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(dolist (i list (hash-table-count hash))
  (setf (gethash i hash) t))))

The above code is an extract from one of my Lecture tutorials that I missed due to illness, I understand some of the code but I can't figure out how its counting the none identical elements.

What I know: We're looping over the list and for each i in list we set the key to i in the hash table and the value to true.

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so, what is the question? –  sds Nov 25 '13 at 4:31
    
A hash cannot contain a given key two or more times. Hash tables are exploited for squashing duplicate keys. It's what they do; they are a dynamic set data structure. A set either contains an element or it does not; it doesn't contain an element two or three times. If you add a key to the hash twice, it only exists in the has once, and is associated with the most recent value. –  Kaz Nov 26 '13 at 4:34

1 Answer 1

up vote 2 down vote accepted

An example: if list is (3 3 5 6 6 6 9), the loop will examine each list element in turn, and set these hash keys to t: 3, 5, 6, and 9. Since 3 and 6 are duplicated in the list, no new hash key will be created for those elements. Finally hash-table-count returns the number of keys in the hash table, i.e. 4.

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