-1

I got an error with this code:

o = Hash.new do |h,k|
  h[k]
end
o[1] # => [BUG] Segmentation fault at 0x007fff5f3fff80


Trying to understand what this code is doing:

optimal_change = Hash.new do |hash, key|
  hash[key] = if key < coins.min
    []
  elsif coins.include?(key)
    [key]
  ...

o = Hash.new and hash receive a block. What does hash[key] = if key < coins.min mean? Where is key getting it's value from? And what is this = if condition?

  • Please ask one question per thread. Your first part includes an import bug discovery, but your second part is gibberish. It is not clear what you are trying to ask. – sawa Jun 4 '14 at 4:05
  • Sawa, it's all part of the same question.... I don't know how to ask it because I don't know what the code is. – fabbb Jun 4 '14 at 4:07
  • Regarding the first point, I just made a bug report on Ruby trunk. – sawa Jun 4 '14 at 4:11
  • Sawa ok that's cool. Do you think you can help me understand the second part? – fabbb Jun 4 '14 at 4:18
2

In the first case, your IRB crashed due to never ending recursion. You did

o = Hash.new { |h,k| h[k] }
o[1]

Here, you are trying to access the value of key 1 of the hash which has been assigned to o. Now when you will be doing o[1], you block will be called, inside the block you again did h[1], it again calls the same block, the same is being repeated and it falls into never ending recursion, so the error comes out. But the error should be stack level too deep (SystemStackError).

NOTE, Hash::new with the block version, block will be called, only when you would do hash[key] and in the hash, key will not be present.

But in the second case, you are assigning the value to the key of the hash object assgined to o, depending upon the same condition, if the key not already added to O, when you are doing o[:key]. Thus there will not be infinite recursion.

# result of the if-else block will be assigned to the **key** of the **hash**.
hash[key] = if key < coins.min # some condition check is being performed here.
              [] # then an empty is being assigined to the hash[key]
            elsif coins.include?(key) # again a condition test
              [key] # if true this value will be returned.
            else
               # some vale, which you didn't show us. If it is not present, and
               # no condition will be evaluated as true, there is a definite infinte
               # recursion will be happened again.
            end

Read this Hash::new and Hash#[] and Hash#[]= methods.

Example :-

coins = [10, 11, 45, 54]
o = Hash.new do |h,k|
  h[k] = if k < coins.min
            []
         elsif coins.include? k
           [k]
         else
            "k" # I don't know the actual need, this is just to show you
         end
end

o[5]
o # => {5=>[]}
o[11] # => [11]
o # => {5=>[], 11=>[11]}
o[88]
o  # => {5=>[], 11=>[11], 88=>"k"}
  • Hey Arup, I appreciate your answer, but I'm still having some issue comprehending this. Perhaps you know of some relevent specific links with solid examples I can review? Thanks. – fabbb Jun 4 '14 at 3:55
  • Very interesting. But from the Hash::new doc's example. h = Hash.new { |hash, key| hash[key] = "Go Fish: #{key}" } Why does this code not get into recursion? – Spundun Jun 4 '14 at 3:59
  • 2
    @ArupRakshit You are right that there is an infinite recursion (hence there is a Ruby level error), but that should raise a stackoverflow error. The kind of error that was raised is Ruby's bug. Whenever you see a segmenation fault, it is either Ruby or some C-level library's bug. – sawa Jun 4 '14 at 4:13
  • 1
    Oh right, and now that the key exists in the hash, the block won't be called again for that hash. – Spundun Jun 4 '14 at 4:13
  • 1
    @sawa Yes.. I mentioned it now, and forgot to write it there. But what you said about the system level error, I was not aware of. Thanks for letting me know the same. – Arup Rakshit Jun 4 '14 at 4:17

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