


A brief analysis of the method of operating bytecode in java bytecode framework ASM
We have introduced ASM in detail before. Friends who need it can click here: In-depth study of java bytecode framework ASM
JVM type signature comparison table
For example, the java method is
long f (int n, String s, int[] arr);
and the corresponding type signature is
f (ILjava/lang/String;[I)J
Another example, The java method is
private void hi(double a, List<String> b);
, and the corresponding type signature is
hi (DLjava/util/List;)V
. Next, you can use ASM to verify whether the above two type signatures are correct:
public class Test { public static void main(String[] args) throws Exception { ClassPrinter printer = new ClassPrinter(); //读取静态内部类Bazhang ClassReader cr = new ClassReader("Test$Bazhang"); cr.accept(printer, 0); } //静态内部类 static class Bazhang { public Bazhang(int a) { } private long f (int n, String s, int[] arr){ return 0; } private void hi(double a, List<String> b){ } } static class ClassPrinter extends ClassVisitor { public ClassPrinter() { super(Opcodes.ASM5); } @Override public void visit(int version, int access, String name, String signature, String superName, String[] interfaces) { super.visit(version, access, name, signature, superName, interfaces); //打印出父类name和本类name System.out.println(superName + " " + name); } @Override public MethodVisitor visitMethod(int access, String name, String desc, String signature, String[] exceptions) { //打印出方法名和类型签名 System.out.println(name + " " + desc); return super.visitMethod(access, name, desc, signature, exceptions); } } }
The last printed content:
java/lang/Object Test$Bazhang <init> ()V f (ILjava/lang/String;[I)J hi (DLjava/util/List;)V
Verified the previous correctness, where you can see the default The constructor is also printed.
Then let’s do something interesting next. Let’s add a new method to the Bazhang class and set it as:
public void newFunc(String str){ }
At this time, you need to use ClassWriter , used to splice bytecode. For specific articles about ClassReader, ClassVisitor, and ClassWriter, you can view this article: Detailed explanation of ClassReader, ClassVisitor, and ClassWriter for ASM source code learning
public static void main(String[] args) throws Exception { ClassReader cr = new ClassReader(Bazhang.class.getName()); ClassWriter cw = new ClassWriter(cr, ClassWriter.COMPUTE_MAXS); cr.accept(cw, Opcodes.ASM5); MethodVisitor mv = cw.visitMethod(ACC_PUBLIC, "newFunc", "(Ljava/lang/String;)V", null, null); mv.visitInsn(Opcodes.RETURN); mv.visitEnd(); // 获取生成的class文件对应的二进制流 byte[] code = cw.toByteArray(); //将二进制流写到out/下 FileOutputStream fos = new FileOutputStream("out/Bazhang222.class"); fos.write(code); fos.close(); }
This will generate Bazhang222.class in the out/folder:
// // Source code recreated from a .class file by IntelliJ IDEA // (powered by Fernflower decompiler) // import java.util.List; class Test$Bazhang { Test$Bazhang() { } private long f(int n, String s, int[] arr) { return 0L; } private void hi(double a, List<String> b) { } public void newFunc(String var1) { } }
Combined with the previously organized JVM instruction set, use ASM to directly operate the bytecode It’s no problem. At the end, the ASM source code download address is attached: http://forge.ow2.org/projects/asm/
Summary
The above is the entire content of this article. I hope the content of this article can be of some help to everyone's study or work. If you have any questions, you can leave a message to communicate.
For more related articles on the methods of java bytecode framework ASM operating bytecode, please pay attention to the PHP Chinese website!

Emerging technologies pose both threats and enhancements to Java's platform independence. 1) Cloud computing and containerization technologies such as Docker enhance Java's platform independence, but need to be optimized to adapt to different cloud environments. 2) WebAssembly compiles Java code through GraalVM, extending its platform independence, but it needs to compete with other languages for performance.

Different JVM implementations can provide platform independence, but their performance is slightly different. 1. OracleHotSpot and OpenJDKJVM perform similarly in platform independence, but OpenJDK may require additional configuration. 2. IBMJ9JVM performs optimization on specific operating systems. 3. GraalVM supports multiple languages and requires additional configuration. 4. AzulZingJVM requires specific platform adjustments.

Platform independence reduces development costs and shortens development time by running the same set of code on multiple operating systems. Specifically, it is manifested as: 1. Reduce development time, only one set of code is required; 2. Reduce maintenance costs and unify the testing process; 3. Quick iteration and team collaboration to simplify the deployment process.

Java'splatformindependencefacilitatescodereusebyallowingbytecodetorunonanyplatformwithaJVM.1)Developerscanwritecodeonceforconsistentbehavioracrossplatforms.2)Maintenanceisreducedascodedoesn'tneedrewriting.3)Librariesandframeworkscanbesharedacrossproj

To solve platform-specific problems in Java applications, you can take the following steps: 1. Use Java's System class to view system properties to understand the running environment. 2. Use the File class or java.nio.file package to process file paths. 3. Load the local library according to operating system conditions. 4. Use VisualVM or JProfiler to optimize cross-platform performance. 5. Ensure that the test environment is consistent with the production environment through Docker containerization. 6. Use GitHubActions to perform automated testing on multiple platforms. These methods help to effectively solve platform-specific problems in Java applications.

The class loader ensures the consistency and compatibility of Java programs on different platforms through unified class file format, dynamic loading, parent delegation model and platform-independent bytecode, and achieves platform independence.

The code generated by the Java compiler is platform-independent, but the code that is ultimately executed is platform-specific. 1. Java source code is compiled into platform-independent bytecode. 2. The JVM converts bytecode into machine code for a specific platform, ensuring cross-platform operation but performance may be different.

Multithreading is important in modern programming because it can improve program responsiveness and resource utilization and handle complex concurrent tasks. JVM ensures the consistency and efficiency of multithreads on different operating systems through thread mapping, scheduling mechanism and synchronization lock mechanism.


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