Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm having an issue where I can't get values to go into a certain spot of my array lists. I have user input that successfully stores the Strings into variables but I don't know how to put them into a specific cell of the array.

Code:

 public void newAccount() {
     firstName = JOptionPane.showInputDialog("What's your first name?");
     nLastName = JOptionPane.showInputDialog("What's your last name?");
     nAddress = JOptionPane.showInputDialog("What's your current address?");
     nCity= JOptionPane.showInputDialog("What's your current city?");
     nState = JOptionPane.showInputDialog("What's your current State?");
     nZipCode = JOptionPane.showInputDialog("What's your current Zip Code?");
     account.add( accountNumber, firstName);
     account.add( accountNumber, nLastName);
     account.add( accountNumber, nAddress);
     account.add( accountNumber, nCity);
     account.add( accountNumber, nState);
     account.add(accountNumber, nZipCode); 
}
share|improve this question
1  
Please consider doing away with the > in your posted code as they're distracting and make the code hard to read. Thanks. –  Hovercraft Full Of Eels Dec 27 '12 at 3:53
    
You must mention the data-type of the account variable. –  User 104 Dec 27 '12 at 3:55
2  
Can you please follow a tutorial? (Perhaps one on various Collection types.) This must be about the 10th time this evening this question (or one very similar) has come up .. –  user166390 Dec 27 '12 at 3:57

4 Answers 4

up vote 0 down vote accepted

If the variable account is an Arraylist then you're using it wrongly. You are adding only the ZipCode to the arraylist at position account number.

You should create an account object in which the first and last names, zip codes etc go into.

Then put this account object into the Arraylist. That way you'll have an Arraylist populated with account objects.

share|improve this answer

You want to use the following add method of ArrayList, doing the following allows you to place an entry at a specified index:

ArrayList al = new ArrayList();  
al.add(index, object);

Also to note, recall that indexes in Java are 0 based.

share|improve this answer

As I assume you use and ArrayList... use the second method of add() which first parameter accepts the index where the new value will be added

account.add(index,value);

where is index is an integer which will define in what index will be the value will be stored in the ArrayList

as value can be an Object then you can create a class object and save it to the value for example

List<AccountItem> = new ArrayList<AccountItem>();

class AccountItem(){
   public String firstname;
   public String lastname;
}

AccountItem ai = new AccountItem();
ai.firstname= "you";
ai.lastname = "me";

account.add(2,ai); //where i save the new object in index 2
share|improve this answer

What is the type of the account variable? If it's an ArrayList, then your design is off as you don't want to add Strings to the ArrayList to represent a single Account object. This is fraught with errors, not the least of which being the risk of adding things out of order. Instead you should create an Account class that has fields for the values that you're currently trying to add to the array list.

public class Account {
  private String firstName;
  private String lastName;
  // .... etc

  public Account(String firstName, String lastName, .... etc...) {
    this.firstName = firstName;
    this.lastName = lastName;
    // .... etc...

  }

You could then create an Account object passing in the values that you have above into its constructor.

Account newAccount = new Account("John", "Smith", ..... etc...);

Then you could have an ArrayList of Account objects, or better represented as ArrayList<Account> and add individual Account objects to this list with ease.

share|improve this answer
    
post up that equals/hashcode :) –  Woot4Moo Dec 27 '12 at 4:01
    
@Woot4Moo: that and toString() are left as an exercise for the OP. –  Hovercraft Full Of Eels Dec 27 '12 at 4:06

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.