I attempted to create a calculator, but I can not get it to work because I don't know how to get user input.

How can I get the user input in Java?

  • 8
    Uh, what's your question? You just posted some code and said you don't like pointers. Not understanding pointers can still come back to bite you in java if you don't understand pass by reference and pass by value. – Scott Mar 13 '11 at 5:05
  • 4
    you should try to learn java reading a book, Java How to Program, 7/e is a nice one – Marco Aviles Mar 13 '11 at 5:06
  • 1
    Check this link > Java program to get input from user – ARJUN Oct 30 '14 at 6:13

24 Answers 24

up vote 341 down vote accepted

One of the simplest ways is to use a Scanner object as follows:

import java.util.Scanner;

Scanner reader = new Scanner(System.in);  // Reading from System.in
System.out.println("Enter a number: ");
int n = reader.nextInt(); // Scans the next token of the input as an int.
//once finished
reader.close();
  • 1
    If you close a Scanner object opened to System.in, you will not be able to reopen System.in until the program is finished. – ksnortum Apr 18 at 12:42
  • @ksnortum can i reopen by Scanner reader1 = new Scanner(System.in);? – Abhijit Jagtap Jul 11 at 11:21
  • Try it. I don't think so. – ksnortum Jul 18 at 18:40

You can use any of the following options based on the requirements.

Scanner class

import java.util.Scanner; 
Scanner scan = new Scanner(System.in);
String s = scan.next();
int i = scan.nextInt();

BufferedReader and InputStreamReader classes

import java.io.BufferedReader;
import java.io.InputStreamReader;
BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
String s = br.readLine();
int i = Integer.parseInt(br.readLine());

DataInputStream class

import java.io.DataInputStream;
DataInputStream dis = new DataInputStream(System.in);
int i = dis.readInt();

The readLine method from the DataInputStream class has been deprecated. To get String value, you should use the previous solution with BufferedReader


Console class

import java.io.Console;
Console console = System.console();
String s = console.readLine();
int i = Integer.parseInt(console.readLine());

Apparently, this method does not work well in some IDEs.

  • 3
    Note that DataInputStream is for reading binary data. Using readInt on System.in does not parse an integer from the character data, it will instead reinterpret the unicode values and return nonsense. See DataInput#readInt for details (DataInputStream implements DataInput). – Radiodef Apr 5 '15 at 4:02
  • 2
    this is great, would love to see the required imports added for completeness. It would also really help those who need it. – KnightHawk May 7 '16 at 18:46

You can use the Scanner class or the Console class

Console console = System.console();
String input = console.readLine("Enter input:");
  • 55
    i think System.console will return null if this code runs from eclipse. – Win Coder Sep 11 '13 at 19:10
  • 13
    I believe this will return an error running from almost any IDE. confirmed that intelliJ is having the same issue. – Dan Bradbury Nov 19 '13 at 22:59
  • 1
    Also not working in NetBeans – Saif Hamed Oct 17 '14 at 19:22
  • 2
    Not working in tIDE either. – Madmenyo Nov 24 '14 at 22:00
  • 1
    but why is this a null in eclipse? – Mark W Jul 6 '15 at 11:22

You can get user input using BufferedReader.

BufferedReader br = new BufferedReader(new InputStreamReader(System.in));
String accStr;  

System.out.println("Enter your Account number: ");
accStr = br.readLine();

It will store a String value in accStr so you have to parse it to an int using Integer.parseInt.

int accInt = Integer.parseInt(accStr);

Here is how you can get the keyboard inputs:

Scanner scanner = new Scanner (System.in);
System.out.print("Enter your name");  
name = scanner.next(); // Get what the user types.

You can make a simple program to ask for user's name and print what ever the reply use inputs.

Or ask user to enter two numbers and you can add, multiply, subtract, or divide those numbers and print the answers for user inputs just like a behavior of a calculator.

So there you need Scanner class. You have to import java.util.Scanner; and in the code you need to use

Scanner input = new Scanner(System.in);

Input is a variable name.

Scanner input = new Scanner(System.in);

System.out.println("Please enter your name : ");
s = input.next(); // getting a String value

System.out.println("Please enter your age : ");
i = input.nextInt(); // getting an integer

System.out.println("Please enter your salary : ");
d = input.nextDouble(); // getting a double

See how this differs: input.next();, i = input.nextInt();, d = input.nextDouble();

According to a String, int and a double varies same way for the rest. Don't forget the import statement at the top of your code.

Also see the blog post "Scanner class and getting User Inputs".

Here, the program asks the user to enter a number. After that, the program prints the digits of the number and the sum of the digits.

import java.util.Scanner;

public class PrintNumber {
    public static void main(String[] args) {
        Scanner scan = new Scanner(System.in);
        int num = 0;
        int sum = 0;

        System.out.println(
            "Please enter a number to show its digits");
        num = scan.nextInt();

        System.out.println(
            "Here are the digits and the sum of the digits");
        while (num > 0) {
            System.out.println("==>" + num % 10);
            sum += num % 10;
            num = num / 10;   
        }
        System.out.println("Sum is " + sum);            
    }
}

To read a line or a string, you can use a BufferedReader object combined with an InputStreamReader one as follows:

BufferedReader bufferReader = new BufferedReader(new InputStreamReader(System.in));
String inputLine = bufferReader.readLine();

Use the System class to get the input.

http://fresh2refresh.com/java-tutorial/java-input-output/ :

How data is accepted from keyboard ?

We need three objects,

  1. System.in
  2. InputStreamReader
  3. BufferedReader

    • InputStreamReader and BufferedReader are classes in java.io package.
    • The data is received in the form of bytes from the keyboard by System.in which is an InputStream object.
    • Then the InputStreamReader reads bytes and decodes them into characters.
    • Then finally BufferedReader object reads text from a character-input stream, buffering characters so as to provide for the efficient reading of characters, arrays, and lines.
InputStreamReader inp = new InputStreamReader(system.in);
BufferedReader br = new BufferedReader(inp);
  • 1
    System.in (int the first line of code) will have capital S for class name. – KNU Jul 26 '14 at 19:11

Here is your program from the question using java.util.Scanner:

import java.util.Scanner;

public class Example {
    public static void main(String[] args) {
        int input = 0;
        System.out.println("The super insano calculator");
        System.out.println("enter the corrosponding number:");
        Scanner reader3 = new Scanner(System.in);
        System.out.println(
            "1. Add | 2. Subtract | 3. Divide | 4. Multiply");

        input = reader3.nextInt();

        int a = 0, b = 0;

        Scanner reader = new Scanner(System.in);
        System.out.println("Enter the first number");
        // get user input for a
        a = reader.nextInt();

        Scanner reader1 = new Scanner(System.in);
        System.out.println("Enter the scend number");
        // get user input for b
        b = reader1.nextInt();

        switch (input){
            case 1:  System.out.println(a + " + " + b + " = " + add(a, b));
                     break;
            case 2:  System.out.println(a + " - " + b + " = " + subtract(a, b));
                     break;
            case 3:  System.out.println(a + " / " + b + " = " + divide(a, b));
                     break;
            case 4:  System.out.println(a + " * " + b + " = " + multiply(a, b));
                     break;
            default: System.out.println("your input is invalid!");
                     break;
        }
    }

    static int      add(int lhs, int rhs) { return lhs + rhs; }
    static int subtract(int lhs, int rhs) { return lhs - rhs; }
    static int   divide(int lhs, int rhs) { return lhs / rhs; }
    static int multiply(int lhs, int rhs) { return lhs * rhs; }
}
  • 3
    There is no need to create so many Scanner objects; one would have been sufficient. – jubobs Nov 1 '15 at 19:54

Just one extra detail. If you don't want to risk a memory/resource leak, you should close the scanner stream when you are finished:

myScanner.close();

Note that java 1.7 and later catch this as a compile warning (don't ask how I know that :-)

  • But not if Scanner is open to System.in. You won't be able to reopen Scanner to System.in again in your program. – ksnortum Sep 21 '17 at 12:48
import java.util.Scanner; 

class Daytwo{
    public static void main(String[] args){
        System.out.println("HelloWorld");

        Scanner reader = new Scanner(System.in);
        System.out.println("Enter the number ");

        int n = reader.nextInt();
        System.out.println("You entered " + n);

    }
}
Scanner input=new Scanner(System.in);
int integer=input.nextInt();
String string=input.next();
long longInteger=input.nextLong();
Scanner input = new Scanner(System.in);
String inputval = input.next();

Add throws IOException beside main(), then

DataInputStream input = new DataInputStream(System.in);
System.out.print("Enter your name");
String name = input.readLine();

It is very simple to get input in java, all you have to do is:

import java.util.Scanner;

class GetInputFromUser
{
    public static void main(String args[])
    {
        int a;
        float b;
        String s;

        Scanner in = new Scanner(System.in);

        System.out.println("Enter a string");
        s = in.nextLine();
        System.out.println("You entered string " + s);

        System.out.println("Enter an integer");
        a = in.nextInt();
        System.out.println("You entered integer " + a);

        System.out.println("Enter a float");
        b = in.nextFloat();
        System.out.println("You entered float " + b);
    }
}
  • its the same thing. You can always just initialize an array with datatype varName[] OR datatype[] varName – user2277872 Oct 18 '13 at 23:16
import java.util.Scanner;

public class Myapplication{
     public static void main(String[] args){
         Scanner in = new Scanner(System.in);
         int a;
         System.out.println("enter:");
         a = in.nextInt();
         System.out.println("Number is= " + a);
     }
}

You can get user input like this using a BufferedReader:

    InputStreamReader inp = new InputStreamReader(System.in);
    BufferedReader br = new BufferedReader(inp);
    // you will need to import these things.

This is how you apply them

    String name = br.readline(); 

So when the user types in his name into the console, "String name" will store that information.

If it is a number you want to store, the code will look like this:

    int x = Integer.parseInt(br.readLine());

Hop this helps!

Can be something like this...

public static void main(String[] args) {
    Scanner reader = new Scanner(System.in);

    System.out.println("Enter a number: ");
    int i = reader.nextInt();
    for (int j = 0; j < i; j++)
        System.out.println("I love java");
}

This is a simple code that uses the System.in.read() function. This code just writes out whatever was typed. You can get rid of the while loop if you just want to take input once, and you could store answers in a character array if you so choose.

package main;

import java.io.IOException;

public class Root 
{   
    public static void main(String[] args)
    {
        new Root();
    }

    public Root()
    {
        while(true)
        {
            try
            {
                for(int y = 0; y < System.in.available(); ++y)
                { 
                    System.out.print((char)System.in.read()); 
                }
            }
            catch(IOException ex)
            {
                ex.printStackTrace(System.out);
                break;
            }
        }
    }   
}    

I like the following:

public String readLine(String tPromptString) {
    byte[] tBuffer = new byte[256];
    int tPos = 0;
    System.out.print(tPromptString);

    while(true) {
        byte tNextByte = readByte();
        if(tNextByte == 10) {
            return new String(tBuffer, 0, tPos);
        }

        if(tNextByte != 13) {
            tBuffer[tPos] = tNextByte;
            ++tPos;
        }
    }
}

and for example, I would do:

String name = this.readLine("What is your name?")

Here is a more developed version of the accepted answer that addresses two common needs:

  • Collecting user input repeatedly until an exit value has been entered
  • Dealing with invalid input values (non-integers in this example)

Code

package inputTest;

import java.util.Scanner;
import java.util.InputMismatchException;

public class InputTest {
    public static void main(String args[]) {
        Scanner reader = new Scanner(System.in);
        System.out.println("Please enter integers. Type 0 to exit.");

        boolean done = false;
        while (!done) {
            System.out.print("Enter an integer: ");
            try {
                int n = reader.nextInt();
                if (n == 0) {
                    done = true;
                }
                else {
                    // do something with the input
                    System.out.println("\tThe number entered was: " + n);
                }
            }
            catch (InputMismatchException e) {
                System.out.println("\tInvalid input type (must be an integer)");
                reader.nextLine();  // Clear invalid input from scanner buffer.
            }
        }
        System.out.println("Exiting...");
        reader.close();
    }
}

Example

Please enter integers. Type 0 to exit.
Enter an integer: 12
    The number entered was: 12
Enter an integer: -56
    The number entered was: -56
Enter an integer: 4.2
    Invalid input type (must be an integer)
Enter an integer: but i hate integers
    Invalid input type (must be an integer)
Enter an integer: 3
    The number entered was: 3
Enter an integer: 0
Exiting...

Note that without nextLine(), the bad input will trigger the same exception repeatedly in an infinite loop. You might want to use next() instead depending on the circumstance, but know that input like this has spaces will generate multiple exceptions.

import java.util.Scanner;

public class userinput {
    public static void main(String[] args) {        
        Scanner input = new Scanner(System.in);

        System.out.print("Name : ");
        String name = input.next();
        System.out.print("Last Name : ");
        String lname = input.next();
        System.out.print("Age : ");
        byte age = input.nextByte();

        System.out.println(" " );
        System.out.println(" " );

        System.out.println("Firt Name: " + name);
        System.out.println("Last Name: " + lname);
        System.out.println("      Age: " + age);
    }
}
class ex1 {    
    public static void main(String args[]){
        int a, b, c;
        a = Integer.parseInt(args[0]);
        b = Integer.parseInt(args[1]);
        c = a + b;
        System.out.println("c = " + c);
    }
}
// Output  
javac ex1.java
java ex1 10 20 
c = 30
  • 4
    Maybe elaborate on that... – DaGardner Mar 22 '15 at 11:52
  • The sanction for accessing elements of args without checking the length of that array first: downvote. – jubobs Nov 1 '15 at 19:56
  • java ex1 – ADTC Mar 30 '16 at 11:26

protected by Brad Larson Apr 14 '15 at 1:47

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