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Is there any reason why a Java string cannot be tested for equality using it's hashCode method? So basically, instead of....

"hello".equals("hello")

You could use...

"hello".hashCode() == "hello".hashCode()

This would be useful because once a string has calculated it's hashcode then comparing a string would be as efficient as comparing an int as the string caches the hashcode and it is quite likely that the string is in the string pool anyway, if you designed it that way.

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Your answer lies in the documentation on the equals() and hashcode() methods. –  skaffman Sep 23 '09 at 12:21
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And regarding efficiency: take a close look at the strings that you're comparing. I'll be willing to bet that > 50% differ in their first character, and > 66% differ in their first two characters. So you actually have a very efficient comparison versus hashCode(), which has to walk the entire string. Plus, if you're using strings in the constant pool, equals() first checks identity, which will kick those out right away. –  kdgregory Sep 23 '09 at 12:30
    
@kdgregory It's true that the worst case scenario is that the strings actually match, which might also be the most common scenario. You've also answered my underlying string performance question, any gains being made by a pooled hashcode is being made already be performing an instance check. Cheers! –  Andy Sep 23 '09 at 12:47
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What I find strange is that the current String implementation caches the hashCode, but does not use it in equals(), even though it would be a quick way to eliminate unequal strings in many cases - a big gain in the (admittedly rare) case where you compare strings with long identical prefixes. –  Michael Borgwardt Sep 23 '09 at 13:15

8 Answers 8

up vote 27 down vote accepted

because: hashCodes of two objects must be equal if the objects are equal, however, if two objects are unequal, the hashCode can still be equal.

(modified after comment)

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5  
+1, hashcodes don't guarantee uniqueness - they only try and provide low collisions –  orip Sep 23 '09 at 12:19
4  
+1, however one small ammendment. hashCodes of two objects MUST be equal if the objects are equal, this is specified in the contract of hashCode. –  Falaina Sep 23 '09 at 12:26
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Short and correct answer. Also doing something like that just to be as efficient as possible sounds a bit like premature optimization to me. –  NickDK Sep 23 '09 at 12:30
    
This would be a problem if you were testing against user input for example. If you were testing strings in a controlled environment and could guarantee no collisions (unit tests) then it would be worth it if it gave marked performance improvements but as kdgregory pointed out above it would not. Cheers! –  Andy Sep 23 '09 at 12:54
    
@andy Theoretically, I guess. But you'd have to verify that your strings did not give hash collisions. And then if later someone changes the program and adds a new string, they'd have to know to check if that creates a hash collision, and if so, they would then have to change all the comparisons. You'd be far better off to create an Enum or otherwise assign your own unique identifier to each string, rather than relying on the hashcodes not having collisions basically out of luck. –  Jay Mar 7 at 15:53

Let me give you a counter example. Try this,

public static void main(String[] args) {
	String str1 = "0-42L";
	String str2 = "0-43-";

	System.out.println("String equality: " + str1.equals(str2));
	System.out.println("HashCode eqauality: " + (str1.hashCode() == str2.hashCode()));
}

The result on my Java,

String equality: false
HashCode eqauality: true
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as many said hashCode does not guaranty uniqueness. in fact, it cannot do that for a very simple reason.

hashCode returns an int, which means there are 2^32 possible values (around 4,000,000,000), but there are surely more than 2^32 possible strings, which means at least two strings have the same hashcode value.

this is called Pigeonhole principle.

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good answer, could have done with knowing about pigeonhole principle in a recent interview –  Karl Oct 18 '09 at 21:04
    
Way more than two, if you think about it. If the max length of a string is Integer.MAX_VALUE, i.e. about 2 billion, and there are 2^32 ~= 64k possible char values, then there are (2^32)^(2^31) possible strings vs 2^32 hash values, means there are (2^32)^(2^31) / (2^32) = (2^32)^(2^30) strings for any given hash code. Which comes out to about 10 ^ 9 billion. i.e. a Very Big Number. –  Jay Oct 22 '12 at 15:31
    
@Jay: "2^32 ~= 64k"? What does ~= mean here? –  bacar Dec 22 '12 at 10:23
    
"Approximately equal to". The conventional math symbol for that isnot readily entered on most keyboards. –  Jay Dec 25 '12 at 5:17
    
Two is all you need to demonstrate that it cannot guaranty uniqueness. obviously the number of possible hash collisions for strings is too long to fit into this comment. –  Omry Yadan Jul 21 '13 at 8:22

Others have pointed out why it won't work. So I'll just add the addendum that the gain would be minimal anyway.

When you compare two strings in Java, the String equals function first checks if they are two references to the same object. If so, it immediately returns true. Then it checks if the lengths are equal. If not, it returns false. Only then does it start comparing character-by-character.

If you're manipulating data in memory, the same-object compare may quickly handle the "same" case, and that's a quick, umm, 4-byte integer compare I think. (Someone correct me if I have the length of an object handle wrong.)

For most unequal strings, I'd bet the length compare quickly finds them not equal. If you're comparing two names of things -- customers, cities, products, whatever -- they'll usually have unequal length. So a simple int compare quickly disposes of them.

The worst case for performance is going to be two long, identical, but not the same object strings. Then it has to do the object handle compare, false, keep checking. The length compare, true, keep checking. Then character by character through the entire length of the string to verify that yes indeed they are equal all the way to the end.

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excellent answer –  Karl Oct 18 '09 at 21:06
    
Good answer. This would have benefitted from mention of the intern method which makes the strict equality check more likely to matter. –  Spina Oct 22 '12 at 13:47
    
@Spina Valid point. If both strings are String literals, then yes, their objects will compare equal. If they are read from a database or user input, then you could intern them so their objects would compare equal. Whether this is of value depends how often you compare the strings. –  Jay Oct 22 '12 at 15:35
    
There are some cases where one would be likely to perform many comparisons against long strings that may be almost identical, and in such cases, pre-checking hash codes may be useful. In such cases, however, the code using the strings is free to check the hash code before testing equality. –  supercat Nov 12 '13 at 2:36
    
@supercat For this to help, you would have to calculate the hash codes once and cache them, and you would have to be doing comparisons against the same string multiple times. It's more work to calculate the hash codes for two string than to compare two strings: you have to examine every character in a string to compute the hash code, and do some arithmetic on top of that. So if you only compare a given string once, you'd be doing more work to calculate the hash than it would take to just do the compare, and then if the hash comes out equal, you still have to do the compare, so it's ... –  Jay Nov 14 '13 at 20:44

You can get the effect you want using String.intern() (which is implemented using a hash table.)

You can compare the return values of intern() using the == operator. If they refer to the same string then the original strings were equivalent (i.e. equals() would have returned true), and it requires only a pointer comparison (which has the same cost as an int comparison.)

String a = "Hello";
String b = "Hel" + "lo";

System.out.println(a.equals(b));
System.out.println(a == b);

String a2 = a.intern();
String b2 = b.intern();

System.out.println(a2.equals(b2));
System.out.println(a2 == b2);

Output:

true
false
true
true
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The hashCode value isn't unique, which means the Strings may not actually match. To improve performance, often implementations of equals will perform a hashCode check before performing more laborious checks.

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Very simple reason: risk of collisions... A hash code will have a lot less possible values than a string. It depends a bit of the kind of hash you generate but let's take a very simple example, where you would add the ordinal values of letters, multiplied with it's position: a=1, b=2, etc. Thus, 'hello' would translate to: h: 8x1=8, e: 5x2=10, l: 12x3=36, l: 12x4=48, o: 15x5=75. 8+10+36+48+75=177.

Are there other string values that could end as 177 hashed? Of course! Plenty of options. Feel free to calculate a few.

Still, this hashing method used a simple method. Java and .NET use a more complex hashing algorithm with a lot smaller chance of such collisions. But still, there's a chance that two different strings will result in the same hash value, thus this method is less reliable.

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zzzda would also equal 177. (1x26, 2x26, 3x26, 4x4, 5x1) –  Wim ten Brink Sep 23 '09 at 12:27

There is no reason not to use hashCode as you describe.

However, you must be aware of collisions. There is a chance - a small chance admittedly - that two different strings do hash to the same value. Consider doing a hashCode at first, and if equal also do the full comparison using the equals().

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So in other words, there is a reason to not use hashcode as he describes? –  matt b Sep 23 '09 at 12:45
    
so there's no reason to dismiss it out of hand, only a warning to do additional checks in some circumstances –  Will Sep 23 '09 at 13:09
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So if you still have to do the equals test, why bother? You've just written twice as much code to get to the same place. –  Jay Sep 23 '09 at 13:12
    
if the assumption is that the strings are unlikely to be similiar, you'd get the efficiency that the asker queried. –  Will Sep 23 '09 at 14:54
    
I should say that back when I was writing demo apps for early j2me phones, for the manufacturers, and performance even of this kind of thing really mattered, using hashCode() to cheapen comparisons is the kind of thing we did all the time. You need profiling to back it up, but its worth exploring in the most performance-critical code. –  Will Sep 23 '09 at 14:56

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