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.

Eclipse issues warnings when a serialVersionUID is missing.

The serializable class Foo does not declare a static final serialVersionUID field of type long

What is serialVersionUID and why is it important? Please show an example where missing serialVersionUID will cause a problem.

share|improve this question
18  
This website has a very good example and simple explanation. javablogging.com/what-is-serialversionuid –  kensen john Sep 15 '11 at 19:33

16 Answers 16

up vote 704 down vote accepted

The docs for java.io.Serializable are probably about as good an explanation as you'll get:

The serialization runtime associates with each serializable class a version number, called a serialVersionUID, which is used during deserialization to verify that the sender and receiver of a serialized object have loaded classes for that object that are compatible with respect to serialization. If the receiver has loaded a class for the object that has a different serialVersionUID than that of the corresponding sender's class, then deserialization will result in an InvalidClassException. A serializable class can declare its own serialVersionUID explicitly by declaring a field named "serialVersionUID" that must be static, final, and of type long:

ANY-ACCESS-MODIFIER static final long serialVersionUID = 42L;

If a serializable class does not explicitly declare a serialVersionUID, then the serialization runtime will calculate a default serialVersionUID value for that class based on various aspects of the class, as described in the Java(TM) Object Serialization Specification. However, it is strongly recommended that all serializable classes explicitly declare serialVersionUID values, since the default serialVersionUID computation is highly sensitive to class details that may vary depending on compiler implementations, and can thus result in unexpected InvalidClassExceptions during deserialization. Therefore, to guarantee a consistent serialVersionUID value across different java compiler implementations, a serializable class must declare an explicit serialVersionUID value. It is also strongly advised that explicit serialVersionUID declarations use the private modifier where possible, since such declarations apply only to the immediately declaring class--serialVersionUID fields are not useful as inherited members.

share|improve this answer
88  
So, what you are saying essentially is that if a user did not understand all the above material, said user aught not bother worrying about serialization? I believe you answered the "how?" rather than explaining the "why?". I, for one, do not understand why I aught bother with SerializableVersionUID. –  Ziggy Jan 1 '09 at 7:27
98  
The why is in the second paragraph: if you don't explicitly specify serialVersionUID, a value is generated automatically - but that's brittle because it's compiler implementation dependent. –  Jon Skeet Jan 1 '09 at 20:26
136  
I wonder if 42 in the javadoc has some special meaning :) –  BalusC May 22 '12 at 18:50
52  
It's still the answer to life, the universe and everything ;) en.wikipedia.org/wiki/… –  Glenn VdB May 23 '12 at 13:26
9  
@WChargin: I think you've missed the point of Thomas's comment, which was a reference to The Hitchhiker's Guide To The Galaxy, where "what do you get if you multiply six by nine" is picked out on a prehistoric Scrabble board. –  Jon Skeet May 8 '13 at 5:44

If you're serializing just because you have to serialize for the implementation's sake (who cares if you serialize for an HTTPSession, for instance...if it's stored or not, you probably don't care about de-serializing a form object), then you can ignore this.

If you're actually using serialization, it only matters if you plan on storing and retrieving objects using serialization directly. The serialVersionUID represents your class version, and you should increment it if the current version of your class is not backwards compatible with its previous version.

Most of the time, you will probably not use serialization directly. If this is the case, generate a default serializable uid by clicking the quick fix option and don't worry about it.

share|improve this answer
29  
I'd say that if you're not using serialization for permanent storage, you should use @SuppressWarnings rather than adding a value. It clutters the class less, and it preserves the abiity of the serialVersionUID mechanism to protect you from incompatible changes. –  Tom Anderson Apr 24 '11 at 10:43
8  
I don't see how adding one line (@SuppressWarnings annotation) as opposed to another line (serializable id) "clutters the class less". And if you're not using serialization for permanent storage, why wouldn't you just use "1"? You would not care about the autogenerated ID in that case anyways. –  MetroidFan2002 Apr 25 '11 at 17:09
33  
@MetroidFan2002: I think @TomAnderson's point of serialVersionUID protecting you from incompatible changes is valid. Using @SuppressWarnings documents the intent better if you don't wish to use the class for permanent storage. –  Hippo Dec 30 '11 at 14:32
4  
"You should increment it if the current version of your class is not backwards compatible with its previous version:" You should first explore the extensive object versioning support of Serialization, (a) to ensure that the class really is now serialization-incompatible way, which per the specification is quite difficult to achieve; (b) to try a scheme such as custom read/writeObject() methods, readResolve/writeReplace() methods, serializableFields declarations, etc, to make sure that the stream remains compatible. Changing the actual serialVersionUID is a last resort, a counsel of despair. –  EJP Dec 12 '12 at 0:59

I can't pass up this opportunity to plug Josh Bloch's book Effective Java (2nd Edition). Chapter 11 is an indispensible resource on Java serialization.

Per Josh, the automatically-generated UID is generated based on a class name, implemented interfaces, and all public and protected members. Changing any of these in any way will change the serialVersionUID. So you don't need to mess with them only if you are certain that no more than one version of the class will ever be serialized (either across processes or retrieved from storage at a later time).

If you ignore them for now, and find later that you need to change the class in some way but maintain compatibility w/ old version of the class, you can use the JDK tool serialver to generate the serialVersionUID on the old class, and explicitly set that on the new class. (Depending on your changes you may need to also implement custom serialization by adding writeObject and readObject methods - see Serializable javadoc or aforementioned chapter 11.)

share|improve this answer
11  
So one might bother with SerializableVersionUID if one were concerned about compatibility w/ old versions of a class? –  Ziggy Jan 1 '09 at 7:28
3  
Yup, in case if the newer version changes any public member to protected, the default SerializableVersionUID will be different and will raise an InvalidClassExceptions. –  Chander Shivdasani Jan 13 '12 at 19:49
    
class Name, implemented interfaces, all public and protected methods,ALL instance variables. –  anirban chowdhury Mar 1 '13 at 4:38
    
It is worth noting that Joshua Bloch advices that for every Serializable class it's worth specifying the serial version uid. Quote from chapter 11: Regardless of what serialized form you choose, declare an explicit serial version UID in every serializable class you write. This eliminates the serial version UID as a potential source of incompatibility (Item 74). There is also a small performance benefit. If no serial version UID is provided, an expensive computation is required to generate one at runtime. –  Ashutosh Jindal Jul 8 at 13:25

You can tell Eclipse to ignore these serialVersionUID warnings:

Window > Preferences > Java > Compiler > Errors / Warnings > Potential Programming Problems

In case you didn't know, there are a lot of other warnings you can enable in this section (or even have some reported as errors), many are very useful:

  • Potential Programming Problems: Possible accidental boolean assignment
  • Potential Programming Problems: Null pointer access
  • Unnecessary code: Local variable is never read
  • Unnecessary code: Redundant null check
  • Unnecessary code: Unnecessary cast or 'instanceof'

and many more.

share|improve this answer
10  
upvote but only because the original poster doesn't appear to be serializing anything. If the poster said "i'm serializing this thing and ..." then you'd get a vote down instead :P –  John Gardner Nov 13 '08 at 1:28
    
True - I was assuming the questioner simply didn't want to be warned –  matt b Nov 13 '08 at 2:52
8  
@Gardner -> agreed! But the questioner also wants to know why he might not want to be warned. –  Ziggy Jan 1 '09 at 7:29

serialVersionUID facilitates versioning of serialized data. Its value is stored with the data when serializing. When de-serializing, the same version is checked to see how the serialized data matches the current code.

If you want to version your data, you normally start with a serialVersionUID of 0, and bump it with every structural change to your class which alters the serialized data (adding or removing non-transient fields).

The built-in de-serialization mechanism (in.defaultReadObject()) will refuse to de-serialize from old versions of the data. But if you want to you can define your own readObject()-function which can read back old data. This custom code can then check the serialVersionUID in order to know which version the data is in and decide how to de-serialize it. This versioning technique is useful if you store serialized data which survives several versions of your code.

But storing serialized data for such a long time span is not very common. It is far more common to use the serialization mechanism to temporarily write data to for instance a cache or send it over the network to another program with the same version of the relevant parts of the codebase.

In this case you are not interested in maintaining backwards compatibility. You are only concerned with making sure that the code bases which are communicating indeed have the same versions of relevant classes. In order to facilitate such a check, you must maintain the serialVersionUID just like before and not forget to update it when making changes to your classes.

If you do forget to update the field, you might end up with two different versions of a class with different structure but with the same serialVersionUID. If this happens, the default mechanism (in.defaultReadObject()) will not detect any difference, and try to de-serialize incompatible data. Now you might end up with a cryptic runtime error or silent failure (null fields). These types of errors might be hard to find.

So to help this usecase, the Java platform offers you a choice of not setting the serialVersionUID manually. Instead, a hash of the class structure will be generated at compile-time and used as id. This mechanism will make sure that you never have different class structures with the same id, and so you will not get these hard-to-trace runtime serialization failures mentioned above.

But there is a backside to the auto-generated id strategy. Namely that the generated ids for the same class might differ between compilers (as mentioned by Jon Skeet above). So if you communicate serialized data between code compiled with different compilers, it is recommended to maintain the ids manually anyway.

And if you are backwards-compatible with your data like in the first use case mentioned, you also probably want to maintain the id yourself. This in order to get readable ids and have greater control over when and how they change.

share|improve this answer
    
If I would have read your post earlier, I would not have failed in my interview :-) –  Vishal Jan 18 at 5:28
    
Adding or removing non-transient fields doesn't make the class serialization-incompatible. There is therefore no reason to 'bump it' on such changes. –  EJP Feb 7 at 1:05
    
@EJP: Huh? Adding data definitely changes the serialization data in my world. –  Alexander Torstling Feb 7 at 19:12
    
@AlexanderTorstling Read what I wrote. I didn't say it doesn't 'change the serialization data'. I said it 'doesn't make the class serialization-incompatible'. It isn't the same thing. You need to read the Versioning chapter of the Object Serialization Specification. –  EJP May 20 at 21:27
    
@EJP: I realize that adding a non-transient field doesn't necessarily mean that you make the class serialization-incompatible, but it is a structural change which alters the serialized data and you usually want to bump the version when doing so unless you handle backwards compatibility, which I also explained later in the post. What is your point exactly? –  Alexander Torstling May 21 at 6:42

What is a serialVersionUID and why should I use it?

SerialVersionUID is a unique identifier for each class, JVM uses it to compare the versions of the class ensuring that the same class was used during Serialization is loaded during Deserialization.

Specifying one gives more control, though JVM does generate one if you don't specify. The value generated can differ between different compilers. Furthermore, sometimes you just want for some reason to forbid deserialization of old serialized objects [backward incompatibility], and in this case you just have to change the serialVersionUID.

Java docs says:

"the default serialVersionUID computation is highly sensitive to class details that may vary depending on compiler implementations, and can thus result in unexpected InvalidClassExceptions during deserialization".

You must declare serialVersionUID because it give us more control.

This article has some good points on the topic.

share|improve this answer
3  
This answer is more clear than the Jon Skeet answer, since I don't have to read that bunch of text, thanks dude –  Nick N. Nov 14 '13 at 13:58
3  
This is probably the best answer here; it's concise, answers the question and provides further reading links. +1 –  Phillip Elm May 6 at 20:03
    
@Vinothbabu but serialVersionUID is static so static variables cannot be serialized. then how come jvm will check version, without knowing what is the version of the deserializing object –  Kranthi Sama Jun 16 at 11:06
    
The one thing not mentioned in this answer is that you may cause unintended consequences by blindly including serialVersionUID without knowing why. Tom Anderson's comment on MetroidFan2002's answer addresses this: "I'd say that if you're not using serialization for permanent storage, you should use @SuppressWarnings rather than adding a value. It clutters the class less, and it preserves the ability of the serialVersionUID mechanism to protect you from incompatible changes." –  Kirby Jun 17 at 16:30
    
Very appropriate! –  Haris Mehmood yesterday

If you get this warning on a class you don't ever think about serializing, and that you didn't declare yourself implements Serializable, it is often because you inherited from a superclass, which implements Serializable. Often then it would be better to delegate to such a object instead of using inheritance.

So, instead of

public class MyExample extends ArrayList<String> {

    public MyExample() {
        super();
    }
    ...
}

do

public class MyExample {
    private List<String> myList;

    public MyExample() {
         this.myList = new ArrayList<String>();
    }
    ...
}

and in the relevant methods call myList.foo() instead of this.foo() (or super.foo()). (This does not fit in all cases, but still quite often.)

I often see people extending JFrame or such, when they really only need to delegate to this. (This also helps for auto-completing in a IDE, since JFrame has hundreds of methods, which you don't need when you want to call your custom ones on your class.)

One case where the warning (or the serialVersionUID) is unavoidable is when you extend from AbstractAction, normally in a anonymous class, only adding the actionPerformed-method. I think there shouldn't be a warning in this case (since you normally can't reliable serialize and deserialize such anonymous classes anyway accross different versions of your class), but I'm not sure how the compiler could recognize this.

share|improve this answer
1  
I think you're right that composition over inhneritance makes more sense, particularly when you're discussing classes such as ArrayList. However, many frameworks require people to extend from abstract superclasses which are serializable (such as Struts 1.2's ActionForm class, or Saxon's ExtensionFunctionDefinition) in which case this solution is infeasible. I think you're right, it would be nice if the warning were ignored in certain cases (like if you were extending from an abstract serializable class) –  piepera Dec 7 '11 at 15:20
    
Surely if you add a class as a member, rather than inheriting from it, you would have to write a wrapper method for EVERY method of the member class that you wished to use, which would make it unfeasible in a large number of situations... unless java has a function similar to perl's __AUTOLOAD, which I don't know about. –  M_M Aug 19 '12 at 22:15
2  
@M_M: When you would delegate lots of methods to your wrapped object, of course it would not be appropriate to use delegation. But I suppose that this case is a sign of a design mistake - the users of your class (e.g. "MainGui") shouldn't need to call lots of methods of the wrapped object (e.g. JFrame). –  Paŭlo Ebermann Aug 20 '12 at 8:09

If you will never need to serialize your objects to byte array and send/store them, then you don't need to worry about it. If you do, then you must consider your serialVersionUID since the deserializer of the object will match it to the version of object its classloader has. Read more about it in the Java Language Specification.

share|improve this answer
1  
If you're not going to serialize the objects, why are they Serializable? –  erickson Nov 13 '08 at 5:34
4  
@erickson - the parent class may be serializable, say, ArrayList, but you want your own object (say, a modified array list) to use it as a base but are never going to serialize the Collection that you create. –  MetroidFan2002 Mar 30 '09 at 14:12
    
It isn't mentioned anywhere in the Java Language Specification. It's mentioned in the Object Versioning Specification. –  EJP Feb 7 at 1:10

Don't bother, the default calculation is really good and suffice for 99,9999% of the cases. And if you run into problems, you can - as already stated - introduce UID's as the need arrise (which is highly unlikely)

share|improve this answer

I generally use serialVersionUID in one context: When I know it will be leaving the context of the Java VM.

I would know this when I to use ObjectInputStream and ObjectOutputStream for my application or if I know a library/framework I use will use it. The serialVersionID ensures different Java VMs of varying versions or vendors will inter-operate correctly or if it is stored and retrieved outside the VM for example HttpSession the session data can remain even during a restart and upgrade of the application server.

For all other cases, I use

@SuppressWarnings("serial")

since most of the time the default serialVersionUID is sufficient. This includes Exception, HttpServlet.

share|improve this answer
    
It doesn't include HttpServlet in containers where they can be swapped out, or Exception in RMI for example. –  EJP May 20 at 21:36

To understand the significance of field serialVersionUID, one should understand how Serialization/Deserialization works.

When a Serializable class object is serialized Java Runtime associates a serial version no.(called as serialVersionUID) with this serialized object. At the time when you deserialize this serialized object Java Runtime matches the serialVersionUID of serialized object with the serialVersionUID of the class. If both are equal then only it proceeds with the further process of deserialization else throws InvalidClassException.

So we conclude that to make Serialization/Deserialization process successful the serialVersionUID of serialized object must be equivalent to the serialVersionUID of the class. In case if programmer specifies the serialVersionUID value explicitly in the program then the same value will be associated with the serialized object and the class, irrespective of the serialization and deserialzation platform(for ex. serialization might be done on platform like windows by using sun or MS JVM and Deserialization might be on different platform Linux using Zing JVM).

But in case if serialVersionUID is not specified by programmer then while doing Serialization\DeSerialization of any object, Java runtime uses its own algorithm to calculate it. This serialVersionUID calculation algorithm varies from one JRE to another. It is also possible that the environment where the object is serialized is using one JRE (ex: SUN JVM) and the environment where deserialzation happens is using Linux Jvm(zing). In such cases serialVersionUID associated with serialized object will be different than the serialVersionUID of class calculated at deserialzation environment. In turn deserialization will not be successful. So to avoid such situations/issues programmer must always specify serialVersionUID of Serializable class.

share|improve this answer
    
The algorithm doesn't vary, but it is slightly under-specified. –  EJP May 20 at 21:35

Original question has asked for 'why is it important' and 'example' where this Serial Version ID would be useful. Well I have found one.

Say you create a Car class, instantiate it, and write it out to an object stream. The flattened car object sits in the file system for some time. Meanwhile, if the Car class is modified by adding a new field. Later on, when you try to read (i.e. deserialize) the flattened Car object, you get the java.io.InvalidClassException – because all serializable classes are automatically given a unique identifier. This exception is thrown when the identifier of the class is not equal to the identifier of the flattened object. If you really think about it, the exception is thrown because of the addition of the new field. You can avoid this exception being thrown by controlling the versioning yourself by declaring an explicit serialVersionUID. There is also a small performance benefit in explicitly declaring your serialVersionUID (because does not have to be calculated). So, it is best practice to add your own serialVersionUID to your Serializable classes as soon as you create them as shown below:

public class Car {
static final long serialVersionUID = 1L; //assign a long value
}
share|improve this answer
1  
Thank you for answering the question as asked. That was a very informative and enlightening response. –  Ken Ingram Jun 6 at 21:36

As for an example where the missing serialVersionUID might cause a problem:

I'm working on this Java EE application that is composed of a Web module that uses an EJB module. The web module calls the EJB module remotely and passes a POJO that implements Serializable as an argument.

This POJO's class was packaged inside the EJB jar and inside it's own jar in the WEB-INF/lib of the web module. They're actually the same class, but when I package the EJB module I unpack this POJO's jar to pack it together with the EJB module.

The call to the EJB was failing with the Exception below because I hadn't declared its serialVersionUID:

Caused by: java.io.IOException: Mismatched serialization UIDs : Source
 (Rep.
 IDRMI:com.hordine.pedra.softbudget.domain.Budget:5CF7CE11E6810A36:04A3FEBED5DA4588)
 = 04A3FEBED5DA4588 whereas Target (Rep. ID RMI:com.hordine.pedra.softbudget.domain.Budget:7AF5ED7A7CFDFF31:6227F23FA74A9A52)
 = 6227F23FA74A9A52
share|improve this answer

The serialization runtime associates with each serializable class a version number, called a serialVersionUID, which is used during deserialization to verify that the sender and receiver of a serialized object have loaded classes for that object that are compatible with respect to serialization. If the receiver has loaded a class for the object that has a different serialVersionUID than that of the corresponding sender's class, then deserialization will result in an InvalidClassException. A serializable class can declare its own serialVersionUID explicitly by declaring a field named "serialVersionUID" that must be static, final, and of type long:

ANY-ACCESS-MODIFIER static final long serialVersionUID = 42L;

share|improve this answer

It would be nice if CheckStyle could verify that the serialVersionUID on a class that implements Serializable has a good value, i.e. that it matches what the serial version id generator would produce. If you have a project with lots of serializable DTOs, for example, remembering to delete the existing serialVersionUID and regenerate it is a pain, and currently the only way (that I know of) to verify this is to regenerate for each class and compare to the old one. This is very very painful.

share|improve this answer
7  
If you set the serialVersionUID always to the same value the generator would produce, you don't really need it at all. After all, its raison d'être is to stay same after changes, when the class is still compatible. –  Paŭlo Ebermann Feb 20 '11 at 2:04
3  
The reason is so that different compilers come up with the same value for the same class. As explained in the javadocs (also answered above), the generated version is brittle and can vary even when the class is properly deserializable. As long as you run this test on the same compiler each time, it should be safe. god help you if you upgrade the jdk and a new rule comes out, even though you code didn't change. –  Andrew Backer Aug 9 '11 at 8:29
    
It's not required to match what serialver would produce. -1 –  EJP Feb 7 at 1:10

Field data represents some information stored in the class. Class implements the Serializable interface, so eclipse automatically offered to declare the serialVersionUID field. Lets start with value 1 set there.

If you don't want that warning to come, use this:

@SuppressWarnings("serial")
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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