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This code separates a string into tokens and stores them in an array of strings, and then compares a variable with the first home ... why isn't it working?

public static void main(String...aArguments) throws IOException {

    String usuario = "Jorman";
    String password = "14988611";

    String strDatos = "Jorman 14988611";
    StringTokenizer tokens = new StringTokenizer(strDatos, " ");
    int nDatos = tokens.countTokens();
    String[] datos = new String[nDatos];
    int i = 0;

    while (tokens.hasMoreTokens()) {
        String str = tokens.nextToken();
        datos[i] = str;
        i++;
    }

    //System.out.println (usuario);

    if ((datos[0] == usuario)) {
        System.out.println("WORKING");
    }
}
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marked as duplicate by Alex K, m59, Burkhard, Michal Szyndel, Trinimon Dec 23 '13 at 21:27

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Have a look at this thejavageek.com/2013/07/27/… –  Prasad Kharkar Sep 26 '13 at 12:38
    
"==" compares reference and not the content.Change datos[0] == usuario to datos[0].equals(usuario) to get the correct answer –  mani deepak Jan 27 at 8:28
    
I see you changed your accepted answer - I urge you to read my comments on that and reconsider. The "story" in the now accepted answer might look good initially, but IMHO it really doesn't bear scrutiny. –  Alnitak Jul 18 at 19:46

20 Answers 20

up vote 270 down vote accepted

Use the String.equals(String other) function to compare strings, not the == operator.

The function checks the actual contents of the string, the == operator checks whether the references to the objects are equal. Note that string constants are usually "interned" such that two constants with the same value can actually be compared with ==, but it's better not to rely on that.

if (usuario.equals(datos[0])) {
    ...
}

NB: the compare is done on 'usuario' because that's guaranteed non-null in your code, although you should still check that you've actually got some tokens in the datos array otherwise you'll get an array-out-of-bounds exception.

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1  
string is sometimes a special-case (in some languages) and is equally handled with both "==" and "equals()".but "equals()" has more oo-charme :) –  mo. Mar 11 '12 at 19:50
7  
@mo: It isn't equally handled, as you can see by this example. –  user unknown May 16 '12 at 14:37
26  
@mo in some cases even in java == can be misleading. Java caches strings and so something like this would return true. String a = "Hello"; String b = "Hello"; a == b is true even though one would normally expect the result to be false. –  Jon Taylor Jul 24 '12 at 14:19
2  
@trusktr you can only use == to compare strings that have been "interned" - typically that's string constants. –  Alnitak Oct 5 '13 at 14:09
4  
@parasietje The JLS guarantees that multiple occurrences of "Hello" (as a literal) refer to the same String object. A compiler can't replace it with something else. –  fgb Oct 5 '13 at 14:41

Meet Jorman

Jorman is a successful businessman and has 2 houses.

enter image description here

But others don't know that.

Is it the same Jorman?

When you ask neighbours from either Madison or Burke streets, this is the only thing they can say:

enter image description here

Using the residence alone, it's tough to confirm that it's the same Jorman. Since they're 2 different addresses, it's just natural to assume that those are 2 different persons.

That's how the operator == behaves. So it will say that datos[0]==usuario is false, because it only compares the addresses.

An Investigator to the Rescue

What if we sent an investigator? We know that it's the same Jorman, but we need to prove it. Our detective will look closely at all physical aspects. With thorough inquiry, the agent will be able to conclude whether it's the same person or not. Let's see it happen in Java terms.

Here's the source code of String's equals() method:

enter image description here

It compares the Strings character by character, in order to come to a conclusion that they are indeed equal.

That's how the String equals method behaves. So datos[0].equals(usuario) will return true, because it performs a logical comparison.

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53  
you forgot the check for DNA –  David T. Aug 23 '13 at 18:49
4  
I can see what you are doing... CSI SO xD –  Andreas Dec 18 '13 at 8:37
1  
I love intuitive examples and this is one of the best I've ever seen. Novice programmers can easily understand what's going behind the scenes reading this. –  Nader Hadji Ghanbari May 4 at 9:18
1  
@David T: DNA is coded as a string, you will likely end up with a recursive function! –  Broken_Window May 28 at 17:33
1  
I actually think this answer is really confusing because it conflates the person's name with the person themself. It also confuses "equality" with "equivalence". The this == anObject check is semantically exactly a test that one is comparing the same two objects (equality), which by definition therefore must be equivalent. The final return true after the while loop does not mean we have the same "Jorman", it means the that the two entities share the same value (equivalent) which does not imply equality. (The Java .equals method is misnamed in this regard). –  Alnitak Jul 18 at 19:40

It's good to notice that in some cases use of "==" operator can lead to the expected result, because the way how java handles strings - string literals are interned (see String.intern()) during compilation - so when you write for example "hello world" in two classes and compare those strings with "==" you could get result: true, which is expected according to specification; when you compare same strings (if they have same value) when the first one is string literal (ie. defined through "i am string literal") and second is constructed during runtime ie. with "new" keyword like new String("i am string literal"), the == (equality) operator returns false, because both of them are different instances of the String class.

Only right way is using .equals() -> datos[0].equals(usuario). == says only if two objects are the same instance of object (ie. have same memory address)

Update: 01.04.2013 I updated this post due comments below which are somehow right. Originally I declared that interning (String.intern) is side effect of JVM optimization. Although it certainly save memory resources (which was what i meant by "optimization") it is mainly feature of language

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5  
It's actually not just a side effect of jvm optimization and has nothing to do with the compiler at all. The identity of static strings (literals) across all classes is guaranteed according to the Java VM Specification and works with every VM that is at least Java 1.1 compatible. –  x4u Feb 6 '10 at 7:20
5  
If you mean JVM spec chapter 2.3 "String literals and, more generally, strings that are the values of constant expressions are "interned" so as to share unique instances, using the method String.intern". Well it's guaranteed by jvm (according to spec), but for me this still means optimization. There is no semantic value of this AFAIK. On the other hand == has semantic "identity equality" and method equals() has "object equality" so you should obey this and no rely on jvm specification, which is "guide" for jvm implementators rather then for developers (they have Java Language Specification). –  Michal Bernhard Jul 14 '11 at 21:07
2  
The literals, classnames and the likes are interned to comply with the spec, it's not mere optimization. "xxx" is always == "xxx", this is part of the language design not an impl. detail/guideline. –  bestsss Jun 7 '12 at 12:52

Instead of

datos[0] == usuario

use

datos[0].equals(usuario)

== compares the reference of the variable where .equals() compares the values which is what you want.

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7  
just make sure the left side isn't null –  Steve Kuo Apr 20 '09 at 14:55
    
or use usario.equals instead, like the selected answer by @Alnitak demonstrates. It saves you a step (or a whole bunch) if you initially know usario isn't null. –  user Nov 6 '12 at 14:33

equals() function is a method of Object class which should be overridden by programmer. String class overrides it to check if two strings are equal i.e. in content and not reference.

== operator checks if the references of both the objects are the same. Consider the programs

String abc = "Awesome" ;
String xyz =  abc;

if(abc == xyz)
     System.out.println("Refers to same string");

Here the abc and xyz, both refer to same string "Awesome". Hence the expression (abc == xyz) is true.

String abc = "Hello World";
String xyz = "Hello World";

if(abc == xyz)
    System.out.println("Refers to same string");
else
    System.out.println("Refers to different strings");

if(abc.equals(xyz))
     System.out.prinln("Contents of both strings are same");
else
     System.out.prinln("Contents of strings are different");

Here abc and xyz are two different strings with the same content "Hello World". Hence here the expression (abc == xyz) is false where as (abc.equals(xyz)) is true.

Hope you understood the difference between == and .equals()

Thanks.

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I'm wondering, in what (non-obvious) case will abc == xyz work? –  Chibueze Opata Mar 11 '12 at 14:21
1  
The code outputs (after fixing prinln to println): Refers to same string, Contents of both strings are same i.e. here both (abc == xyz) and (abc.equals(xyz)) are true! –  arun Oct 24 '12 at 23:15
1  
as mentioned above this answer is wrong. because of intern optimization mechanisms sometimes 2 string objects with the same content are actually represented by only one object. this optimization is possible because strings are immutable –  tobi Sep 15 '13 at 16:23

== tests for reference equality.

.equals() tests for value equality.

Consequently, if you actually want to test whether two strings have the same value you should use .equals() (except in a few situations where you can guarantee that two strings with the same value will be represented by the same object eg: String interning).

== is for testing whether two strings are the same object.

// These two have the same value
new String("test").equals("test") ==> true 

// ... but they are not the same object
new String("test") == "test" ==> false 

// ... neither are these
new String("test") == new String("test") ==> false 

// ... but these are because literals are interned by 
// the compiler and thus refer to the same object
"test" == "test" ==> true 

// concatenation of string literals happens at compile time resulting in same objects
"test" == "te" + "st"  ==> true

// but .substring() is invoked at runtime, generating distinct objects
"test" == "!test".substring(1) ==> false

It is important to note that == is much cheaper than equals() (a single pointer comparision instead of a loop), thus, in situations where it is applicable (i.e. you can guarantee that you are only dealing with interned strings) it can present an important performance improvement. However, these situations are rare.

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It will also work if you call intern() on the string before inserting it into the array. Interned strings are reference-equal (==) if and only if the are value-equal (equals().)

public static void main (String... aArguments) throws IOException {

String usuario = "Jorman";
String password = "14988611";

String strDatos="Jorman 14988611";
StringTokenizer tokens=new StringTokenizer(strDatos, " ");
int nDatos=tokens.countTokens();
String[] datos=new String[nDatos];
int i=0;

while(tokens.hasMoreTokens()) {
    String str=tokens.nextToken();
    datos[i]= str.intern();            
    i++;
}

//System.out.println (usuario);

if(datos[0]==usuario) {  
     System.out.println ("WORKING");    
}
share|improve this answer

Let's analyze the following Java, to understand the identity and equality of Strings:

public static void testEquality(){
    String str1 = "Hello world.";
    String str2 = "Hello world.";

    if (str1 == str2)
        System.out.print("str1 == str2\n");
    else
        System.out.print("str1 != str2\n");

    if(str1.equals(str2))
        System.out.print("str1 equals to str2\n");
    else
        System.out.print("str1 doesn't equal to str2\n");

    String str3 = new String("Hello world.");
    String str4 = new String("Hello world.");

    if (str3 == str4)
        System.out.print("str3 == str4\n");
    else
        System.out.print("str3 != str4\n");

    if(str3.equals(str4))
        System.out.print("str3 equals to str4\n");
    else
        System.out.print("str3 doesn't equal to str4\n");
}

When the first line of code String str1 = "Hello world." executes, a string \Hello world." is created, and the variable str1 refers to it. Another string \Hello world." will not be created again when the next line of code executes because of optimization. The variable str2 also refers to the existing \Hello world.".

The operator == checks identity of two objects (whether two variables refer to same object). Since str1 and str2 refer to same string in memory, they are identical to each other. The method equals checks equality of two objects (whether two objects have same content). Of course, the content of str1 and str2 are same.

When code String str3 = new String("Hello world.") executes, a new instance of string with content \Hello world." is created, and it is referred to by the variable str3. And then another instance of string with content \Hello world." is created again, and referred to by str4. Since str3 and str4 refer to two different instances, they are not identical, but their content are same.

Therefore, the output contains four lines:

Str1 == str2

Str1 equals str2

Str3! = str4

Str3 equals str4

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So what about objects in general? A programmer is supposed to override equals method for his class. I think in case of objects == checks for reference and equals() function checks for content. Please do correct if I'm wrong. –  hari Mar 13 '12 at 2:47
    
You aren't supposed to override equals for your classes. You might do, and in some cases you should do so. Why would I overwrite equals in my XyPanel, in a FooDialog? –  user unknown May 16 '12 at 14:40
== operator check if the two references point to the same object or not.
.equals() check for the actual string content(value).

Note that .equals() method belongs to Class Object(Super class of all classes). You need to override it as per you class requirement but for String it is already implemented and it checks whether two string have same value or not.

Case1)
String s1 = "StackOverflow";
String s2 = "StackOverflow";
s1 == s1;      //true
s1.equals(s2); //true
Reason:  String literals created without null are stores in String pool in permgen area of heap. So both s1 and s2 point to same object in the pool.
Case2)
String s1 = new String("StackOverflow");
String s2 = new String("StackOverflow");
s1 == s1;      //false
s1.equals(s2); //true
Reason: If you create String object using new keyword separate space is allocated to it on heap.
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You should use string equals to compare two strings for equality, not operator == which just compares the references.

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The == operator is a simple comparison of values.
For object references the (values) are the (references). So x == y returns true if x and y reference the same object.

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@Melkhiah66 You can use equals method instead of '==' method to check the equality. If you use intern() then it checks whether the object is in pool if present then returns equal else unequal. equals method internally uses hashcode and gets you the required result.

public class Demo
{
  public static void main(String[] args)
  {
              String str1 = "Jorman 14988611";
    String str2 = new StringBuffer("Jorman").append(" 14988611").toString();
    String str3 = str2.intern();
    System.out.println("str1 == str2 " + (str1 == str2));           //gives false
    System.out.println("str1 == str3 " + (str1 == str3));           //gives true
    System.out.println("str1 equals str2 " + (str1.equals(str2)));  //gives true
    System.out.println("str1 equals str3 " + (str1.equals(str3)));  //gives true
  }
}

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== operator compares the reference of an object in java. You can use string's equals method .

String s = "Test";
if(s.equals("Test"))
{
    System.out.println("Equal");
}
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If You are going to compare any assigned value of the string ie)primitive string, Both "==" and .equals will work, but for the new string object you should use only .equals, here "==" will not work

Example:

String a = "name";

String b = "name";

if(a == b) and (a.equals(b)) will return true.

but

String a = new String("a");

in this case if(a == b) will return false

so its better to use .equals operator....

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I know this is an old question but here's how I look at it (I find very useful):


Technical explanations

In Java, all variables are either primitive types or references.

(If you need to know what a reference is: "Object variables" are just pointers to objects. So with Object something = ..., something is really an address in memory (a number).)

== compares the exact values. So it compares if the primitive values are the same, or if the references (addresses) are the same. That's why == often doesn't work on Strings; Strings are objects, and doing == on two string variables just compares if the address is same in memory, as others have pointed out. .equals() calls the comparison method of objects, which will compare the actual objects pointed by the references. In the case of Strings, it compares each character to see if they're equal.


The interesting part:

So why does == sometimes return true for Strings? Note that Strings are immutable. In your code, if you do

String foo = "hi";
String bar = "hi";

Since strings are immutable (when you call .trim() or something, it produces a new string, not modifying the original object pointed to in memory), you don't really need two different String("hi") objects. If the compiler is smart, the bytecode will read to only generate one String("hi") object. So if you do

if (foo == bar) ...

right after, they're pointing to the same object, and will return true. But you rarely intend this. Instead, you're asking for user input, which is creating new strings at different parts of memory, etc. etc.

Note: If you do something like baz = new String(bar) the compiler may still figure out they're the same thing. But the main point is when the compiler sees literal strings, it can easily optimize same strings.

I don't know how it works in runtime, but I assume the JVM doesn't keep a list of "live strings" and check if a same string exists. (eg if you read a line of input twice, and the user enters the same input twice, it won't check if the second input string is the same as the first, and point them to the same memory). It'd save a bit of heap memory, but it's so negligible the overhead isn't worth it. Again, the point is it's easy for the compiler to optimize literal strings.

There you have it... a gritty explanation for == vs. .equals() and why it seems random.

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Generally .equals are used for string comparision

== for integr comparision & to check if the object is null

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Use Split rather than tokenizer,it will surely provide u exact output for E.g:

string name="Harry";
string salary="25000";
string namsal="Harry 25000";
string[] s=namsal.split(" ");
for(int i=0;i<s.length;i++)
{
System.out.println(s[i]);
}
if(s[0].equals("Harry"))
{
System.out.println("Task Complete");
}

After this I am sure you will get better results.....

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The .equals() will check if the two strings have the same value and return the boolean value where as the == operator checks to see if the two strings are the same object.

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Someone said on a post higher up that == is used for int and for checking nulls. It may also be used to check for Boolean operations and char types.

Be very careful though and double check that you are using a char and not a String. for example

    String strType = "a";
    char charType = 'a';

for strings you would then check This would be correct

    if(strType.equals("a")
        do something

but

    if(charType.equals('a')
        do something else

would be incorrect, you would need to do the following

    if(charType == 'a')
         do something else
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a==b Compares references, not values. The use of == with object references is generally limited to the following: Comparing to see if a reference is null. Comparing two enum values. This works because there is only one object for each enum constant. You want to know if two references are to the same object

"a".equals("b")

Compares values for equality. Because this method is defined in the Object class, from which all other classes are derived, it's automatically defined for every class. However, it doesn't perform an intelligent comparison for most classes unless the class overrides it. It has been defined in a meaningful way for most Java core classes. If it's not defined for a (user) class, it behaves the same as ==.

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protected by Gilbert Le Blanc Apr 25 '13 at 0:50

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