parser.cljs has been replaced with parser.cljc.
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;; (ns ^:figwheel-always mw3.parser
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;; (:use mw-engine.utils
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;; [clojure.string :only [split trim triml]])
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;; (:require [instaparse.core :as insta]))
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;; ;; error thrown when an attempt is made to set a reserved property
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;; (def reserved-properties-error
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;; "The properties 'x' and 'y' of a cell are reserved and should not be set in rule actions")
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;; ;; error thrown when a rule cannot be parsed. Slots are for
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;; ;; (1) rule text
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;; ;; (2) cursor showing where in the rule text the error occurred
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;; ;; (3) the reason for the error
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;; (def bad-parse-error "I did not understand:\n'%s'\n%s\n%s")
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;; (def grammar
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;; ;; in order to simplify translation into other natural languages, all
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;; ;; TOKENS within the parser should be unambiguous
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;; "RULE := IF SPACE CONDITIONS SPACE THEN SPACE ACTIONS;
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;; CONDITIONS := DISJUNCT-CONDITION | CONJUNCT-CONDITION | PROPERTY-CONDITION | NEIGHBOURS-CONDITION ;
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;; DISJUNCT-CONDITION := CONDITION SPACE OR SPACE CONDITIONS;
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;; CONJUNCT-CONDITION := CONDITION SPACE AND SPACE CONDITIONS;
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;; CONDITION := NEIGHBOURS-CONDITION | PROPERTY-CONDITION;
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;; WITHIN-CONDITION := NEIGHBOURS-CONDITION SPACE WITHIN SPACE NUMERIC-EXPRESSION;
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;; NEIGHBOURS-CONDITION := WITHIN-CONDITION | QUANTIFIER SPACE NEIGHBOURS SPACE IS SPACE PROPERTY-CONDITION | QUANTIFIER SPACE NEIGHBOURS IS EXPRESSION | QUALIFIER SPACE NEIGHBOURS-CONDITION;
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;; PROPERTY-CONDITION := PROPERTY SPACE QUALIFIER SPACE EXPRESSION;
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;; EXPRESSION := SIMPLE-EXPRESSION | RANGE-EXPRESSION | NUMERIC-EXPRESSION | DISJUNCT-EXPRESSION | VALUE;
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;; SIMPLE-EXPRESSION := QUALIFIER SPACE EXPRESSION | VALUE;
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;; DISJUNCT-EXPRESSION := IN SPACE DISJUNCT-VALUE;
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;; RANGE-EXPRESSION := BETWEEN SPACE NUMERIC-EXPRESSION SPACE AND SPACE NUMERIC-EXPRESSION;
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;; NUMERIC-EXPRESSION := VALUE | VALUE SPACE OPERATOR SPACE NUMERIC-EXPRESSION;
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;; NEGATED-QUALIFIER := QUALIFIER SPACE NOT | NOT SPACE QUALIFIER;
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;; COMPARATIVE-QUALIFIER := IS SPACE COMPARATIVE SPACE THAN;
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;; QUALIFIER := COMPARATIVE-QUALIFIER | NEGATED-QUALIFIER | EQUIVALENCE | IS SPACE QUALIFIER;
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;; QUANTIFIER := NUMBER | SOME | NONE | ALL | COMPARATIVE SPACE THAN SPACE NUMBER;
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;; EQUIVALENCE := IS SPACE EQUAL | EQUAL | IS ;
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;; COMPARATIVE := MORE | LESS;
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;; DISJUNCT-VALUE := VALUE | VALUE SPACE OR SPACE DISJUNCT-VALUE;
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;; IF := 'if';
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;; THEN := 'then';
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;; THAN := 'than';
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;; OR := 'or';
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;; NOT := 'not';
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;; AND := 'and';
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;; SOME := 'some';
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;; NONE := 'no';
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;; ALL := 'all'
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;; BETWEEN := 'between';
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;; WITHIN := 'within';
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;; IN := 'in';
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;; MORE := 'more';
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;; LESS := 'less' | 'fewer';
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;; OPERATOR := '+' | '-' | '*' | '/';
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;; NEIGHBOURS := 'neighbour' | 'neighbor' | 'neighbours' | 'neighbors';
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;; PROPERTY := SYMBOL;
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;; VALUE := SYMBOL | NUMBER;
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;; EQUAL := 'equal to';
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;; IS := 'is' | 'are' | 'have' | 'has';
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;; NUMBER := #'[0-9]+' | #'[0-9]+.[0-9]+';
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;; SYMBOL := #'[a-z]+';
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;; ACTIONS := ACTION | ACTION SPACE 'and' SPACE ACTIONS
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;; ACTION := SIMPLE-ACTION | PROBABLE-ACTION;
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;; PROBABLE-ACTION := VALUE SPACE 'chance in' SPACE VALUE SPACE SIMPLE-ACTION;
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;; SIMPLE-ACTION := SYMBOL SPACE BECOMES SPACE EXPRESSION
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;; BECOMES := 'should be'
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;; SPACE := #' *'"
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;; )
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;; (defn TODO
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;; "Marker to indicate I'm not yet finished!"
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;; [message]
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;; message)
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;; (declare generate simplify)
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;; (defn suitable-fragment?
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;; "Return `true` if `tree-fragment` appears to be a tree fragment of the expected `type`."
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;; [tree-fragment type]
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;; (and (coll? tree-fragment)(= (first tree-fragment) type)))
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;; (defn assert-type
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;; "If `tree-fragment` is not a tree fragment of the expected `type`, throw an exception."
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;; [tree-fragment type]
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;; (assert (suitable-fragment? tree-fragment type)
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;; (throw (Exception. (format "Expected a %s fragment" type)))))
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;; (defn generate-rule
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;; "From this `tree`, assumed to be a syntactically correct rule specification,
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;; generate and return the appropriate rule as a function of two arguments."
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;; [tree]
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;; (assert-type tree :RULE)
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;; (list 'fn ['cell 'world] (list 'if (generate (nth tree 2)) (generate (nth tree 3)))))
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;; (defn generate-conditions
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;; "From this `tree`, assumed to be a syntactically correct conditions clause,
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;; generate and return the appropriate clojure fragment."
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;; [tree]
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;; (assert-type tree :CONDITIONS)
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;; (generate (nth tree 1)))
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;; (defn generate-condition
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;; [tree]
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;; (assert-type tree :CONDITION)
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;; (generate (nth tree 1)))
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;; (defn generate-conjunct-condition
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;; [tree]
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;; (assert-type tree :CONJUNCT-CONDITION)
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;; (list 'and (generate (nth tree 1))(generate (nth tree 3))))
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;; (defn generate-disjunct-condition
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;; [tree]
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;; (assert-type tree :DISJUNCT-CONDITION)
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;; (list 'or (generate (nth tree 1))(generate (nth tree 3))))
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;; (defn generate-ranged-property-condition
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;; "Generate a property condition where the expression is a numeric range"
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;; [tree property expression]
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;; (assert-type tree :PROPERTY-CONDITION)
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;; (assert-type (nth tree 3) :RANGE-EXPRESSION)
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;; (let [l1 (generate (nth expression 2))
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;; l2 (generate (nth expression 4))
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;; pv (list property 'cell)]
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;; (list 'let ['lower (list 'min l1 l2)
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;; 'upper (list 'max l1 l2)]
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;; (list 'and (list '>= pv 'lower)(list '<= pv 'upper)))))
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;; (defn generate-disjunct-condition
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;; "Generate a property condition where the expression is a disjunct expression"
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;; [tree property qualifier expression]
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;; (let [e (list 'some (list 'fn ['i] '(= i value)) (list 'quote expression))]
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;; (list 'let ['value (list property 'cell)]
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;; (if (= qualifier '=) e
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;; (list 'not e)))))
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;; (defn generate-property-condition
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;; ([tree]
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;; (assert-type tree :PROPERTY-CONDITION)
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;; (generate-property-condition tree (first (nth tree 3))))
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;; ([tree expression-type]
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;; (assert-type tree :PROPERTY-CONDITION)
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;; (let [property (generate (nth tree 1))
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;; qualifier (generate (nth tree 2))
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;; expression (generate (nth tree 3))]
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;; (case expression-type
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;; :DISJUNCT-EXPRESSION (generate-disjunct-condition tree property qualifier expression)
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;; :RANGE-EXPRESSION (generate-ranged-property-condition tree property expression)
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;; (list qualifier (list property 'cell) expression)))))
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;; (defn generate-simple-action
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;; [tree]
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;; (assert-type tree :SIMPLE-ACTION)
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;; (let [property (generate (nth tree 1))
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;; expression (generate (nth tree 3))]
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;; (if (or (= property :x) (= property :y))
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;; (throw (Exception. reserved-properties-error))
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;; (list 'merge 'cell {property expression}))))
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;; (defn generate-multiple-actions
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;; [tree]
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;; nil)
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;; ;; (assert (and (coll? tree)(= (first tree) :ACTIONS)) "Expected an ACTIONS fragment")
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;; ;; (conj 'do (map
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;; (defn generate-disjunct-value
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;; "Generate a disjunct value. Essentially what we need here is to generate a
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;; flat list of values, since the `member` has already been taken care of."
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;; [tree]
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;; (assert-type tree :DISJUNCT-VALUE)
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;; (if (= (count tree) 4)
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;; (cons (generate (second tree)) (generate (nth tree 3)))
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;; (list (generate (second tree)))))
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;; (defn generate-numeric-expression
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;; [tree]
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;; (assert-type tree :NUMERIC-EXPRESSION)
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;; (case (first (second tree))
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;; :SYMBOL (list (keyword (second (second tree))) 'cell)
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;; (generate (second tree))))
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;; (defn generate-neighbours-condition
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;; "Generate code for a condition which refers to neighbours."
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;; ([tree]
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;; (generate-neighbours-condition tree (first (second tree))))
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;; ([tree quantifier-type]
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;; (let [quantifier (second (second tree))
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;; pc (generate (nth tree 4))]
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;; (case quantifier-type
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;; :NUMBER (generate-neighbours-condition '= (read-string quantifier) pc 1)
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;; :SOME (generate-neighbours-condition '> 0 pc 1)
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;; :QUANTIFIER
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;; (let [comparative (generate (simplify (second quantifier)))
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;; value (simplify (nth quantifier 5))]
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;; (generate-neighbours-condition comparative value pc 1)))))
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;; ([comp1 quantity property-condition distance]
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;; (list comp1
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;; (list 'count (list 'remove false (list 'map (list 'fn ['cell] property-condition) '(get-neighbours cell world distance)))) quantity))
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;; ([comp1 quantity property-condition]
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;; (generate-neighbours-condition comp1 quantity property-condition 1)))
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;; ;; (def s1 "if 3 neighbours have state equal to forest then state should be forest")
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;; ;; (def s2 "if some neighbours have state equal to forest then state should be forest")
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;; ;; (def s3 "if more than 3 neighbours have state equal to forest then state should be forest")
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;; ;; (def s4 "if fewer than 3 neighbours have state equal to forest then state should be forest")
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;; ;; (def s5 "if all neighbours have state equal to forest then state should be forest")
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;; ;; (def s6 "if more than 3 neighbours within 2 have state equal to forest then state should be forest")
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;; ;; (nth (simplify (parse-rule s1)) 2)
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;; ;; (second (nth (simplify (parse-rule s1)) 2))
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;; ;; (nth (simplify (parse-rule s2)) 2)
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;; ;; (map simplify (nth (simplify (parse-rule s2)) 2))
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;; ;; ;; (second (nth (simplify (parse-rule s2)) 2))
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;; ;; ;; (nth (simplify (parse-rule s3)) 2)
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;; ;; (second (nth (simplify (parse-rule s3)) 2))
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;; ;; (map simplify (second (nth (simplify (parse-rule s3)) 2)))
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;; ;; ;; (nth (simplify (parse-rule s4)) 2)
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;; ;; ;; (second (nth (simplify (parse-rule s4)) 2))
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;; ;; ;; (nth (simplify (parse-rule s5)) 2)
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;; ;; ;; (second (nth (simplify (parse-rule s5)) 2))
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;; ;; ;; (nth (simplify (parse-rule s6)) 2)
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;; ;; ;; (second (nth (simplify (parse-rule s6)) 2))
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;; ;; ;; (generate (nth (nth (simplify (parse-rule s5)) 2) 4))
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;; ;; ;; (generate (nth (simplify (parse-rule s2)) 2))
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;; ;; ;; (generate (nth (simplify (parse-rule s1)) 2))
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;; ;; (generate-neighbours-condition '= 3 '(= (:state cell) :forest) 1)
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;; ;; (generate-neighbours-condition (nth (simplify (parse-rule s3)) 2))
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;; ;; (generate-neighbours-condition (nth (simplify (parse-rule s2)) 2))
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;; ;; (generate-neighbours-condition (nth (simplify (parse-rule s1)) 2))
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;; (defn generate
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;; "Generate code for this (fragment of a) parse tree"
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;; [tree]
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;; (if
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;; (coll? tree)
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;; (case (first tree)
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;; :ACTIONS (generate-multiple-actions tree)
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;; :COMPARATIVE (generate (second tree))
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;; :COMPARATIVE-QUALIFIER (generate (nth tree 2))
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;; :CONDITION (generate-condition tree)
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;; :CONDITIONS (generate-conditions tree)
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;; :CONJUNCT-CONDITION (generate-conjunct-condition tree)
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;; :DISJUNCT-CONDITION (generate-disjunct-condition tree)
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;; :DISJUNCT-EXPRESSION (generate (nth tree 2))
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;; :DISJUNCT-VALUE (generate-disjunct-value tree)
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;; :EQUIVALENCE '=
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;; :EXPRESSION (generate (second tree))
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;; :LESS '<
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;; :MORE '>
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;; :NEGATED-QUALIFIER (case (generate (second tree))
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;; = 'not=
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;; > '<
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;; < '>)
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;; :NEIGHBOURS-CONDITION (generate-neighbours-condition tree)
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;; :NUMERIC-EXPRESSION (generate-numeric-expression tree)
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;; :NUMBER (read-string (second tree))
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;; :PROPERTY (list (generate (second tree)) 'cell) ;; dubious - may not be right
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;; :PROPERTY-CONDITION (generate-property-condition tree)
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;; :QUALIFIER (generate (second tree))
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;; :RULE (generate-rule tree)
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;; :SIMPLE-ACTION (generate-simple-action tree)
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;; :SYMBOL (keyword (second tree))
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;; :VALUE (generate (second tree))
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;; (map generate tree))
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;; tree))
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;; (defn simplify-qualifier
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;; "Given that this `tree` fragment represents a qualifier, what
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;; qualifier is that?"
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;; [tree]
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;; (cond
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;; (empty? tree) nil
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;; (and (coll? tree)
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;; (member? (first tree) '(:EQUIVALENCE :COMPARATIVE))) tree
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;; (coll? (first tree)) (or (simplify-qualifier (first tree))
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;; (simplify-qualifier (rest tree)))
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;; (coll? tree) (simplify-qualifier (rest tree))
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;; true tree))
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;; (defn simplify-second-of-two
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;; "There are a number of possible simplifications such that if the `tree` has
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;; only two elements, the second is semantically sufficient."
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;; [tree]
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;; (if (= (count tree) 2) (simplify (nth tree 1)) tree))
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;; (defn rule?
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;; "Return true if the argument appears to be a parsed rule tree, else false."
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;; [maybe-rule]
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;; (and (coll? maybe-rule) (= (first maybe-rule) :RULE)))
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;; (defn simplify
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;; "Simplify/canonicalise this `tree`. Opportunistically replace complex fragments with
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;; semantically identical simpler fragments"
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;; [tree]
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;; (if
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;; (coll? tree)
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;; (case (first tree)
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;; :ACTION (simplify-second-of-two tree)
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;; :ACTIONS (simplify-second-of-two tree)
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;; :COMPARATIVE (simplify-second-of-two tree)
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;; :CONDITION (simplify-second-of-two tree)
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;; :CONDITIONS (simplify-second-of-two tree)
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;; :EXPRESSION (simplify-second-of-two tree)
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;; ;; :QUANTIFIER (simplify-second-of-two tree)
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;; :NOT nil
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;; :PROPERTY (simplify-second-of-two tree)
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;; :SPACE nil
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;; :THEN nil
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;; ;; :QUALIFIER (simplify-qualifier tree)
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;; :VALUE (simplify-second-of-two tree)
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;; (remove nil? (map simplify tree)))
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;; tree))
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;; (def parse-rule
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;; "Parse the argument, assumed to be a string in the correct syntax, and return a parse tree."
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;; (insta/parser grammar))
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;; (defn explain-parse-error-reason
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;; "Attempt to explain the reason for the parse error."
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;; [reason]
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;; (str "Expecting one of (" (apply str (map #(str (:expecting %) " ") (first reason))) ")"))
|
|
||||||
|
|
||||||
;; (defn throw-parse-exception
|
|
||||||
;; "Construct a helpful error message from this `parser-error`, and throw an exception with that message."
|
|
||||||
;; [parser-error]
|
|
||||||
;; (assert (coll? parser-error) "Expected a paser error structure?")
|
|
||||||
;; (let
|
|
||||||
;; [
|
|
||||||
;; ;; the error structure is a list, such that each element is a list of two items, and
|
|
||||||
;; ;; the first element in each sublist is a keyword. Easier to work with it as a map
|
|
||||||
;; error-map (reduce (fn [map item](merge map {(first item)(rest item)})) {} parser-error)
|
|
||||||
;; text (first (:text error-map))
|
|
||||||
;; reason (explain-parse-error-reason (:reason error-map))
|
|
||||||
;; ;; rules have only one line, by definition; we're interested in the column
|
|
||||||
;; column (if (:column error-map)(first (:column error-map)) 0)
|
|
||||||
;; ;; create a cursor to point to that column
|
|
||||||
;; cursor (apply str (reverse (conj (repeat column " ") "^")))
|
|
||||||
;; message (format bad-parse-error text cursor reason)
|
|
||||||
;; ]
|
|
||||||
;; (throw (Exception. message))))
|
|
||||||
|
|
||||||
;; (defn compile-rule
|
|
||||||
;; "Compile this `rule`, assumed to be a string with appropriate syntax, into a function of two arguments,
|
|
||||||
;; a `cell` and a `world`, having the same semantics."
|
|
||||||
;; [rule]
|
|
||||||
;; (assert (string? rule))
|
|
||||||
;; (let [tree (simplify (parse-rule rule))]
|
|
||||||
;; (if (rule? tree) (eval (generate tree))
|
|
||||||
;; (throw-parse-exception tree))))
|
|
||||||
|
|
||||||
|
|
Loading…
Reference in a new issue