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Im a beginner in Java. I have the following loop structure:

loop1:
for(int j=0; j<a.size(); j++){

    if(a.get(j).equals(10)){
        System.out.println(a.get(j));
    } else {
        do {
            System.out.println(a.get(j));
        } while(a.get(j).equals(20)); 
        break loop1;
    }
}

This is a basic structure of what im trying to do. So I want to break out of the for loop when the do while loop in the else part is satisfied(the do- while loop executes once irrespective of condition mentioned, I dont want to exit the loop then, but I want to exit the loop when the condition is actually satisfied). How do I do that? I tried breaking as shown in code, but it stops after first iteration through do-while loop. Where am I going wrong?

I want to print the values in the ArrayList a starting from 10 until 20...and 10 can be anywhere in the list and not the beginning.

Eg. ArrayList a contains {1,2,3,4,5,6,7,8,9,10,11,12,13...20}
I want to print values in the ArrayList from values 10 to 20 (including 10 and 20). 

There are no duplicate elements in the list. So there is only one 10 and one 20 in the list and it is always in the increasing order.

share|improve this question
2  
Is your condition being met the first time you go into your do while? Because if that's the case, it's working as intended – JREN Jun 27 '13 at 11:50
3  
WHat you mean "completely satisfied"? You check if something equals 20, this is either staisfied or not. There is no third possibility. – Ingo Jun 27 '13 at 11:54
1  
But this exactly is what happens! Consider a.get(j) is not 20, it would loop forever and never break loop1. – Ingo Jun 27 '13 at 12:00
2  
Please tell the expected output – adi Jun 27 '13 at 12:03
1  
As it stands, the code would print all leading 10 in a, then, if 20occurs, it prints that and exits the loop. If something that is not 10and not 20 occurs, it prints that forever. – Ingo Jun 27 '13 at 12:05
up vote 2 down vote accepted
int i=0;
boolean found10,found20;
found10=false;
found20=false;
while(i<a.size&&(!found20))
{
    if(a.get(i)==10)
        found10 = true;
    if(found10)
        System.out.println(a.get(i));
    if(a.get(i)==20)
        found20 = true;
    i++;
}
share|improve this answer
    
This would print 10 30 20 for array 1 2 3 10 30 20 15 – adi Jun 27 '13 at 12:32
1  
Thanks for the code and the answer! It works :) – user2358330 Jun 27 '13 at 12:35
    
Sure, boolean flags provide a nice way for controlling looping even when its complicated (atleast for me) – adi Jun 27 '13 at 12:36

The usual way to do what you want is via a flag:

boolean printing = false;
for (int n : a) {
    if (n == 10) printing = true;
    if (printing) System.out.println(n);
    if (n == 20) break;
}

If you insist on using a nested loop, your solution was very very close, you only missed a critical i++ inside the inner loop, and of course its condition was reversed. Also, you are not breaking from an inner loop, you're breaking from an outer loop; so you don't need a label.

for (int i = 0; i < a.size(); a++) {
    if (a.get(i).equals(10)) {
        do {
            System.out.println(n);
            i++;
        } while (! a.get(i).equals(20));
        break;
    }
}

Also, be wary of corner cases. What happens if 10 appears but 20 doesn't? What happens if 20 appears before 10? What happens if there are multiple 10s or 20s? For example, my 2nd snippet might crash for some of those (because of i++ without checking the array size). Once you know how the corner cases should behave, you should modify those snippets accordingly.

share|improve this answer
    
Thanks for the code! :) – user2358330 Jun 27 '13 at 12:42

I guess you are putting some wrong logic there. If a.get(j).equals(10) is not true then either the for loop will break in first iteration of j or you will end up in infinite loop as the value of j will never change.

share|improve this answer

According to your statement

I want to print the values in the ArrayList a starting from 10 until 20...and 10 can be anywhere in the list and not the beginning

You can use following code:

for(int j=0; j<a.size(); j++){
   int number = Integer.parseInt(a.get(j).toString());
   if(number>=10 && number<=20){
     System.out.println(number);
   }
}
share|improve this answer
    
Why is this down voted? – Prabhat Jul 4 '13 at 11:20

According to this comment:

I want to print the values in the ArrayList a starting from 10 until 20...and 10 can be anywhere in the list and not the beginning

interpreted such that the arraylist contains 10 somewhere and possibly 20 somewhere further down the list and all numbers between the first 10 and the first 20 should be printed:

j = 0;
while (j < a.size() && a.get(j) != 10) j++;
if (j < a.size()) do {
    print (a.get(j)); j++;
} while (j < a.size() && a.get(j) != 20);
share|improve this answer

Everyone else has fixed your loop.

To answer the question in the title, the easiest way to break out of a complex loop is to put the complex loop in a method, and use the return statement.

Using your code as an example,

public void someMethod(List<Object> a) {
    for (int j = 0; j < a.size(); j++) {
        if (a.get(j).equals(10)) {
            System.out.println(a.get(j));
        } else {
            do {
                System.out.println(a.get(j));
            } while (a.get(j).equals(20));
            return;
        }
    }
}
share|improve this answer

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