3

I am using Scanner for taking user input in java. when i use nextInt() and the user inputs "2 5", then the value "2" is assigned and 5 is thrown away. What if I want to display that such an input is an error? One solution that comes to my mind is that i can use nextString() instead of nextInt() and then work my way out. But can anybody suggest a better solution?

i realized that it is not throwing away the integer after space, instead it is using it for the next input.

import java.util.Scanner;
class Test{
static Scanner in=new Scanner(System.in);
static void trial(){
    int k=in.nextInt();
    System.out.println(k);
    System.out.println(k);
}

public static void main(String[] args){     
    int k=in.nextInt();
    System.out.println(k);
    System.out.println(k);
    trial();        
}
}
  • 1
    nextInt() will read one int. If you want to read the other one, call it again. – nhahtdh Jul 25 '12 at 5:23
  • That shouldn't happen. Can you please post the code snippet as well? Did you try calling nextInt() again? – SiB Jul 25 '12 at 5:24
8

1. First use nextLine() to read the entire line.

2. Use Integer.parseInt() method to validate the integer input.

Eg:

Scanner scan = new Scanner(System.in);
String s = scan.nextLine();

try{
    Integer.parseInt(s);
}
catch(NumberFormatException ex){
    System.out.println("Its not a valid Integer");
}
  • 1
    But if have two integers typed with a space as a delimiter, parseInt will always fail. We need split the string that we get from nextLine(). i.e we should go for parsing only after we split the string, otherwise it will always throw an error "Its not a valid integer" for above mentioned case. – sakthisundar Jul 25 '12 at 5:55
  • 1
    I have given the answer according to the question, that is how to validate a single or a pair of digit separated by a space. Consider 15 is a an integer, writing "1 5" using split with space as delimiter will consider 1 and 5 as two digits, but the user doesnt want it that way..... – Kumar Vivek Mitra Jul 25 '12 at 6:01
  • 1
    As a small suggestion: Use Apache Commons StringUtils.isNumeric(String); This will tell you, if the String is infact a valid number. IMHO using Exceptions this way is a bit ugly. – Sören Jul 25 '12 at 10:19
2

Personally, I'd suggest reading the line all-at-once, and using String.split() to parse the individual "words":

http://pages.cs.wisc.edu/~hasti/cs302/examples/Parsing/parseString.html

We want to divide up a phrase into words where spaces are used to separate words. For example

the music made   it   hard      to        concentrate

In this case, we have just one delimiter (space) and consecutive delimiters (i.e., several spaces in a row) should be treated as one delimiter. To parse this string in Java, we do

String phrase = 
  "the music made   it   hard      to        concentrate"; 
String delims = "[ ]+"; 
String[] tokens =  phrase.split(delims);
  • 1
    I would not recommend String.split() to any Java newbie. You are directly sending him into his next batch of problems somewhere in the future, caused by the fact that the split argument is a regular expression, which he will have forgotten again after short time. – Bananeweizen Jul 25 '12 at 5:28
  • 2
    Regular expressions are hugely powerful: better to find them sooner than later. Plus, newbie programs are easier to debug - if your first regular expression mistake comes in a 5000 line program, you are much more stuck. – GKFX Aug 27 '13 at 11:24
  • loosely related: programmers.stackexchange.com/questions/223634/… – törzsmókus Mar 8 '16 at 16:17
0

Use readLine() from BufferedReader. You will get a String containing everything that the user types up to Enter. From there, you can do what you want with the input and check that it conforms to your expected formatting.

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