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I am a beginner in Clojure, and I have a simple question

Lets say i have a List, composed of Maps. Each Map has a :name and :age

My code is:

(def Person {:nom rob :age 31 } )
(def Persontwo {:nom sam :age 80 } )
(def Persontthree {:nom jim :age 21 } )
(def mylist (list Person Persontwo Personthree))

Now how do i traverse the list. Let's say for example, that i have a given :name. How do i traverse the list to see if any of the Maps :name matches my :name. And then if there is a map that matches, how do i get the index position of that map?

-Thank you

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Have you seen Programming Clojure? It's a great book for learning clojure. pragprog.com/titles/shcloj/programming-clojure –  seth Jul 14 '09 at 5:26
    
Do you actually need the index? Keep in mind that indexing a linked list is an inefficient operation - O(N) for one index, so if you do that in a loop for all elements, it'll be O(N^2). Maybe you would prefer to get the matching map itself? –  Pavel Minaev Jul 14 '09 at 7:22

6 Answers 6

up vote 2 down vote accepted
(defn find-person-by-name [name people] 
   (let
      [person (first (filter (fn [person] (= (get person :nom) name)) people))]
      (print (get person :nom))
      (print (get person :age))))

EDIT: the above was the answer to the question as it was before question was edited; here's the updated one - filter and map were starting to get messy, so I rewrote it from scratch using loop:

; returns 0-based index of item with matching name, or nil if no such item found
(defn person-index-by-name [name people] 
    (loop [i 0 [p & rest] people]
        (cond
            (nil? p)
                nil
            (= (get p :nom) name) 
                i
            :else
                (recur (inc i) rest))))
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wow, Thank you so much. I knew i had to do it with filter, however i wasn't exactly sure of the syntax. Thanks once again –  Jimmy Jul 14 '09 at 5:49

This can be done with doseq:

(defn print-person [name people]
  (doseq [person people]
    (when (= (:nom person) name)
      (println name (:age person)))))
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I may be wrong (I had to actually go read the Clojure intro to produce the answer above), but isn't this going to iterate the whole sequence printing out all matching elements, and not just the first one? And if the sequence is guaranteed to only have one matching element, wouldn't it consequently unnecessarily keep iterating the rest of it? –  Pavel Minaev Jul 14 '09 at 5:53
    
yes, that is correct. I thought that was the question. Perhaps I misinterpreted. –  Jonas Jul 14 '09 at 6:03
    
But the question has changed now, so I guess it doesn't matter :-) –  Jonas Jul 14 '09 at 6:07

I would suggest looking at the filter function. This will return a sequence of items that match some predicate. As long as you don't have name duplication (and your algorithm would seem to dictate this), it would work.

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Since you changed your question I give you a new answer. (I don't want to edit my old answer since that would make the comments very confusing).

There might be a better way to do this...

(defn first-index-of [key val xs]
  (loop [index 0
         xs xs]
    (when (seq xs)
      (if (= (key (first xs)) val)
        index
        (recur (+ index 1)
               (next xs))))))

This function is used like this:

> (first-index-of :nom 'sam mylist)
1
> (first-index-of :age 12 mylist)
nil
> (first-index-of :age 21 mylist)
2
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How about using positions from clojure.contrib.seq (Clojure 1.2)?

(use '[clojure.contrib.seq :only (positions)])
(positions #(= 'jim (:nom %)) mylist)

It returns a sequence of the matched indices (you can use first or take if you want to shorten the list).

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(defn index-of-name [name people]
  (first (keep-indexed (fn [i p]
                         (when (= (:name p) name)
                           i))
                       people)))

(index-of-name "mark" [{:name "rob"} {:name "mark"} {:name "ted"}])
1
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