Java 'ext' directory versus -Xbootclasspath/p: - java

I want to make use of the JSR166 facilities in Java 6. So I've downloaded the jar.
I'd like to make this process (relatively) painless. I was perplexed to discover that adding it to the ext directory in my Mac's JDK/JRE (or to /Library/Java/extensions) did not work.
Only -Xbootclasspath did the trick.
Why is this? Are exts somehow defined more narrowly?

Installing JAR's into the extension directory makes them just as available to use as including them via the -Xbootclasspath option. In terms of load order you have this:
Bootstrap class path. This is controlled by the JVM provider, and
can be overridden with the (non-standard) -Xbootclasspath command
line option.
Extension folder - JAR's in this folder are loaded and scoped with
the same availability as bootstrap classes.
User classes - User classes are loaded from the sources defined via
the class path property. This is by default specified by the
CLASSPATH environment variable but can be overridden by the
standard -cp command line option.
Any classes found in the bootstrap class path or loaded as an extension should be immediately available to your program.
You can easily verify this on your Mac. Compile the following:
public class Test {
public static void main(String[] args) {
System.out.println("Hello World");
}
}
And in a command console:
javac Test.java
jar cvf test.jar Test.class
cp test.jar /Library/Java/Extensions
rm Test.class test.jar
java Test
And of course the result will be 'Hello World' printed to your console.
Check to make sure you were invoking the right class from your JAR, and that it was actually placed in the right extension folder.

Related

Oracle Driver not found? Classpath is set, JAR/JDBC file file is compatible [duplicate]

I was just reading this line:
The first thing the format() method does is load a Velocity template from the classpath named output.vm
Please explain what was meant by classpath in this context, and how I should set the classpath.
When programming in Java, you make other classes available to the class you are writing by putting something like this at the top of your source file:
import org.javaguy.coolframework.MyClass;
Or sometimes you 'bulk import' stuff by saying:
import org.javaguy.coolframework.*;
So later in your program when you say:
MyClass mine = new MyClass();
The Java Virtual Machine will know where to find your compiled class.
It would be impractical to have the VM look through every folder on your machine, so you have to provide the VM a list of places to look. This is done by putting folder and jar files on your classpath.
Before we talk about how the classpath is set, let's talk about .class files, packages, and .jar files.
First, let's suppose that MyClass is something you built as part of your project, and it is in a directory in your project called output. The .class file would be at output/org/javaguy/coolframework/MyClass.class (along with every other file in that package). In order to get to that file, your path would simply need to contain the folder 'output', not the whole package structure, since your import statement provides all that information to the VM.
Now let's suppose that you bundle CoolFramework up into a .jar file, and put that CoolFramework.jar into a lib directory in your project. You would now need to put lib/CoolFramework.jar into your classpath. The VM will look inside the jar file for the org/javaguy/coolframework part, and find your class.
So, classpaths contain:
JAR files, and
Paths to the top of package hierarchies.
How do you set your classpath?
The first way everyone seems to learn is with environment variables. On a unix machine, you can say something like:
export CLASSPATH=/home/myaccount/myproject/lib/CoolFramework.jar:/home/myaccount/myproject/output/
On a Windows machine you have to go to your environment settings and either add or modify the value that is already there.
The second way is to use the -cp parameter when starting Java, like this:
java -cp "/home/myaccount/myproject/lib/CoolFramework.jar:/home/myaccount/myproject/output/" MyMainClass
A variant of this is the third way which is often done with a .sh or .bat file that calculates the classpath and passes it to Java via the -cp parameter.
There is a "gotcha" with all of the above. On most systems (Linux, Mac OS, UNIX, etc) the colon character (':') is the classpath separator. In windowsm the separator is the semicolon (';')
So what's the best way to do it?
Setting stuff globally via environment variables is bad, generally for the same kinds of reasons that global variables are bad. You change the CLASSPATH environment variable so one program works, and you end up breaking another program.
The -cp is the way to go. I generally make sure my CLASSPATH environment variable is an empty string where I develop, whenever possible, so that I avoid global classpath issues (some tools aren't happy when the global classpath is empty though - I know of two common, mega-thousand dollar licensed J2EE and Java servers that have this kind of issue with their command-line tools).
Think of it as Java's answer to the PATH environment variable - OSes search for EXEs on the PATH, Java searches for classes and packages on the classpath.
The classpath is one of the fundamental concepts in the Java world and it's often misunderstood or not understood at all by java programmes, especially beginners.
Simply put, the classpath is just a set of paths where the java compiler and the JVM must find needed classes to compile or execute other classes.
Let's start with an example, suppose we have a Main.java file thats under C:\Users\HP\Desktop\org\example,
package org.example;
public class Main {
public static void main(String[] args) {
System.out.println("Hello world");
}
}
And Now, suppose we are under C:\ directory and we want to compile our class, Its easy right, just run:
javac .\Users\HP\Desktop\org\example\Main.java
Now for the hard question, we are in the same folder C:\ and we want to run the compiled class.
Despite of what you might think of to be the answer, the right one is:
java -cp .\Users\HP\Desktop org.example.Main
I'll explain why, first of all, the name of the class that we want ro tun is org.exmaple.Main not Main, or Main.class or .\users\hp\desktop\org\example\Main.class ! This is how things works with classes declared under packages.
Now, we provided the name of the class to the JVM (java command in this case), But how it (JVM) will know where to find the .class file for the Main class? Thats where the classpath comes into picture. Using -cp flag (shortcut for -classpath), we tell the JVM that our Main.class file will be located at C:\users\hp\Desktop.. In fact, not really, we tell it to just go to the Desktop directory, and, because of the name of the class org.example.Main, the JVM is smart and it will go from Desktop to org directory, and from org to example directory, searching for Main.class file, and it will find it and it will kill it, I mean, it will run it :D .
Now lets suppose that inside the Main class we want to work with another class named org.apache.commons.lang3.StringUtils and the latter is located in a jar file named commons-lang3-3.10.jar thats inside C:\Users\HP\Downloads. So Main.java will look like this now:
package org.example;
import org.apache.commons.lang3.StringUtils;
public class Main {
public static void main(String[] args) {
System.out.println("Hello world");
System.out.println(StringUtils.equals("java", "java")); //true
}
}
How to compile the Main.java if we are always inside C:\ ? The answer is:
javac -cp .\Users\HP\Downloads\commons-lang3-3.10.jar .\Users\HP\Desktop\org\example\Main.java
.\Users\HP\Desktop\org\example\Main.java is because our .java file is there in the filesystem.
-cp .\Users\HP\Downloads\commons-lang3-3.10.jar is because the java compiler (javac in this case) need to know the location of the class org.apache.commons.lang3.StringUtils, so we provided the path of the jar file, and the compiler will then go inside the jar file and try to find a file StringUtils.class inside a directory org\apache\commons\lang3.
And if we want to run the Main.class file, we will execute:
java -cp ".\Users\HP\Desktop\;.\Users\HP\Downloads\commons-lang3-3.10.jar" org.example.Main
org.example.Main is the name of the class.
".\Users\HP\Desktop\;.\Users\HP\Downloads\commons-lang3-3.10.jar" are the paths (separated by ; in Windows) to the Main and StringUtils classes.
The classpath is the path where the Java Virtual Machine look for user-defined classes, packages and resources in Java programs.
In this context, the format() method load a template file from this path.
The classpath in this context is exactly what it is in the general context: anywhere the VM knows it can find classes to be loaded, and resources as well (such as output.vm in your case).
I'd understand Velocity expects to find a file named output.vm anywhere in "no package". This can be a JAR, regular folder, ... The root of any of the locations in the application's classpath.
Setting the CLASSPATH System Variable
To display the current CLASSPATH variable, use these commands in Windows and UNIX (Bourne shell):
In Windows: C:\> set CLASSPATH
In UNIX: % echo $CLASSPATH
To delete the current contents of the CLASSPATH variable, use these commands:
In Windows: C:\> set CLASSPATH=
In UNIX: % unset CLASSPATH; export CLASSPATH
To set the CLASSPATH variable, use these commands (for example):
In Windows: C:\> set CLASSPATH=C:\users\george\java\classes
In UNIX: % CLASSPATH=/home/george/java/classes; export CLASSPATH
Classpath is an environment variable of system. The setting of this variable is used to provide the root of any package hierarchy to java compiler.
CLASSPATH is an environment variable (i.e., global variables of the operating system available to all the processes) needed for the Java compiler and runtime to locate the Java packages used in a Java program. (Why not call PACKAGEPATH?) This is similar to another environment variable PATH, which is used by the CMD shell to find the executable programs.
CLASSPATH can be set in one of the following ways:
CLASSPATH can be set permanently in the environment: In Windows, choose control panel ⇒ System ⇒ Advanced ⇒ Environment Variables ⇒ choose "System Variables" (for all the users) or "User Variables" (only the currently login user) ⇒ choose "Edit" (if CLASSPATH already exists) or "New" ⇒ Enter "CLASSPATH" as the variable name ⇒ Enter the required directories and JAR files (separated by semicolons) as the value (e.g., ".;c:\javaproject\classes;d:\tomcat\lib\servlet-api.jar"). Take note that you need to include the current working directory (denoted by '.') in the CLASSPATH.
To check the current setting of the CLASSPATH, issue the following command:
> SET CLASSPATH
CLASSPATH can be set temporarily for that particular CMD shell session by issuing the following command:
> SET CLASSPATH=.;c:\javaproject\classes;d:\tomcat\lib\servlet-api.jar
Instead of using the CLASSPATH environment variable, you can also use the command-line option -classpath or -cp of the javac and java commands, for example,
> java –classpath c:\javaproject\classes com.abc.project1.subproject2.MyClass3
For linux users, and to sum up and add to what others have said here, you should know the following:
$CLASSPATH is what Java uses to look through multiple directories to find all the different classes it needs for your script (unless you explicitly tell it otherwise with the -cp override). Using -cp requires that you keep track of all the directories manually and copy-paste that line every time you run the program (not preferable IMO).
The colon (":") character separates the different directories. There is only one $CLASSPATH and it has all the directories in it. So, when you run "export CLASSPATH=...." you want to include the current value "$CLASSPATH" in order to append to it. For example:
export CLASSPATH=.
export CLASSPATH=$CLASSPATH:/usr/share/java/mysql-connector-java-5.1.12.jar
In the first line above, you start CLASSPATH out with just a simple 'dot' which is the path to your current working directory. With that, whenever you run java it will look in the current working directory (the one you're in) for classes. In the second line above, $CLASSPATH grabs the value that you previously entered (.) and appends the path to a mysql dirver. Now, java will look for the driver AND for your classes.
echo $CLASSPATH
is super handy, and what it returns should read like a colon-separated list of all the directories, and .jar files, you want java looking in for the classes it needs.
Tomcat does not use CLASSPATH. Read what to do about that here: https://tomcat.apache.org/tomcat-8.0-doc/class-loader-howto.html
Static member of a class can be called directly without creating object instance.
Since the main method is static Java virtual Machine can call it without creating any instance of a class which contains the main method, which is start point of program.

How to debug error "NoClassDefFoundError caused by ClassNotFound Exception" coming at runtime? [duplicate]

I was just reading this line:
The first thing the format() method does is load a Velocity template from the classpath named output.vm
Please explain what was meant by classpath in this context, and how I should set the classpath.
When programming in Java, you make other classes available to the class you are writing by putting something like this at the top of your source file:
import org.javaguy.coolframework.MyClass;
Or sometimes you 'bulk import' stuff by saying:
import org.javaguy.coolframework.*;
So later in your program when you say:
MyClass mine = new MyClass();
The Java Virtual Machine will know where to find your compiled class.
It would be impractical to have the VM look through every folder on your machine, so you have to provide the VM a list of places to look. This is done by putting folder and jar files on your classpath.
Before we talk about how the classpath is set, let's talk about .class files, packages, and .jar files.
First, let's suppose that MyClass is something you built as part of your project, and it is in a directory in your project called output. The .class file would be at output/org/javaguy/coolframework/MyClass.class (along with every other file in that package). In order to get to that file, your path would simply need to contain the folder 'output', not the whole package structure, since your import statement provides all that information to the VM.
Now let's suppose that you bundle CoolFramework up into a .jar file, and put that CoolFramework.jar into a lib directory in your project. You would now need to put lib/CoolFramework.jar into your classpath. The VM will look inside the jar file for the org/javaguy/coolframework part, and find your class.
So, classpaths contain:
JAR files, and
Paths to the top of package hierarchies.
How do you set your classpath?
The first way everyone seems to learn is with environment variables. On a unix machine, you can say something like:
export CLASSPATH=/home/myaccount/myproject/lib/CoolFramework.jar:/home/myaccount/myproject/output/
On a Windows machine you have to go to your environment settings and either add or modify the value that is already there.
The second way is to use the -cp parameter when starting Java, like this:
java -cp "/home/myaccount/myproject/lib/CoolFramework.jar:/home/myaccount/myproject/output/" MyMainClass
A variant of this is the third way which is often done with a .sh or .bat file that calculates the classpath and passes it to Java via the -cp parameter.
There is a "gotcha" with all of the above. On most systems (Linux, Mac OS, UNIX, etc) the colon character (':') is the classpath separator. In windowsm the separator is the semicolon (';')
So what's the best way to do it?
Setting stuff globally via environment variables is bad, generally for the same kinds of reasons that global variables are bad. You change the CLASSPATH environment variable so one program works, and you end up breaking another program.
The -cp is the way to go. I generally make sure my CLASSPATH environment variable is an empty string where I develop, whenever possible, so that I avoid global classpath issues (some tools aren't happy when the global classpath is empty though - I know of two common, mega-thousand dollar licensed J2EE and Java servers that have this kind of issue with their command-line tools).
Think of it as Java's answer to the PATH environment variable - OSes search for EXEs on the PATH, Java searches for classes and packages on the classpath.
The classpath is one of the fundamental concepts in the Java world and it's often misunderstood or not understood at all by java programmes, especially beginners.
Simply put, the classpath is just a set of paths where the java compiler and the JVM must find needed classes to compile or execute other classes.
Let's start with an example, suppose we have a Main.java file thats under C:\Users\HP\Desktop\org\example,
package org.example;
public class Main {
public static void main(String[] args) {
System.out.println("Hello world");
}
}
And Now, suppose we are under C:\ directory and we want to compile our class, Its easy right, just run:
javac .\Users\HP\Desktop\org\example\Main.java
Now for the hard question, we are in the same folder C:\ and we want to run the compiled class.
Despite of what you might think of to be the answer, the right one is:
java -cp .\Users\HP\Desktop org.example.Main
I'll explain why, first of all, the name of the class that we want ro tun is org.exmaple.Main not Main, or Main.class or .\users\hp\desktop\org\example\Main.class ! This is how things works with classes declared under packages.
Now, we provided the name of the class to the JVM (java command in this case), But how it (JVM) will know where to find the .class file for the Main class? Thats where the classpath comes into picture. Using -cp flag (shortcut for -classpath), we tell the JVM that our Main.class file will be located at C:\users\hp\Desktop.. In fact, not really, we tell it to just go to the Desktop directory, and, because of the name of the class org.example.Main, the JVM is smart and it will go from Desktop to org directory, and from org to example directory, searching for Main.class file, and it will find it and it will kill it, I mean, it will run it :D .
Now lets suppose that inside the Main class we want to work with another class named org.apache.commons.lang3.StringUtils and the latter is located in a jar file named commons-lang3-3.10.jar thats inside C:\Users\HP\Downloads. So Main.java will look like this now:
package org.example;
import org.apache.commons.lang3.StringUtils;
public class Main {
public static void main(String[] args) {
System.out.println("Hello world");
System.out.println(StringUtils.equals("java", "java")); //true
}
}
How to compile the Main.java if we are always inside C:\ ? The answer is:
javac -cp .\Users\HP\Downloads\commons-lang3-3.10.jar .\Users\HP\Desktop\org\example\Main.java
.\Users\HP\Desktop\org\example\Main.java is because our .java file is there in the filesystem.
-cp .\Users\HP\Downloads\commons-lang3-3.10.jar is because the java compiler (javac in this case) need to know the location of the class org.apache.commons.lang3.StringUtils, so we provided the path of the jar file, and the compiler will then go inside the jar file and try to find a file StringUtils.class inside a directory org\apache\commons\lang3.
And if we want to run the Main.class file, we will execute:
java -cp ".\Users\HP\Desktop\;.\Users\HP\Downloads\commons-lang3-3.10.jar" org.example.Main
org.example.Main is the name of the class.
".\Users\HP\Desktop\;.\Users\HP\Downloads\commons-lang3-3.10.jar" are the paths (separated by ; in Windows) to the Main and StringUtils classes.
The classpath is the path where the Java Virtual Machine look for user-defined classes, packages and resources in Java programs.
In this context, the format() method load a template file from this path.
The classpath in this context is exactly what it is in the general context: anywhere the VM knows it can find classes to be loaded, and resources as well (such as output.vm in your case).
I'd understand Velocity expects to find a file named output.vm anywhere in "no package". This can be a JAR, regular folder, ... The root of any of the locations in the application's classpath.
Setting the CLASSPATH System Variable
To display the current CLASSPATH variable, use these commands in Windows and UNIX (Bourne shell):
In Windows: C:\> set CLASSPATH
In UNIX: % echo $CLASSPATH
To delete the current contents of the CLASSPATH variable, use these commands:
In Windows: C:\> set CLASSPATH=
In UNIX: % unset CLASSPATH; export CLASSPATH
To set the CLASSPATH variable, use these commands (for example):
In Windows: C:\> set CLASSPATH=C:\users\george\java\classes
In UNIX: % CLASSPATH=/home/george/java/classes; export CLASSPATH
Classpath is an environment variable of system. The setting of this variable is used to provide the root of any package hierarchy to java compiler.
CLASSPATH is an environment variable (i.e., global variables of the operating system available to all the processes) needed for the Java compiler and runtime to locate the Java packages used in a Java program. (Why not call PACKAGEPATH?) This is similar to another environment variable PATH, which is used by the CMD shell to find the executable programs.
CLASSPATH can be set in one of the following ways:
CLASSPATH can be set permanently in the environment: In Windows, choose control panel ⇒ System ⇒ Advanced ⇒ Environment Variables ⇒ choose "System Variables" (for all the users) or "User Variables" (only the currently login user) ⇒ choose "Edit" (if CLASSPATH already exists) or "New" ⇒ Enter "CLASSPATH" as the variable name ⇒ Enter the required directories and JAR files (separated by semicolons) as the value (e.g., ".;c:\javaproject\classes;d:\tomcat\lib\servlet-api.jar"). Take note that you need to include the current working directory (denoted by '.') in the CLASSPATH.
To check the current setting of the CLASSPATH, issue the following command:
> SET CLASSPATH
CLASSPATH can be set temporarily for that particular CMD shell session by issuing the following command:
> SET CLASSPATH=.;c:\javaproject\classes;d:\tomcat\lib\servlet-api.jar
Instead of using the CLASSPATH environment variable, you can also use the command-line option -classpath or -cp of the javac and java commands, for example,
> java –classpath c:\javaproject\classes com.abc.project1.subproject2.MyClass3
For linux users, and to sum up and add to what others have said here, you should know the following:
$CLASSPATH is what Java uses to look through multiple directories to find all the different classes it needs for your script (unless you explicitly tell it otherwise with the -cp override). Using -cp requires that you keep track of all the directories manually and copy-paste that line every time you run the program (not preferable IMO).
The colon (":") character separates the different directories. There is only one $CLASSPATH and it has all the directories in it. So, when you run "export CLASSPATH=...." you want to include the current value "$CLASSPATH" in order to append to it. For example:
export CLASSPATH=.
export CLASSPATH=$CLASSPATH:/usr/share/java/mysql-connector-java-5.1.12.jar
In the first line above, you start CLASSPATH out with just a simple 'dot' which is the path to your current working directory. With that, whenever you run java it will look in the current working directory (the one you're in) for classes. In the second line above, $CLASSPATH grabs the value that you previously entered (.) and appends the path to a mysql dirver. Now, java will look for the driver AND for your classes.
echo $CLASSPATH
is super handy, and what it returns should read like a colon-separated list of all the directories, and .jar files, you want java looking in for the classes it needs.
Tomcat does not use CLASSPATH. Read what to do about that here: https://tomcat.apache.org/tomcat-8.0-doc/class-loader-howto.html
Static member of a class can be called directly without creating object instance.
Since the main method is static Java virtual Machine can call it without creating any instance of a class which contains the main method, which is start point of program.

Class not find or load main class in cmd line while running standalone java program [duplicate]

I was just reading this line:
The first thing the format() method does is load a Velocity template from the classpath named output.vm
Please explain what was meant by classpath in this context, and how I should set the classpath.
When programming in Java, you make other classes available to the class you are writing by putting something like this at the top of your source file:
import org.javaguy.coolframework.MyClass;
Or sometimes you 'bulk import' stuff by saying:
import org.javaguy.coolframework.*;
So later in your program when you say:
MyClass mine = new MyClass();
The Java Virtual Machine will know where to find your compiled class.
It would be impractical to have the VM look through every folder on your machine, so you have to provide the VM a list of places to look. This is done by putting folder and jar files on your classpath.
Before we talk about how the classpath is set, let's talk about .class files, packages, and .jar files.
First, let's suppose that MyClass is something you built as part of your project, and it is in a directory in your project called output. The .class file would be at output/org/javaguy/coolframework/MyClass.class (along with every other file in that package). In order to get to that file, your path would simply need to contain the folder 'output', not the whole package structure, since your import statement provides all that information to the VM.
Now let's suppose that you bundle CoolFramework up into a .jar file, and put that CoolFramework.jar into a lib directory in your project. You would now need to put lib/CoolFramework.jar into your classpath. The VM will look inside the jar file for the org/javaguy/coolframework part, and find your class.
So, classpaths contain:
JAR files, and
Paths to the top of package hierarchies.
How do you set your classpath?
The first way everyone seems to learn is with environment variables. On a unix machine, you can say something like:
export CLASSPATH=/home/myaccount/myproject/lib/CoolFramework.jar:/home/myaccount/myproject/output/
On a Windows machine you have to go to your environment settings and either add or modify the value that is already there.
The second way is to use the -cp parameter when starting Java, like this:
java -cp "/home/myaccount/myproject/lib/CoolFramework.jar:/home/myaccount/myproject/output/" MyMainClass
A variant of this is the third way which is often done with a .sh or .bat file that calculates the classpath and passes it to Java via the -cp parameter.
There is a "gotcha" with all of the above. On most systems (Linux, Mac OS, UNIX, etc) the colon character (':') is the classpath separator. In windowsm the separator is the semicolon (';')
So what's the best way to do it?
Setting stuff globally via environment variables is bad, generally for the same kinds of reasons that global variables are bad. You change the CLASSPATH environment variable so one program works, and you end up breaking another program.
The -cp is the way to go. I generally make sure my CLASSPATH environment variable is an empty string where I develop, whenever possible, so that I avoid global classpath issues (some tools aren't happy when the global classpath is empty though - I know of two common, mega-thousand dollar licensed J2EE and Java servers that have this kind of issue with their command-line tools).
Think of it as Java's answer to the PATH environment variable - OSes search for EXEs on the PATH, Java searches for classes and packages on the classpath.
The classpath is one of the fundamental concepts in the Java world and it's often misunderstood or not understood at all by java programmes, especially beginners.
Simply put, the classpath is just a set of paths where the java compiler and the JVM must find needed classes to compile or execute other classes.
Let's start with an example, suppose we have a Main.java file thats under C:\Users\HP\Desktop\org\example,
package org.example;
public class Main {
public static void main(String[] args) {
System.out.println("Hello world");
}
}
And Now, suppose we are under C:\ directory and we want to compile our class, Its easy right, just run:
javac .\Users\HP\Desktop\org\example\Main.java
Now for the hard question, we are in the same folder C:\ and we want to run the compiled class.
Despite of what you might think of to be the answer, the right one is:
java -cp .\Users\HP\Desktop org.example.Main
I'll explain why, first of all, the name of the class that we want ro tun is org.exmaple.Main not Main, or Main.class or .\users\hp\desktop\org\example\Main.class ! This is how things works with classes declared under packages.
Now, we provided the name of the class to the JVM (java command in this case), But how it (JVM) will know where to find the .class file for the Main class? Thats where the classpath comes into picture. Using -cp flag (shortcut for -classpath), we tell the JVM that our Main.class file will be located at C:\users\hp\Desktop.. In fact, not really, we tell it to just go to the Desktop directory, and, because of the name of the class org.example.Main, the JVM is smart and it will go from Desktop to org directory, and from org to example directory, searching for Main.class file, and it will find it and it will kill it, I mean, it will run it :D .
Now lets suppose that inside the Main class we want to work with another class named org.apache.commons.lang3.StringUtils and the latter is located in a jar file named commons-lang3-3.10.jar thats inside C:\Users\HP\Downloads. So Main.java will look like this now:
package org.example;
import org.apache.commons.lang3.StringUtils;
public class Main {
public static void main(String[] args) {
System.out.println("Hello world");
System.out.println(StringUtils.equals("java", "java")); //true
}
}
How to compile the Main.java if we are always inside C:\ ? The answer is:
javac -cp .\Users\HP\Downloads\commons-lang3-3.10.jar .\Users\HP\Desktop\org\example\Main.java
.\Users\HP\Desktop\org\example\Main.java is because our .java file is there in the filesystem.
-cp .\Users\HP\Downloads\commons-lang3-3.10.jar is because the java compiler (javac in this case) need to know the location of the class org.apache.commons.lang3.StringUtils, so we provided the path of the jar file, and the compiler will then go inside the jar file and try to find a file StringUtils.class inside a directory org\apache\commons\lang3.
And if we want to run the Main.class file, we will execute:
java -cp ".\Users\HP\Desktop\;.\Users\HP\Downloads\commons-lang3-3.10.jar" org.example.Main
org.example.Main is the name of the class.
".\Users\HP\Desktop\;.\Users\HP\Downloads\commons-lang3-3.10.jar" are the paths (separated by ; in Windows) to the Main and StringUtils classes.
The classpath is the path where the Java Virtual Machine look for user-defined classes, packages and resources in Java programs.
In this context, the format() method load a template file from this path.
The classpath in this context is exactly what it is in the general context: anywhere the VM knows it can find classes to be loaded, and resources as well (such as output.vm in your case).
I'd understand Velocity expects to find a file named output.vm anywhere in "no package". This can be a JAR, regular folder, ... The root of any of the locations in the application's classpath.
Setting the CLASSPATH System Variable
To display the current CLASSPATH variable, use these commands in Windows and UNIX (Bourne shell):
In Windows: C:\> set CLASSPATH
In UNIX: % echo $CLASSPATH
To delete the current contents of the CLASSPATH variable, use these commands:
In Windows: C:\> set CLASSPATH=
In UNIX: % unset CLASSPATH; export CLASSPATH
To set the CLASSPATH variable, use these commands (for example):
In Windows: C:\> set CLASSPATH=C:\users\george\java\classes
In UNIX: % CLASSPATH=/home/george/java/classes; export CLASSPATH
Classpath is an environment variable of system. The setting of this variable is used to provide the root of any package hierarchy to java compiler.
CLASSPATH is an environment variable (i.e., global variables of the operating system available to all the processes) needed for the Java compiler and runtime to locate the Java packages used in a Java program. (Why not call PACKAGEPATH?) This is similar to another environment variable PATH, which is used by the CMD shell to find the executable programs.
CLASSPATH can be set in one of the following ways:
CLASSPATH can be set permanently in the environment: In Windows, choose control panel ⇒ System ⇒ Advanced ⇒ Environment Variables ⇒ choose "System Variables" (for all the users) or "User Variables" (only the currently login user) ⇒ choose "Edit" (if CLASSPATH already exists) or "New" ⇒ Enter "CLASSPATH" as the variable name ⇒ Enter the required directories and JAR files (separated by semicolons) as the value (e.g., ".;c:\javaproject\classes;d:\tomcat\lib\servlet-api.jar"). Take note that you need to include the current working directory (denoted by '.') in the CLASSPATH.
To check the current setting of the CLASSPATH, issue the following command:
> SET CLASSPATH
CLASSPATH can be set temporarily for that particular CMD shell session by issuing the following command:
> SET CLASSPATH=.;c:\javaproject\classes;d:\tomcat\lib\servlet-api.jar
Instead of using the CLASSPATH environment variable, you can also use the command-line option -classpath or -cp of the javac and java commands, for example,
> java –classpath c:\javaproject\classes com.abc.project1.subproject2.MyClass3
For linux users, and to sum up and add to what others have said here, you should know the following:
$CLASSPATH is what Java uses to look through multiple directories to find all the different classes it needs for your script (unless you explicitly tell it otherwise with the -cp override). Using -cp requires that you keep track of all the directories manually and copy-paste that line every time you run the program (not preferable IMO).
The colon (":") character separates the different directories. There is only one $CLASSPATH and it has all the directories in it. So, when you run "export CLASSPATH=...." you want to include the current value "$CLASSPATH" in order to append to it. For example:
export CLASSPATH=.
export CLASSPATH=$CLASSPATH:/usr/share/java/mysql-connector-java-5.1.12.jar
In the first line above, you start CLASSPATH out with just a simple 'dot' which is the path to your current working directory. With that, whenever you run java it will look in the current working directory (the one you're in) for classes. In the second line above, $CLASSPATH grabs the value that you previously entered (.) and appends the path to a mysql dirver. Now, java will look for the driver AND for your classes.
echo $CLASSPATH
is super handy, and what it returns should read like a colon-separated list of all the directories, and .jar files, you want java looking in for the classes it needs.
Tomcat does not use CLASSPATH. Read what to do about that here: https://tomcat.apache.org/tomcat-8.0-doc/class-loader-howto.html
Static member of a class can be called directly without creating object instance.
Since the main method is static Java virtual Machine can call it without creating any instance of a class which contains the main method, which is start point of program.

What does "Exception in thread \"main\" java.lang.NoClassDefFoundError" mean when executing java .class file?

Java and Gradle beginner's question.
I made a project directory for java and gradle test:
The directory hierarchy :
HelloWorld.java:
package foo.bar;
public class HelloWorld {
public static void main(String[] args) {
System.out.println("Hello, world");
}
}
build.gradle:
apply plugin:'java'
Then,gradle build this project and generated what i need.
As you see above, my problem is why doesn't this execute correctly? Even through I cd to .class path.
======================================================================
While, if I remove package foo.bar; in HelloWorld.java, and repeat gradle commands and execute at he.bak directory then the error remained the same.
But when I cd to the directory where HelloWorld.java placed. everything goes OK!Why? something related with CLASSPATH environment variables or other causes?
////////////////////////////////////////////////////////////////////
UPDATE
////////////////////////////////////////////////////////////////////
Thought you guys' warm replies, I know that I should combine the CLASSPATH and the period-separated executable .class file to figure out what's going on when executing java class file.
I experiment my thought resulting in 2 point to this question:
The -cp option path parameter A/B plus the executable file c.d.e.class finally form the A/B/c.d.e.class full path where the class is actually located.
If I specify the package in source code file with package d,I must split the full path in the form of java -cp A/B/c/d e.class. split in other ways all will result in errors.
something I am not sure here is :
When I specify my package path in my source code file, It determined the only classpath when executing corresponding executable, right?
If it is the truth, How does a project with lots of package and sources files work?
What's the root principle?
When in build/classes/main try java foo.bar.HelloWorld instead of java HelloWorld
The reason you need to specify foo.bar.HelloWorld is because you specified package foo.bar;. This tells java that the class should be in foo/bar/HelloWorld and the fully qualified name for HelloWorld is foo.bar.HelloWorld. If you want to execute the class from a different working directory however, you can specify the classpath explicitly using the -cp option, e.g., java -cp c:\myproject\build\classes\main foo.bar.HelloWorld.
By the way, the classpath default is the current working directory (i.e., .) but java -cp c:\myproject\build\classes\main foo.bar.HelloWorld will NOT have the classpath set to the current working directory if it is explicitly set using the -cp option. If you want to include the current working directory but explicitly set it, or even add more directories, you can chain them using semicolons like this: java -cp .;c:\myproject\build\classes\main foo.bar.HelloWorld. So this will include both the current working directory and the directory I specified.

Specifying classpath for a jar

I am trying to configure the classpath of a JAR so that my ResourceBundle can pick up property files from it.
If I run it from the .class files and specify the -cp flag it works fine, and System.err.println(System.getProperty("java.class.path")); will print the path specified in the -cp flag.
If I try and create a jar file for it, System.err.println(System.getProperty("java.class.path")); always prints the path of the jar file, and the property files aren't picked up.
It seems if you are running it as a jar file you can't specify the -cp flag (which was what I was hoping, as it's common to switch which property files are being used). I've tried specifying it in the jar manifest instead, but it's still not working.
Here is the code and manifest from a test jar that doesn't seem to work:
public final class Test {
public static void main(final String[] args) {
System.err.println(System.getProperty("java.class.path"));
}
}
Manifest-Version: 1.0
Created-By: 1.6.0_20 (Sun Microsystems Inc.)
Main-Class: Test
Class-Path: /home/ajanuary/Projects/test/
edit
The original path was rather meaningless so I changed it. I want to point to a directory which the ResourceBundle can find the property files in.
If you use -jar, -cp is ignored:
-jar
Execute a program encapsulated in a JAR file. The first argument is the
name of a JAR file instead of a
startup class name. In order for this
option to work, the manifest of the
JAR file must contain a line of the
form Main-Class: classname. Here,
classname identifies the class having
the public static void main(String[]
args) method that serves as your
application's starting point. See the
Jar tool reference page and the Jar
trail of the Java Tutorial for
information about working with Jar
files and Jar-file manifests. When you
use this option, the JAR file is the
source of all user classes, and other
user class path settings are ignored.
Source: java - the Java application launcher
I would instead read a property in my Java application (that property could indicate from where resources should be loaded).
Example of how to execute the application would then be:
java -Dkey=value -jar application.jar
You can't use classpath wildcards in the manifest.
Take a look at Setting the classpath for more information on how classpath works:
class path wildcards are not honored
in the Class-Path jar-manifest header.
Yes, and for the shell, ~ means $HOME, but for java, it doesn't mean anything.
The problem was that I also had an index file. If you have an index file, the Class-Path will be ignored.

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