Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

We all know that String is immutable in Java, but check the following code:

String s1 = "Hello World";  
String s2 = "Hello World";  
String s3 = s1.substring(6);  
System.out.println(s1); // Hello World  
System.out.println(s2); // Hello World  
System.out.println(s3); // World  

Field field = String.class.getDeclaredField("value");  
field.setAccessible(true);  
char[] value = (char[])field.get(s1);  
value[6] = 'J';  
value[7] = 'a';  
value[8] = 'v';  
value[9] = 'a';  
value[10] = '!';  

System.out.println(s1); // Hello Java!  
System.out.println(s2); // Hello Java!  
System.out.println(s3); // World  

Why does this program operate like this? And why is the value of s1 and s2 changed, but not s3?

share|improve this question
325  
You can do all kinds of stupid tricks with reflection. But you're basically breaking the "warranty void if removed" sticker on the class the instant you do it. –  cHao Jan 6 at 7:31
14  
@DarshanPatel use a SecurityManager to disable reflection –  Sean Patrick Floyd Jan 6 at 8:59
36  
If you really want to mess with things you can make it so that (Integer)1+(Integer)2=42 by messing with the cached autoboxing; (Disgruntled-Bomb-Java-Edition)(thedailywtf.com/Articles/Disgruntled-Bomb-Java-Edition.aspx) –  Richard Tingle Jan 6 at 9:38
13  
You might be amused by this answer I wrote nearly 5 years ago stackoverflow.com/a/1232332/27423 - it's about immutable lists in C# but it's basically the same thing: how can I stop users from modifying my data? And the answer is, you can't; reflection makes it very easy. One mainstream language that doesn't have this problem is JavaScript, as it does not have a reflection system that can access local variables inside a closure, so private really does mean private (even though there's no keyword for it!) –  Daniel Earwicker Jan 6 at 12:49
34  
Is anybody reading the question to the end?? The question is, let me please repeat: "Why does this program operate like this? Why is the value of s1 and s2 changed and not changed for s3?" The question is NOT why are s1 and s2 changed! The question IS: WHY is s3 not changed? –  Roland Pihlakas Jan 7 at 3:53
show 5 more comments

13 Answers

up vote 304 down vote accepted

String is immutable* but this only means you cannot change it using its public API.

What you are doing here is circumventing the normal API, using reflection. The same way, you can change the values of enums, change the lookup table used in Integer autoboxing etc.

Now, the reason s1 and s2 change value, is that they both refer to the same interned string. The compiler does this (as mentioned by other answers).

The reason s3 does not was actually a bit surprising to me, as I thought it would share the value array (it did in earlier version of Java, before Java 7u6). However, looking at the source code of String, we can see that the value character array for a substring is actually copied (using Arrays.copyOfRange(..)). This is why it goes unchanged.

You can install a SecurityManager, to avoid malicious code to do such things. But keep in mind that some libraries depend on using these kind of reflection tricks (typically ORM tools, AOP libraries etc).

*) I initially wrote that Strings aren't really immutable, just "effective immutable". This might be misleading in the current implementation of String, where the value array is indeed marked private final. It's still worth noting, though, that there is no way to declare an array in Java as immutable, so care must be taken not to expose it outside its class, even with the proper access modifiers.


As this topic seems overwhelmingly popular, here's some suggested further reading: Heinz Kabutz's Reflection Madness talk from JavaZone 2009, which covers a lot of the issues in the OP, along with other reflection... well... madness.

It covers why this is sometimes useful. And why, most of the time, you should avoid it. :-)

share|improve this answer
5  
Actually, String interning is part of the JLS ("a string literal always refers to the same instance of class String"‌​). But I agree, it's not good practice to count on the implementation details of the String class. –  haraldK Jan 6 at 8:32
1  
@Jeppe, Alexandr The downside is that substring used to be an almost "free" operation due to the sharing, and now it's potentially costly. :-/ –  haraldK Jan 6 at 14:37
6  
Sharing arrays between a string and its substrings also implied that every String instance had to carry variables for remembering the offset into the referred array and length. That’s an overhead not to ignore given the total number of strings and the typical ratio between normal strings and substrings in an application. Since they had to get evaluated for every string operation it meant slowing down every string operation just for the benefit of just one operation, a cheap substring. –  Holger Jan 6 at 19:32
2  
@Holger - Yep, my understanding is that the offset field was dropped in recent JVMs. And even when it was present it was not used that often. –  Hot Licks Jan 7 at 17:18
1  
@supercat: it doesn’t matter whether you have native code or not, having different implementations for strings and substring within the same JVM or having byte[] strings for ASCII strings and char[] for others implies that every operation has to check which kind of string it is before operating. This hinders inlining of the code into the methods using strings which is the first step of further optimizations using the context information of the caller. This is a big impact. –  Holger Jan 8 at 18:27
show 14 more comments

In Java if two string primitive variable initialized by same literal they assigned the same reference to both variable:

String Test1="Hello World";
String Test2="Hello World";
System.out.println(test1==test2); // true

initialization

that is the reason comparison returns true. Third string created using substring() which make a new string instead of pointing the same.

sub string

when you access string using reflection, You get the actual pointer:

Field field = String.class.getDeclaredField("value");  
field.setAccessible(true);  

So change to this will change the string holding pointer of it but as s3 is created a new string due to substring() it would not change.

change

share|improve this answer
    
This only works for literals and is a compile-time optimization. –  Zaphod42 Jan 6 at 21:44
2  
@Zaphod42 Not true. You can also call intern manually on a non-literal String and reap the benefits. –  Chris Hayes Jan 8 at 8:48
    
Note, though: you want to use intern judiciously. Interning everything doesn't gain you much, and can be the source of some head-scratching moments when you add reflection to the mix. –  cHao Jan 24 at 2:17
add comment

You are using reflection to circumvent the immutability of String - it's a form of "attack".

There are lots of examples you can create like this (eg you can even instantiate a Void object too), but it doesn't mean that String is not "immutable".

There are use cases where this type of code may be used to your advantage and be "good coding", such as clearing passwords from memory at the earliest possible moment (before GC).

Depending on the security manager, you may not be able to execute your code.

share|improve this answer
add comment

You are using reflection to access the "implementation details" of string object. Immutability is the feature of the public interface of an object.

share|improve this answer
add comment

Visibility modifiers and final (i.e. immutability) are not a measurement against malicious code in Java; they are merely tools to protect against mistakes and to make the code more maintainable (one of the big selling points of the system). That is why you can access internal implementation details like the backing char array for Strings via reflection.

The second effect you see is that all Strings change while it looks like you only change s1. It is a certain property of Java String literals that they are automatically interned, i.e. cached. Two String literals with the same value will actually be the same object. When you create a String with new it will not be interned automatically and you will not see this effect.

#substring until recently (Java 7u6) worked in a similar way, which would have explained the behaviour in the original version of your question. It didn't create a new backing char array but reused the one from the original String; it just created a new String object that used an offset and a length to present only a part of that array. This generally worked as Strings are immutable - unless you circumvent that. This property of #substring also meant that the whole original String couldn't be garbage collected when a shorter substring created from it still existed.

As of current Java and your current version of the question there is no strange behaviour of #substring.

share|improve this answer
2  
Actually, visibility modifiers are (or at least were) intended as protection againts malicious code - however, you need to set a SecurityManager (System.setSecurityManager() ) to activate the protection. How secure this actually is is another question... –  sleske Jan 6 at 11:36
2  
Deserves an upvote because you emphasise that access modifiers are not intended to 'protect' code. This seems to be widely misunderstood in both Java and .NET. Although the previous comment does contradict that; I don't know much about Java, but in .NET this is certainly true. In neither language should users assume this makes their code hack-proof. –  Tom W Jan 6 at 12:42
    
It's not possible to violate the contract of final even through reflection. Also, as mentioned in another answer, since Java 7u6, #substring doesn't share arrays. –  ntoskrnl Jan 6 at 12:58
    
Hmm, seems I was wrong about final and reflection. –  ntoskrnl Jan 6 at 13:12
    
Actually, the behavior of final has changed over time... :-O According the "Reflection Madness" talk by Heinz I posted in the other thread, final meant final in JDK 1.1, 1.3 and 1.4, but could be modified using reflection using 1.2 always, and in 1.5 and 6 in most cases... –  haraldK Jan 6 at 17:22
show 1 more comment

String immutability is from the interface perspective. You are using reflection to bypass the interface and directly modify the internals of the String instances.

s1 and s2 are both changed because they are both assigned to the same "intern" String instance. You can find out a bit more about that part from this article about string equality and interning. You might be surprised to find out that in your sample code, s1 == s2 returns true!

share|improve this answer
add comment

Which version of Java are you using? From Java 1.7.0_06, Oracle has changed the internal representation of String, especially the substring.

Quoting from Oracle Tunes Java's Internal String Representation:

In the new paradigm, the String offset and count fields have been removed, so substrings no longer share the underlying char [] value.

With this change, it may happen without reflection (???).

share|improve this answer
1  
I am using 1.7.0_21 –  Darshan Patel Jan 6 at 12:59
2  
If the OP was using an older Sun/Oracle JRE, the last statement would print "Java!" (as he accidentally posted). This only affect the sharing of the value array between strings and sub strings. You still can't change the value without tricks, like reflection. –  haraldK Jan 6 at 13:25
add comment

According to the concept of pooling all the String variables containing the same value will point to the same memory address. Therefore s1 and s2 both containing the same value of “Hello World” will point towards the same memory location (say M1).

On the other hand s3 contains “World” , hence will point to a different memory allocation (say M2).

So now whats happening is that the value of S1 is being changed (by using char [ ] value ) . So the value at the memory location M1 pointed both by s1 and s2 has been changed .

Hence as a result memory location M1 has been modified which causes change in value of s1 and s2.

But the value of location M2 remains unaltered , hence s3 contains the same original value.

share|improve this answer
add comment

There are really 2 questions here:

  1. Are strings really immutable?
  2. Why is s3 not changed?

To point 1: Except for ROM there is no immutable memory in your computer. Nowadays even ROm is sometimes writable. There is always some code some where (wether it's the kernel or native code sidestepping your managed environment) that can write to your memory address. So, in "reality", no they are not absolutely immutable.

To point 2: This is because substring is probably allocating a new string instance, which is likely copying the array. It is possible to implement substring in such a way that it won't do a copy, but that doesn't mean it does. There are trade offs involved.

For example, should holding a reference to reallyLargeString.substring(reallyLargeString.length - 2) cause a large amount of memory to be held alive, or only a few bytes?

That depends on how substring is implemented. A deep copy will keep less memory alive, but will run slightly slower. A shallow copy will keep, more memory alive, but will be faster. Using a deep copy can also reduce heap fragmentation, as the string object and it's buffer can be allocated in one block, as opposed to. 2 separate heap allocations.

In any case, it looks like your JVM chose to use deep copies for substring calls.

share|improve this answer
1  
Real ROM is just as immutable as a photographic print encased in plastic. The pattern is permanently set when the wafer (or print) is chemically developed. Electrically-alterable memories, including RAM chips, can behave as "true" ROM if the control signals necessary to write it cannot be energized without adding additional electrical connections to the circuit wherein it is installed. It's actually not uncommon for embedded devices to include RAM which is set at the factory and maintained by a back-up battery, and whose contents would need to be reloaded by the factory if the battey failed. –  supercat Jan 7 at 17:41
    
@supercat: Your computer is not one of those embedded systems, though. :) True hard-wired ROMs haven't been common in PCs for a decade or two; everything's EEPROM and flash these days. Basically every user-visible address that refers to memory, refers to potentially writable memory. –  cHao Jan 24 at 2:34
    
@cHao: Many flash chips allow portions to be write-protected in a fashion which, if it can be undone at all, would require applying different voltages than would be required for normal operation (which motherboards would not be equipped to do). I would expect motherboards to use that feature. Further, I'm not certain about today's computers, but historically some computers have had a region of RAM which was write-protected during the boot stage and could only be unprotected by a reset (which would force execution to start from ROM). –  supercat Jan 24 at 15:40
1  
@supercat I think you are missing the point of the topic, which is that the strings, stored in RAM, aren't going to ever be truly immutable. –  Scott Wisniewski Jan 24 at 19:49
add comment

To add to the @haraldK's answer - this is a security hack which could lead to a serious impact in the app.

First thing is a modification to a constant string stored in a String Pool. When string is declared as a String s = "Hello World";, it's being places into a special object pool for further potential reusing. The issue is that compiler will place a reference to the modified version at compile time and once the user modifies the string stored in this pool at runtime, all references in code will point to the modified version. This would result into a following bug:

System.out.println("Hello World"); 

Will print:

Hello Java!

There was another issue I experienced when I was implementing a heavy computation over such risky strings. There was a bug which happened in like 1 out of 1000000 times during the computation which made the result undeterministic. I was able to find the problem by switching off the JIT - I was always getting the same result with JIT turned off. My guess is that the reason was this String security hack which broke some of the JIT optimization contracts.

share|improve this answer
    
It might have been a thread-safety issue that was masked by slower execution time and less concurrency without JIT. –  Ted Pennings Jan 7 at 21:37
    
@TedPennings From my description it could, I just didn't want to go too much into details. I actually spent like a couple of days trying to localize it. It was a single-threaded algorithm which calculated a distance between two texts written in two different languages. I found two possible fixes for the issue - one was to turn off the JIT and the second one was to add literally no-op String.format("") inside one of the inner loops. There is a chance for it being some-other-then-JIT-failure issue, but I believe it was JIT, because this issue was never reproduced again after adding this no-op. –  Andrey Chaschev Jan 7 at 22:44
    
I was doing this with an early version of JDK ~7u9, so it could be it. –  Andrey Chaschev Jan 7 at 22:48
    
@Andrey Chaschev: “I found two possible fixes for the issue”… the third possible fix, not to hack into the String internals, did not come into your mind? –  Holger Jan 8 at 11:40
    
@Ted Pennings: thread-safety issues and JIT issues are often the very same. The JIT is allowed to generate code which relies on the final field thread safety guarantees which break when modifying the data after object construction. So you can view it as a JIT issue or a MT issue just as you like. The real issue is to hack into the String and modify data which are expected to be immutable. –  Holger Jan 8 at 11:45
add comment

The reason s3 does not actually change is because in Java the when you do a substring the value character array for a substring is internally copied (using Arrays.copyOfRange()).

s1 and s2 are the same because in Java they both refer to the same interned string. It's by design in Java.

share|improve this answer
1  
How did this answer add anything to the answers before you? –  Gray Jan 7 at 20:52
    
Also note that this is a quite new behaviour, and not guaranteed by any spec. –  Paŭlo Ebermann Jan 7 at 21:15
    
The implementation of String.substring(int, int) changed with Java 7u6. Before 7u6, the JVM would just keep a pointer to the original String's char[] together with an index and length. After 7u6, it copies the substring into a new String There are pros and cons. –  Eric Jablow Jan 7 at 22:13
add comment

String is immutable, but through reflections you're allowed to change the String class. You've just redefined String class as mutable in real-time. You could redefine methods to be public or private or static if you wanted.

share|improve this answer
2  
If you change the visibility of fields/methods it isn't useful because at compile time they are private –  Bohemian Jan 6 at 23:55
1  
You can change the accessibility on methods but you can't change their public/private status and you can't make them be static. –  Gray Jan 7 at 20:49
add comment

[Disclaimer this is a deliberately opinionated style of answer as I feel a more "don't do this at home kids" answer is warranted]

The sin is the line field.setAccessible(true); which says to violate the public api by allowing access to a private field. Thats a giant security hole which can be locked down by configuring a security manager.

The phenomenon in the question are implementation details which you would never see when not using that dangerous line of code to violate the access modifiers via reflection. Clearly two (normally) immutable strings can share the same char array. Whether a substring shares the same array depends on whether it can and whether the developer thought to share it. Normally these are invisible implementation details which you should not have to know unless you shoot the access modifier through the head with that line of code.

It is simply not a good idea to rely upon such details which cannot be experienced without violating the access modifiers using reflection. The owner of that class only supports the normal public API and is free to make implementation changes in the future.

Having said all that the line of code is really very useful when you have a gun held you your head forcing you to do such dangerous things. Using that back door is usually a code smell that you need to upgrade to better library code where you don't have to sin. Another common use of that dangerous line of code is to write a "voodoo framework" (orm, injection container, ...). Many folks get religious about such frameworks (both for and against them) so I will avoid inviting a flame war by saying nothing other than the vast majority of programmers don't have to go there.

share|improve this answer
add comment

protected by Tats_innit Jan 8 at 0:33

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.