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How do you determine 32 or 64 bit architecture of Windows using Java?

Thanks.

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5  
This is a much more general question, not just for windows. –  prasanna Dec 6 '09 at 20:55
1  
Why would you want to know this? Java is supposed to run the same on any OS for which there is a JVM - your Java program shouldn't care if it's running on a 32-bit or 64-bit OS. –  Jesper Dec 7 '09 at 8:37
2  
@Jesper because many times running java is not the sole purpose. many times you might have developed a program/application that is supposed to run specifically on 64 bit machines (or 32 bit machines) (the reason can be anything). in such places i'll need to check what version of of windows architecture is present .. –  Wildling May 25 '12 at 11:55
    

7 Answers 7

up vote 19 down vote accepted

Please note, the os.arch property will only give you the architecture of the JRE, not of the underlying os.

If you install a 32 bit jre on a 64 bit system, System.getProperty("os.arch") will return x86

In order to actually determine the underlying architecture, you will need to write some native code. See this post for more info (and a link to sample native code)

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I don't exactly trust reading the os.arch system variable. While it works if a user is running a 64bit JVM on a 64bit system. It doesn't work if the user is running a 32bit JVM on a 64 bit system.

The following code works for properly detecting Windows 64-bit operating systems. On a Windows 64 bit system the environment variable "Programfiles(x86)" will be set. It will NOT be set on a 32-bit system and java will read it as null.

boolean is64bit = false;
if (System.getProperty("os.name").contains("Windows")) {
    is64bit = (System.getenv("ProgramFiles(x86)") != null);
} else {
    is64bit = (System.getProperty("os.arch").indexOf("64") != -1);
}

For other operating systems like Linux or Solaris or Mac we may see this problem as well. So this isn't a complete solution. For mac you are probably safe because apple locks down the JVM to match the OS. But Linux and Solaris, etc.. they may still use a 32-bit JVM on their 64-bit system. So use this with caution.

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I like your solution, good approach :) –  Johnydep Jan 18 '12 at 18:06
System.getProperty("os.arch");
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7  
On 64b windows, but 32b jvm it prints "x86" for me. So I guess it doesn't say the version of system but rather virtual machine. –  Mirek Pluta Dec 6 '09 at 21:43
    
yes, that's a popular 'gotcha'. –  Bozho Dec 6 '09 at 21:45

You can try this code, I thinks it's better to detect the model of JVM

boolean is64bit = System.getProperty("sun.arch.data.model").contains("64");
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The OP asks about the OS not the JVM –  leonbloy Jan 30 at 20:22

I used the command prompt (command --> wmic OS get OSArchitecture) to get the OS architecture. The following program helps get all the required parameters:

import java.io.*;

public class User {
    public static void main(String[] args) throws Exception {

        System.out.println("OS --> "+System.getProperty("os.name"));   //OS Name such as Windows/Linux

        System.out.println("JRE Architecture --> "+System.getProperty("sun.arch.data.model")+" bit.");       // JRE architecture i.e 64 bit or 32 bit JRE

        ProcessBuilder builder = new ProcessBuilder(
            "cmd.exe", "/c","wmic OS get OSArchitecture");
        builder.redirectErrorStream(true);
        Process p = builder.start();
        String result = getStringFromInputStream(p.getInputStream());

        if(result.contains("64"))
            System.out.println("OS Architecture --> is 64 bit");  //The OS Architecture
        else
            System.out.println("OS Architecture --> is 32 bit");

        }


    private static String getStringFromInputStream(InputStream is) {

        BufferedReader br = null;
        StringBuilder sb = new StringBuilder();

        String line;
        try {

            br = new BufferedReader(new InputStreamReader(is));
            while ((line = br.readLine()) != null) {
                sb.append(line);
            }

        } catch (IOException e) {
            e.printStackTrace();
        } finally {
            if (br != null) {
                try {
                    br.close();
                } catch (IOException e) {
                    e.printStackTrace();
                }
            }
        }

        return sb.toString();

    }

}
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Maybe it 's not the best way, but it works.

All I do is get the "Enviroment Variable" which windows has configured for Program Files x86 folder. I mean Windows x64 have the folder (Program Files x86) and the x86 does not. Because a user can change the Program Files path in Enviroment Variables, or he/she may make a directory "Program Files (x86)" in C:\, I will not use the detection of the folder but the "Enviroment Path" of "Program Files (x86)" with the variable in windows registry.

public class getSystemInfo {

    static void suckOsInfo(){

    // Get OS Name (Like: Windows 7, Windows 8, Windows XP, etc.)
    String osVersion = System.getProperty("os.name");
    System.out.print(osVersion);

    String pFilesX86 = System.getenv("ProgramFiles(X86)");
    if (pFilesX86 !=(null)){
        // Put here the code to execute when Windows x64 are Detected
    System.out.println(" 64bit");
    }
    else{
        // Put here the code to execute when Windows x32 are Detected
    System.out.println(" 32bit");
    }

    System.out.println("Now getSystemInfo class will EXIT");
    System.exit(0);

    }

}
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Well, user Boolean had already the same way but in a better code. –  Blackgeo32 Oct 18 '13 at 17:22

You can use the os.arch property in system properties to find out.

Properties pr = System.getProperties();
System.out.println(pr.getProperty("os.arch"));

If you are on 32 bit, it should show i386 or something

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it will be 'x86' –  Bozho Dec 6 '09 at 20:56
1  
Thanks, I was using it on my Linux box, which showed i386. –  prasanna Dec 7 '09 at 22:11
    
on 64-bit OS running a 32-bit JVM, this will return x86, indicating 32-bit. While this is correct for the JVM, it is wrong for the OS, which is what the OP asked. –  CMerrill Jul 24 at 20:04

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