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Looking at the code specifically line 393, it looks like different hashes have been mapped to same index. I had an understanding that the hashcode is used to determine what bucket in a HashMap is to be used, and the bucket is made up of a linked list of all the entries with the same hashcode. They why have the e.hash == hash check ?

public V put(K key, V value) {
  387           if (key == null)
  388               return putForNullKey(value);
  389           int hash = hash(key.hashCode());
  390           int i = indexFor(hash, table.length);
  391           for (Entry<K,V> e = table[i]; e != null; e = e.next) {
  392               Object k;
  393               if (e.hash == hash && ((k = e.key) == key || key.equals(k))) {
  394                   V oldValue = e.value;
  395                   e.value = value;
  396                   e.recordAccess(this);
  397                   return oldValue;
  398               }
  399           }
  400   
  401           modCount++;
  402           addEntry(hash, key, value, i);
  403           return null;
  404       }
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There are 4 billion different hash values, but typically rather fewer buckets. So objects with different hash values may still end up in the same bucket. (If there are N buckets, then the bucket index is typically chosen as o.hashCode() % N.) –  Alan Stokes Oct 13 '13 at 19:45
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Also, comparing hash codes is very fast (they're just ints), while comparing objects for equality can be quite slow. If the hash codes are different the objects cannot be equal, so it's a win to skip the call to equals() in that case. –  Alan Stokes Oct 13 '13 at 19:47
    
It's actually h & (length-1) since length is always a power of 2, but who's counting? =) –  sbat Oct 13 '13 at 20:18
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2 Answers

Since a hashcode can be one in 2^32 values, it is rare that the hashmap has so many buckets (just the table would require 16GB of memory). So yes, you can have objects with different hashes in the same buckets of the maps (AFAIK it is a simple modulus operation of hachCode % numberOfBuckets).

Note that the code does not use directly key.hashCode(), but hash(key.hashCode()).

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This check is an optimization taking into account for collisions.
You can have 2 elements that have the same hash key (due to collision) and as a result are mapped to the same bucket. Same key different actual elements.
So if e.hash != hash you don't need to check for equality (which could be an expensive operation)

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