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Initial commit of base functionality for compare
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@ -667,6 +667,66 @@
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[xs]
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(get xs (- (length xs) 1)))
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## Polymorphic comparisons
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(defn compare-primitive
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"Compare x and y using primitive operators.
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Returns -1,0,1 for x < y, x = y, x > y respectively.
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Present mostly for constructing 'compare' methods in prototypes."
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[x y]
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(cond
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(= x y) 0
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(< x y) -1
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(> x y) 1))
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(defn compare
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"Polymorphic compare. Returns -1,0,1 for x < y, x = y, x > y respectively.
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Differs from the primitive comparators in that it first checks to
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see whether either x or y implement a 'compare' method which can
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compare x and y. If so it uses that compare method. If not, it
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delegates to the primitive comparators."
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[x y]
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(or
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(when-let [f (get x :compare)] (f x y))
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(when-let [f (get y :compare)
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fyx (f y x)] (- fyx))
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(compare-primitive x y)))
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(defn compare-reduce- [op & xs]
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(var r true)
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(loop [i :range [0 (- (length xs) 1)]
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c (compare (xs i) (xs (+ i 1)))
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ok (op c 0)
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:when (not ok)]
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(set r false)
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(break))
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r)
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(defn compare=
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"Equivalent of '=' but using compare function instead of primitive comparator"
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[& xs]
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(compare-reduce := xs))
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(defn compare<
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"Equivalent of '<' but using compare function instead of primitive comparator"
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[& xs]
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(compare-reduce :< xs))
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(defn compare<=
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"Equivalent of '<=' but using compare function instead of primitive comparator"
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[& xs]
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(compare-reduce :<= xs))
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(defn compare>
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"Equivalent of '>' but using compare function instead of primitive comparator"
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[& xs]
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(compare-reduce :> xs))
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(defn compare>=
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"Equivalent of '>=' but using compare function instead of primitive comparator"
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[& xs]
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(compare-reduce :>= xs))
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###
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###
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### Indexed Combinators
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@ -334,5 +334,52 @@
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(assert (deep= @{:a 3 :b 2} @{:a 1 :b 2 :a 3}) "table literal duplicate keys")
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(assert (deep= @{:a 3 :b 2} (table :a 1 :b 2 :a 3)) "table constructor duplicate keys")
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## Polymorphic comparison -- Issue #272
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# confirm delegation to primitive comparators:
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(assert (= 0 (compare 1 1)) "compare integers (1)")
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(assert (< 0 (compare 1 2)) "compare integers (2)")
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(assert (> 0 (compare "foo" "bar")) "compare strings (1)")
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(assert (compare< 1 2 3 4 5 6) "compare less than integers")
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(assert (compare< 1.0 2.0 3.0 4.0 5.0 6.0) "compare less than reals")
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(assert (compare> 6 5 4 3 2 1) "compare greater than integers")
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(assert (compare> 6.0 5.0 4.0 3.0 2.0 1.0) "compare greater than reals")
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(assert (compare<= 1 2 3 3 4 5 6) "compare less than or equal to integers")
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(assert (compare<= 1.0 2.0 3.0 3.0 4.0 5.0 6.0) "compare less than or equal to reals")
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(assert (compare>= 6 5 4 4 3 2 1) "compare greater than or equal to integers")
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(assert (compare>= 6.0 5.0 4.0 4.0 3.0 2.0 1.0) "compare greater than or equal to reals")
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(assert (compare< 1.0 nil false true
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(fiber/new (fn [] 1))
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"hi"
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(quote hello)
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:hello
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(array 1 2 3)
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(tuple 1 2 3)
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(table "a" "b" "c" "d")
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(struct 1 2 3 4)
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(buffer "hi")
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(fn [x] (+ x x))
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print) "compare type ordering")
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# test polymorphic
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(def mynum
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@{:type :mynum :v 0 :compare
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(fn [self other]
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(case (type other)
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:number (compare-primitive (self :v) other))
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:table (when (= (get self :type) :mynum)
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(compare-primitive (self :v) (other :v))))})
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(let [n3 (table/setproto @{:v 3} mynum)]
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(assert (= 0 (compare 3 n3)) "compare num to object (1)")
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(assert (< 0 (compare n3 4)) "compare object to num (2)")
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(assert (> 0 (compare (table/setproto @{:v 4} mynum) n3)) "compare object to object")
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(assert (compare< 2 n3 4) "compare< poly")
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(assert (compare> 4 n3 2) "compare> poly")
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(assert (compare<= 2 3 n3 4) "compare<= poly")
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(assert (compare= 3 n3 (table/setproto @{:v 3} mynum)) "compare= poly")
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(assert (deep= (sorted [4 5 n3 2] compare<) @[2 n3 4 5])))
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(end-suite)
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