47

Can any one tell me why the following:

['a', 'b'].inject({}) {|m,e| m[e] = e }

throws the error:

IndexError: string not matched
        from (irb):11:in `[]='
        from (irb):11:in `block in irb_binding'
        from (irb):11:in `each'
        from (irb):11:in `inject'
        from (irb):11
        from C:/Ruby192/bin/irb:12:in `<main>'

whereas the following works?

a = {}
a["str"] = "str"
70

Your block needs to return the accumulating hash:

['a', 'b'].inject({}) {|m,e| m[e] = e; m }

Instead, it's returning the string 'a' after the first pass, which becomes m in the next pass and you end up calling the string's []= method.

  • Is it absolutely necessary to include the m at the end? For example, if the block was { |array, (k, v)| array << MyObject.new(k, v) } would that work? Considering that array.<< returns the array. – Ziggy Oct 10 '12 at 1:13
  • 8
    @Ziggy: yes, it's necessary because the assignment hash[key] = value returns value, and you need hash. – tokland Nov 10 '12 at 18:53
46

The block must return the accumulator (the hash), as @Rob said. Some alternatives:

With Hash#update:

hash = ['a', 'b'].inject({}) { |m, e| m.update(e => e) }

With Enumerable#each_with_object:

hash = ['a', 'b'].each_with_object({}) { |e, m| m[e] = e }

With Hash#[]:

hash = Hash[['a', 'b'].map { |e| [e, e] }]

With Array#to_h (Ruby >= 2.1):

hash = ['a', 'b'].map { |e| [e, e] }.to_h

With Enumerable#mash from Facets:

require 'facets'
hash = ['a', 'b'].mash { |e| [e, e] }
  • 3
    Nice alternatives. I especially like the distinction between the original poster's technique and your map-to-pairs-then-create-new-hash approach: the original question is essentially iterating -- for each item, do this operation on the Hash -- so inject seems overly complex (hence the bug). But the mapping approach is more about wholes: make this array of singles into an array of pairs, then make that array of pairs into a hash. – Rob Davis Feb 24 '12 at 16:56
20

Rather than using inject, you should look into Enumerable#each_with_object.

Where inject requires you to return the object being accumulated into, each_with_object does it automatically.

From the docs:

Iterates the given block for each element with an arbitrary object given, and returns the initially given object.

If no block is given, returns an enumerator.

e.g.:

evens = (1..10).each_with_object([]) {|i, a| a << i*2 }
#=> [2, 4, 6, 8, 10, 12, 14, 16, 18, 20]

So, closer to your question:

[1] pry(main)> %w[a b].each_with_object({}) { |e,m| m[e] = e }
=> {"a"=>"a", "b"=>"b"}

Notice that inject and each_with_object reverse the order of the yielded parameters.

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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