Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

Imagine you have a map like this:

(def person {
  :name {
    :first-name "John"
    :middle-name "Michael"
    :last-name "Smith" }})

What is the idiomatic way to change values associated with both :first-name and :last-name in one expression?

(Clarification: Let's say you want to set :first-name to "Bob" and :last-name to "Doe". Let's also say that this map has some other values in it that we want to preserve, so constructing it from scratch is not an option)

share|improve this question
up vote 26 down vote accepted

Here are a couple of ways.

user> (update-in person [:name] assoc :first-name "Bob" :last-name "Doe")
{:name {:middle-name "Michael", :last-name "Doe", :first-name "Bob"}}

user> (update-in person [:name] merge {:first-name "Bob" :last-name "Doe"})
{:name {:middle-name "Michael", :last-name "Doe", :first-name "Bob"}}

user> (update-in person [:name] into {:first-name "Bob" :last-name "Doe"})
{:name {:middle-name "Michael", :last-name "Doe", :first-name "Bob"}}

user> (-> person 
          (assoc-in [:name :first-name] "Bob")
          (assoc-in [:name :last-name]  "Doe"))
{:name {:middle-name "Michael", :last-name "Doe", :first-name "Bob"}}

Edit

update-in does recursive assocs on your map. In this case it's roughly equivalent to:

user> (assoc person :name 
             (assoc (:name person) 
                    :first-name "Bob" 
                    :last-name "Doe"))

The repetition of keys becomes more and more tedious as you go deeper into a series of nested maps. update-in's recursion lets you avoid repeating keys (e.g. :name) over and over; intermediary results are stored on the stack between recursive calls. Take a look at the source for update-in to see how it's done.

user> (def foo {:bar {:baz {:quux 123}}})
#'user/foo

user> (assoc foo :bar 
             (assoc (:bar foo) :baz 
                    (assoc (:baz (:bar foo)) :quux 
                           (inc (:quux (:baz (:bar foo)))))))
{:bar {:baz {:quux 124}}}

user> (update-in foo [:bar :baz :quux] inc)
{:bar {:baz {:quux 124}}}

assoc is dynamic (as are update-in, assoc-in, and most other Clojure functions that operate on Clojure data structures). If assoc onto a map, it returns a map. If you assoc onto a vector, it returns a vector. Look at the source for assoc and take a look in in RT.java in the Clojure source for details.

share|improve this answer
    
Thanks! How does the syntax of the first statement work? How does assoc know that it's operating on a map that's passed into it by "update-in"? It looks neat, but how does the compiler not get confused? – byteclub Dec 21 '10 at 1:22
    
assoc does not care if just gets a map and some args (the pairs) then it does its thing. The map that you get back will be put into the right place by the update-in semantics with then returnes as a hole map. – nickik Dec 21 '10 at 1:48
    
Not sure what you're asking, but I added some edits to expand on the answer, hope that helps a bit. – Brian Carper Dec 21 '10 at 2:05
    
Thanks again. I was struggling with the 'assoc :first-name "Bob" :last-name "Doe"' part, trying to figure out how does assoc "know" which map it should put the keys/values into (given that the usual syntax for assoc includes the map variable before the keys/values begin, such as (assoc myMap :first-name "Bob" :last-name "Doe"). I'm going to play with this a bit more. – byteclub Dec 21 '10 at 15:16
    
It's all about the 'apply' function being used inside 'update-in', as it turns out. I'm all set now, thanks Brian. – byteclub Dec 21 '10 at 16:06

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.