer one, but I'd rather we don't guess. Can you rephrase the above so that there is an input-output relationship? –  dyoo Jan 22 '13 at 17:22

2 Answers 2

up vote 2 down vote accepted

Try this:

(= (- (* 10 x) 6)
   (+ (*  3 x) 7))

Of course, assuming that a value has been assigned previously to the x variable. Now, if the expression is to be evaluated as part of a function (as suggested by the title), then do this:

(define (test x)
  (= (- (* 10 x) 6)
     (+ (*  3 x) 7)))
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1  
works great. thanks –  Kevin R. Jan 22 '13 at 17:21

Mathmatical conventions of precedence group that statement like so:

((10 * x) - 6) = ((3 * x) + 7)

In math we write operators in the middle of an expression: foo OP bar, but in Racket, the operator comes first: (OP foo bar). So if you just shuffle each expression around to match the Racket way, you get:

((10 * x) - 6) = ((3 * x) + 7)   ;=> swap = and (10x - 6)
(= ((10 * x) - 6) ((3 * x) + 7)) ;=> swap - and 10x
(= (- (10 * x) 6) ((3 * x) + 7)) ;=> swap * and 10
(= (- (* 10 x) 6) ((3 * x) + 7)) ;=> swap + and 3x
(= (- (* 10 x) 6) (+ (3 * x) 7)) ;=> swap * and 3

(= (- (* 10 x) 6) (+ (* 3 x) 7)) ;=> done

Now that we've rearranged the expressions so the operators come first, we have a valid Racket expression.

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