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I'm trying to write data to an object that contains names and numbers, but for some reason, the name loses it's data right after initializing it with with the Scanner (this is all called within a method called private void addPerson()).

    String addName = "Just an empty String."; 
    System.out.println(addName + " testing");  // (Just an empty String. testing)
    System.out.println("Name: ");       
    addName = input.nextLine(); 
    System.out.println(addName); // null no matter what is entered
    input.next();
    System.out.println(addName + " again"); // Still null ( again) 

Right after input a name, I tried to see if the name was stored, but it doesn't. The first print doesn't even register in the output. The next thing to be displayed after I had hit ENTER was the last line, but it on displayed " again" in the output screen. The reason I have input.next() is because without it, the program will print everything up until I'm asking for input for integers. Even when I set the String to a default text, after trying to change it to a different name by means of user input, the String becomes null right after.

Lastly, when I perform the same test for the integers, they work perfectly.

Any suggestions as to what may be causing my String to not store anything?

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1  
Please post more detailed code – freak Feb 26 '13 at 6:36
up vote 1 down vote accepted

How do you declare the variable input?

Scanner input = new Scanner(System.in);

For printing the addName again, change it to

addName = input.next();
System.out.println("2. addName: " + addName);
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That fixed the problem I was having. Don't know why it wasn't a problem until now, because I haven't been doing much of anything differently in my past projects. Thx! – SpicyWeenie Feb 26 '13 at 6:46

I think the problem is in nexLine(), here is the documentation:

Advances this scanner past the current line and returns the input that was skipped. This method returns the rest of the current line, excluding any line separator at the end. The position is set to the beginning of the next line.

Since this method continues to search through the input looking for a line separator, it may buffer all of the input searching for the line to skip if no line separators are present.

Returns: the line that was skipped

Perhaps you may use next()?

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