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It is my first post here. I started learning Java and here is my first problem I cannot sort out on my own.

I am using Scanner methods nextInt() and nextLine() for reading input. Basically it looks like that

System.out.println("enter numerical value");    
int option;
option = input.nextInt ();//read numerical value from input
System.out.println("enter 1st string"); 
String string1 = input.nextLine ();//read first string which is skipped
System.out.println("enter 2nd string");
String string2 = input.nextLine ();//read 2nd string which appeared straight after reading numerical value

and the problem is that after entering numerical value first input.nextLine() is skipped and the second input.nextLine() is executed, so my output looks

Enter numerical value
3//this is my input
enter 1st string//here suppose to be stopped and wait for my input but is skipped
enter 2nd string//and this line is executed and wait for my input

I tested my "application" and it looks like the problem lies in using input.nextInt(). If I delete it then nextLine() works fine, I mean both string1 = input.nextLine() and string1 = input.nextLine() are executed.

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1  
Related: stackoverflow.com/questions/4708219/… –  James Poulson Aug 14 '11 at 12:27
6  
The newline character is probably not consumed. –  Lews Therin Oct 27 '12 at 16:39
3  
Style note: you should declare your String variables on the same line you assign a value. E.g. String string1 = input.nextLine (). –  Duncan Oct 27 '12 at 16:39
    
@Lews Therin: Yes, you are right. After another couple of test I found that it is executed and read "\n". How to avoid of that? –  blekione Oct 27 '12 at 16:45
    
@Duncan Jones: Thx for advice. –  blekione Oct 27 '12 at 16:46

7 Answers 7

up vote 64 down vote accepted

Thats because the Scanner#nextInt method does not read the last newline character of your input, and thus that newline is consumed in the next call to Scanner#nextLine

Workaround: -

  • Either fire a blank Scanner#nextLine call after Scanner#nextInt to consume newline

    int option = input.nextInt();
    input.nextLine();  // Consume newline left-over
    String str1 = input.nextLine();
    
  • Or, it would be even better, if you read the input through Scanner#nextLine and convert your input to integer using Integer#parseInt(String) method.

    int option = 0;
    try {
        option = Integer.parseInt(input.nextLine());
    } catch (NumberFormatException e) {
        e.printStackTrace();
    }
    String str1 = input.nextLine();
    

You will encounter the similar behaviour when you use Scanner#nextLine after Scanner#next() or any Scanner#nextXXX method for except nextLine itself.

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3  
Both solutions works perfect. As you suggested I will try to use 2nd one, but I have to find out first what mean try and catch. This is something new for me. Thx for help guys. I'm impressed how quick you responded –  blekione Oct 27 '12 at 16:53
3  
@blekione. Then probably leave it for now. They are used for Exception Handling, which you will learn later on. For now, use the first approach. –  Rohit Jain Oct 27 '12 at 16:54
    
Thx for all sugestions –  blekione Oct 27 '12 at 16:57
2  
@blekione. You have to use try-catch, because Integer.parseInt throws NumberFormatException when an invalid argument is passed to it. You will learn about exception later on. For E.G: - Integer.parseInt("abc"). You don't want "abc" to get converted to int right? –  Rohit Jain Oct 27 '12 at 18:02
2  
@blekione. So, in the above case, your code will halt at that point, and you won't be able to continue the execution. With Exception Handling, you can handle such kind of conditions. –  Rohit Jain Oct 27 '12 at 18:02

The problem is with the input.nextInt() command it only reads the int value. So when you continue reading with input.nextLine() you receive the "\n" Enter key. So to skip this you have to add the input.nextLine(). Hope this should be clear now.

Try it like that:

   System.out.print("Insert a number: ");
   int number = input.nextInt();
   input.nextLine(); // This line you have to add (It consumes the \n character)
   System.out.print("Text1: ");
   String text1 = input.nextLine();
   System.out.print("Text2: ");
   String text2 = input.nextLine();
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umm seems a solution, making the skipped line non-used nextLine, but I still need an explanation of this behaviour –  Eng.Fouad Aug 14 '11 at 12:25
    
FYI: merged from stackoverflow.com/questions/7056749/… –  Shog9 Nov 13 '14 at 19:11

It's because when you enter a number then press Enter, input.nextInt() consumes only the number, not the "end of line". When input.nextLine() executes, it consumes the "end of line" still in the buffer from the first input.

Instead, use input.nextLine() immediately after input.nextInt()

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Mmm, that bug was corrected in now a days? –  Victor May 29 '14 at 13:28
3  
@Victor it's not bug. it's working as specified. you could argue though that there should be an easy way to tell the api to also consume any whitespace following the target input. –  Bohemian May 29 '14 at 13:38
    
I see. thanks @Bohemian, that exactly what i am arguing. I think that this should be changed, perhaps you can point me where to suggest this "issue" in the next JCP. –  Victor May 29 '14 at 14:55
    
@victor You can request (and find out how to contribute code to) a feature via the Report a Bug or Request a Feature page. –  Bohemian May 29 '14 at 15:18
    
FYI: merged from stackoverflow.com/questions/7056749/… –  Shog9 Nov 13 '14 at 19:12

It does that because input.nextInt(); doesn't capture the newline. you could do like the others proposed by adding an input.nextLine(); underneath.
Alternatively you can do it C# style and parse a nextLine to an integer like so:

int number = Integer.parseInt(input.nextLine()); 

Doing this works just as well, and it saves you a line of code.

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FYI: merged from stackoverflow.com/questions/7056749/… –  Shog9 Nov 13 '14 at 19:12

There seem to be many questions about this issue with java.util.Scanner. I think a more readable/idiomatic solution would be to call scanner.skip("[\r\n]+") to drop any newline characters after calling nextInt().

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FYI: merged from stackoverflow.com/questions/7056749/… –  Shog9 Nov 13 '14 at 19:12

Why not use a new Scanner for every reading? Like below. With this approach you will not confront your problem.

int i = new Scanner(System.in).nextInt();
share|improve this answer

Instead of input.nextLine() use input.next(), that should solve the problem.

Modified code:

public static Scanner input = new Scanner(System.in);

public static void main(String[] args)
{
    System.out.print("Insert a number: ");
    int number = input.nextInt();
    System.out.print("Text1: ");
    String text1 = input.next();
    System.out.print("Text2: ");
    String text2 = input.next();
}
share|improve this answer
    
FYI: merged from stackoverflow.com/questions/7056749/… –  Shog9 Nov 13 '14 at 19:12

protected by Aniket Thakur Apr 19 at 9:05

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