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.

In the following code, the variable number cannot be found in the line number++ even though I initialized number in the same for-loop. Can anyone tell me why?

import java.lang.Math;
import java.util.Random;

public class test
{
    public static void main( String [] args )
    {
        String cardNumber; 
        double cardRandom;
        int cardRandomNumber;
        String[] cardSelection = new String[10];

        for (int number = 0; number <=  9; );
        {
            Random ran = new Random();
            cardRandom = ran.nextInt(52 - 1 + 1) + 1;
            cardRandomNumber = (int) Math.round( cardRandom );

            if ( cardRandomNumber > 0 && cardRandomNumber <= 52 )
            { 
                cardNumber =  "card" + cardRandomNumber;
                System.out.println( cardNumber );
                number++; // Says Error: Cannot find symbol
            }
        }   
    }
}

This program basically just picks a random number from 1-52, adds "cards" to the beginning of it and prints it out. It should print out 10 numbers.

share|improve this question

4 Answers 4

up vote 7 down vote accepted

The last semicolon in the following line must go away:

for (int number = 0; number <=  9; );

You basically declare a for loop without body. Good IDE should warn you about such bugs. And BTW incrementing loop counter should go to the last for expression where we all expect it to be:

for (int number = 0; number <=  9; ++number) {
  //..
}

BTW after eliminating unnecessary variables and conditions that are always met your code looks like this:

public static void main(String[] args) {
    Random r = new Random();
    for (int number = 0; number <= 9; ++number) {
        int cardRandom = 1 + r.nextInt(52);
        String cardNumber = "card" + cardRandom;
        System.out.println(cardNumber);
    }
}

Seriously.

share|improve this answer
4  
Nice cleanup, but don't create a new Random instance each time. Unless you specify a seed, Randoms are seeded with the value of System.currentTimeMillis(). If you create a new Random each time, you'll end up picking the same card whenever a loop iteration takes less than 1 millisecond to complete. –  dnault Aug 31 '12 at 22:45
    
@dnault ... and even if it takes more than 1ms per iteration, still, just use a single Random. –  oldrinb Aug 31 '12 at 22:47
    
@dnault: +1, absolutely, fixed. Just mindlessly copied from original. –  Tomasz Nurkiewicz Aug 31 '12 at 22:48

You've inadvertently terminated your for loop with a trailing semicolon:

for (int number = 0; number <=  9; );

This makes it equivalent to:

for (int number = 0; number <=  9; )
{ ; }

{
    Random ran = new Random();
    cardRandom = ran.nextInt(52 - 1 + 1) + 1;
    cardRandomNumber = (int) Math.round( cardRandom );

    // etc. ...

And so the number variable is out of scope when you increment it.

Remove that trailing semicolon.

share|improve this answer

Remove the semicolon:

for (int number = 0; number <=  9; ); // <-- this is your problem
share|improve this answer
import java.lang.Math; 
import java.util.Random; 
public class foo 
{
    public static void main( String [] args ) 
    {

        String cardNumber;          
        double cardRandom;       
        int cardRandomNumber;       
        String[] cardSelection = new String[10];   
        for (int number = 0; number <=  9; )
        {
            Random ran = new Random();   
            cardRandom = ran.nextInt(52 - 1 + 1) + 1;         
            cardRandomNumber = (int) Math.round( cardRandom );    



            if ( cardRandomNumber > 0 && cardRandomNumber <= 52 )          
            {     
                cardNumber =  "card" + cardRandomNumber;               
                System.out.println( cardNumber );      
            }
            number++; 
        }
    }   
}

The output is a set of 10 items:(notice that every time you run the program ,it gives different card numbers)

card2 card12 card37 card23 card18 card20 card21 card45 card19 card13

share|improve this answer

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.