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I'm using a couple of Hashes where the values of some hashes are the key of others.

I need to use key a couple of times to get the key for a value so that I can use it to access something in another hash.

I was wondering what kind of a performance impact this could possibly have. In my situation, these hashes are few in number and the contents are small, but I want to know theoretically.

Should I avoid using this too much? How does it perform compared to getting the value for a key?

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2 Answers 2

up vote 2 down vote accepted

Think of it this way: you're occasionally doing an extra step to get the value. That's what happens any time you use a conditional test and add a couple steps to a computation.

It's obvious there's a little overhead associated with it, but worrying about it at this point is premature optimization. You CAN get a feel for the difference, by using the Benchmark class to test your alternate way of getting the hash key, vs. the normal way.

I suspect you'll have to do several million loops to see an appreciable difference.


Here is how I create the reverse mapping mentioned by @fontanus:

hash = {a:1, b:2}
hash.merge!(Hash[hash.values.zip(hash.keys)])

Which results in:

{
    :a => 1,
    :b => 2,
     1 => :a,
     2 => :b
}

It can also be done by coercing the hash into an array, flattening it and reversing it and then turning it back into a hash, but I find this less intuitive than the above. YMMV.

hash.merge!(Hash[*hash.to_a.flatten.reverse])

@steenslag reminded me of Hash.invert. I knew there was something but couldn't remember the method name:

>> hash.merge!(hash.invert)
{
    :a => 1,
    :b => 2,
     1 => :a,
     2 => :b
}

Give him an upvote for that!

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Previous optimization, along with other things, is the root of all evil. –  fotanus May 2 '13 at 13:28
    
"Premature optimization" is. –  the Tin Man May 2 '13 at 13:29
3  
Hash has a method for this: hash.invert –  steenslag May 2 '13 at 14:10
    
+1 HA! That's what it is. I knew there was one, but couldn't remember it. You could see my Perl leaking into my answer. :-) –  the Tin Man May 2 '13 at 14:16

Searching in ruby 1.9.3 and 2.0.0 are O(n) operations.

static VALUE
rb_hash_key(VALUE hash, VALUE value)
{
    VALUE args[2];

    args[0] = value;
    args[1] = Qnil;

    rb_hash_foreach(hash, key_i, (VALUE)args);

    return args[1];
}

Implementation of rb_hash_foreach:

void
rb_hash_foreach(VALUE hash, int (*func)(ANYARGS), VALUE farg)
{
    struct hash_foreach_arg arg; 

    if (!RHASH(hash)->ntbl)
        return;
    RHASH_ITER_LEV(hash)++;
    arg.hash = hash;
    arg.func = (rb_foreach_func *)func;
    arg.arg  = farg;
    rb_ensure(hash_foreach_call, (VALUE)&arg, hash_foreach_ensure, hash);
}

Yet, your hashes are small. @theTinMan is correct about being premature optimization, and you should not worry about it.

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1  
(1) This is not true. In Ruby 1.9, which is previous to Ruby 2.0, hash is ordered. (2) How does the fact that the hash is ordered or not have impact on key? I don't see any reason. –  sawa May 2 '13 at 13:05
    
@sawa (1) thanks you are correct, it is not Ruby 2, it is 1.9.2. - wrong number 2. (2) You can't find an element in an unordered list faster than a linear search, but you can use other search algorithms if you know that your list is ordered –  fotanus May 2 '13 at 13:08
2  
In what sense are taking "ordered"? In the context where Ruby hash is said to be ordered, it does not mean that the keys are "sorted". It means that the order of the keys inserted is preserved. –  sawa May 2 '13 at 13:11
    
@sawa Hum... you mean that the structure is not hold in order, but every time you want to iterate it is sorterd? Seems a bit odd, but can be... Anyway, striking the first sentence since I'm not sure. –  fotanus May 2 '13 at 13:13
1  
@fotanus “every time you want to iterate it is sorted?” – no. It is never sorted automatically. Being ordered means that each traversal yields the elements in the same order (which wasn't the case before 1.9), namely the order in which the elements were inserted. –  Patrick Oscity May 2 '13 at 13:37

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