What is a StackOverflowError?

什么是StackOverflowError ,是什么原因造成的,我该如何处理它们?


Parameters and local variables are allocated on the stack (with reference types the object lives on the heap and a variable references that object). The stack typically lives at the upper end of your address space and as it is used up it heads towards the bottom of the address space (ie towards zero).

Your process also has a heap, which lives at the bottom end of your process. As you allocate memory, this heap can grow towards the upper end of your address space. As you can see, there is a potential for the heap to "collide" with the stack (a bit like tectonic plates!!!).

The common cause for a stack overflow is a bad recursive call. Typically, this is caused when your recursive functions doesn't have the correct termination condition, so it ends up calling itself forever. However, with GUI programming, it's possible to generate indirect recursion. For example, your app may be handling paint messages, and, whilst processing them, it may call a function that causes the system to send another paint message. Here you've not explicitly called yourself, but the OS/VM has done it for you.

To deal with them you'll need to examine your code. If you've got functions that call themselves then check that you've got a terminating condition. If you have then check than when calling the function you have at least modified one of the arguments, otherwise there'll be no visible change for the recursively called function and the terminating condition is useless.

If you've got no obvious recursive functions then check to see if you're calling any library functions that indirectly will cause your function to be called (like the implicit case above).


To describe this, first Let us understand how local variable and object are stored, Local variable are stored in stack 在这里输入图像描述

if you look at the image you should be able to understand how things are working.

When a function call is invoked by a Java application, a stack frame is allocated on the call stack. The stack frame contains the parameters of the invoked method, its local parameters, and the return address of the method. The return address denotes the execution point from which, the program execution shall continue after the invoked method returns. If there is no space for a new stack frame then, the StackOverflowError is thrown by the Java Virtual Machine (JVM). The most common case that can possibly exhaust a Java application's stack is recursion. In recursion, a method invokes itself during its execution. Recursion is considered as a powerful general-purpose programming technique, but must be used with caution, in order for the StackOverflowError to be avoided. An example that throws a StackOverflowError is shown below:

StackOverflowErrorExample.java:

public class StackOverflowErrorExample {

    public static void recursivePrint(int num) {
        System.out.println("Number: " + num);

        if(num == 0)
            return;
        else
            recursivePrint(++num);
    }

    public static void main(String[] args) {
        StackOverflowErrorExample.recursivePrint(1);
    }
}

In this example, we define a recursive method, called recursivePrint that prints an integer and then, calls itself, with the next successive integer as an argument. The recursion ends once we invoke the method, passing 0 as a parameter. However, in our example, we start printing numbers from 1 and thus, the recursion will never terminate. A sample execution, using the -Xss1M flag that specifies the size of the thread stack to equal to 1MB, is shown below:

Number: 1
Number: 2
Number: 3
...
Number: 6262
Number: 6263
Number: 6264
Number: 6265
Number: 6266
Exception in thread "main" java.lang.StackOverflowError
        at java.io.PrintStream.write(PrintStream.java:480)
        at sun.nio.cs.StreamEncoder.writeBytes(StreamEncoder.java:221)
        at sun.nio.cs.StreamEncoder.implFlushBuffer(StreamEncoder.java:291)
        at sun.nio.cs.StreamEncoder.flushBuffer(StreamEncoder.java:104)
        at java.io.OutputStreamWriter.flushBuffer(OutputStreamWriter.java:185)
        at java.io.PrintStream.write(PrintStream.java:527)
        at java.io.PrintStream.print(PrintStream.java:669)
        at java.io.PrintStream.println(PrintStream.java:806)
        at StackOverflowErrorExample.recursivePrint(StackOverflowErrorExample.java:4)
        at StackOverflowErrorExample.recursivePrint(StackOverflowErrorExample.java:9)
        at StackOverflowErrorExample.recursivePrint(StackOverflowErrorExample.java:9)
        at StackOverflowErrorExample.recursivePrint(StackOverflowErrorExample.java:9)
        ...

Depending on the JVM's initial configuration, the results may differ, but eventually the StackOverflowError shall be thrown. This example is a very good example of how recursion can cause problems, if not implemented with caution.

How to deal with the StackOverflowError

  • The simplest solution is to carefully inspect the stack trace and detect the repeating pattern of line numbers. These line numbers indicate the code being recursively called. Once you detect these lines, you must carefully inspect your code and understand why the recursion never terminates.

  • If you have verified that the recursion is implemented correctly, you can increase the stack's size, in order to allow a larger number of invocations. Depending on the Java Virtual Machine (JVM) installed, the default thread stack size may equal to either 512KB, or 1MB. You can increase the thread stack size using the -Xss flag. This flag can be specified either via the project's configuration, or via the command line. The format of the -Xss argument is: -Xss[g|G|m|M|k|K]


  • If you have a function like:

    int foo()
    {
        // more stuff
        foo();
    }
    

    Then foo() will keep calling itself, getting deeper and deeper, and when the space used to keep track of what functions you're in is filled up, you get the stack overflow error.

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