Below code is to implement singly linked list(From one of leetcode problems). In this case, I wanted to show all elements in the linked list, for example, [1, 2, 3, 4]. But the below message comes.

Exception in thread "main" java.lang.OutOfMemoryError: Java heap space
    at java.util.Arrays.copyOf(Unknown Source)
    at java.lang.AbstractStringBuilder.expandCapacity(Unknown Source)
    at java.lang.AbstractStringBuilder.ensureCapacityInternal(Unknown Source)
    at java.lang.AbstractStringBuilder.append(Unknown Source)
    at java.lang.StringBuffer.append(Unknown Source)
    at com.linkedlist.ch4.ListNode.display(leetcode_linkedlist.java:33)
    at com.linkedlist.ch4.leetcode_linkedlist.main(leetcode_linkedlist.java:51)

One problem I am guessing is whenever the display() method is invoked the object "this" is not created at the time. Any solution ? I do not want this method to be a no argument method. Thanks.

package com.linkedlist.ch4; 
//Definition for singly-linked list.



class ListNode {
int val;
ListNode next;  
ListNode(int x) {
    val = x;
}

public String toString(){

    return ""+val ;
}

public void display(){
    StringBuffer str = new StringBuffer();
    str.append("[ ");
    while(true){

        ListNode start = this;
        String val = start.val+"";
        str = str.append(val);
        start = start.next;
        if(start == null){
            str.append(" ]");
            break;
        }

        str = str.append(", ");
    }

    System.out.println(str.toString());

   }
}

public class leetcode_linkedlist {
    public static void main(String[] args){
    ListNode node1 = new ListNode(1);
    ListNode node2 = new ListNode(2);
    ListNode node3 = new ListNode(3);
    ListNode node4 = new ListNode(4);
    node1.next = node2;
    node2.next = node3;
    node3.next = node4;

    node1.display();

    System.out.println("------------");
    System.out.println("------------");

    deleteNode(node1);

    node1.display();

  }
public static void deleteNode(ListNode node) {
        if(node == null) return;
        node.val = node.next.val;
        node.next = node.next.next;
    }



}
  • why do you need to display in the first place? – Sleiman Jneidi Jul 16 '15 at 0:09
  • then your loop is probably never terminating. Did you step through the code in a debugger? – OldProgrammer Jul 16 '15 at 0:10
  • "this" will be there for sure. – Sleiman Jneidi Jul 16 '15 at 0:11
  • @OldProgrammer : yes, the loop never ended. Thanks – Chungho Song Jul 16 '15 at 18:14

You're adding the first node to the string, over and over again, until it runs out of memory to store the string:

while(true){
    ListNode start = this;
    // 'start' now refers to the first node (the one you called the method on)

    String val = start.val+"";
    str = str.append(val);
    // the node 'start' is added to the current string

    start = start.next;
    // 'start' now refers to the second node

    if(start == null){
        str.append(" ]");
        break;
    }
    // since the second node exists, don't exit the loop.

    str = str.append(", ");
}

You probably want to move ListNode start = this; to just before the loop. That way, it won't reset start to the first node each time the loop runs.

  • Thank you! It works now. – Chungho Song Jul 16 '15 at 18:16

It is an infinite loop, this will always be pointing to the first node and hence ListNode start = this; will always be pointing to the same node. You just need to iterate properly

ListNode current = this;
while(current!=null){
 ... construct string 
 current = current.next
}

Your guess: the this wasn't created. Is totally wrong because the this reference will always be there if an object is instantiated.

  • Thanks. yes this reference will be there. – Chungho Song Jul 16 '15 at 18:17

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