I'm using ArrayList<String> and I add data at specific indices, how can I check if a specific index exists?
Should I simply get() and check the value? Or should I wait for an exception?
Is there another way?
Update: Thank you for your answers, but because I'm only adding stuff at specific indices, the length of the list will not show me which are available.
The method arrayList.size() returns the number of items in the list - so if the index is greater than or equal to the size(), it doesn't exist.
if(index >= myList.size() || index < 0){
//index does not exists
}else{
// index exists
}
size()" since it is a zero-based index.
index = 0 and my list.size() == 0 too. so the first time I check it will be true & I'll prep the list to do stuff. but the next time at that index, my index will still be index = 0 and now I am re-initializing that element in the list when I was supposed to be doing stuff. The 1st thought is to && a second condition like list.get(index) == null but that not working is why there are questions like this one
May 10, 2016 at 19:10
While you got a dozen suggestions about using the size of your list, which work for lists with linear entries, no one seemed to read your question.
If you add entries manually at different indexes none of these suggestions will work, as you need to check for a specific index.
Using if ( list.get(index) == null ) will not work either, as get() throws an exception instead of returning null.
Try this:
try {
list.get( index );
} catch ( IndexOutOfBoundsException e ) {
list.add( index, new Object() );
}
Here a new entry is added if the index does not exist. You can alter it to do something different.
try/catch for this kind of work, it will slow down your program by 50% or maybe more.. error checking adds like a strap to your existing code to slow it down.. better to avoid it in critical areas. Checking for length in this case is the best thing you can do, since the index will always be less then the length,old index's will get shifted and become new index's if you remove them so that's why the rule checking for length always will work.
This is what you need ...
public boolean indexExists(final List list, final int index) {
return index >= 0 && index < list.size();
}
Why not use an plain old array? Indexed access to a List is a code smell I think.
This is for Kotlin developers ending up here:
if (index in myList.indices) {
// index is valid
}
Other solutions:
// The rangeUntil operator (..<) is still exprimental in Kotlin 1.7.20
if (index in 0..<myList.size) {
// index is valid
}
if (index in 0 until myList.size) {
// index is valid
}
if (index in 0..myList.lastIndex) {
// index is valid
}
if (index >= 0 && index <= myList.lastIndex) {
// index is valid
}
// Note: elements of the list should be non-null
if (myList.getOrNull(index) != null) {
// index is valid
}
// Note: elements of the list should be non-null
myList.getOrNull(index)?.let { element ->
// index is valid; use the element
}
Usually I just check if the index is less than the array size
if (index < list.size()) {
...
}
If you are also concerned of index being a negative value, use following
if (index >= 0 && index < list.size()) {
...
}
Regarding your update (which probably should be another question). You should use an array of these objects instead an ArrayList, so you can simply check the value for null:
Object[] array = new Object[MAX_ENTRIES];
..
if ( array[ 8 ] == null ) {
// not available
}
else {
// do something
}
Best-Practice
If you don't have hundred of entries in your array you should consider organizing it as a class to get rid of the magic numbers 3,8 etc.
Control flow using exception is bad practice.
Since Java 9 there is a standard way of checking if an index belongs to the array - Objects#checkIndex() :
List<Integer> ints = List.of(1,2,3);
System.out.println(Objects.checkIndex(1,ints.size())); // 1
System.out.println(Objects.checkIndex(10,ints.size())); //IndexOutOfBoundsException
of() method also is added in Java 9 to the class List: docs.oracle.com/javase/9/docs/api/java/util/List.html#of--
You can check the size of an ArrayList using the size() method. This will return the maximum index +1
You could check for the size of the array.
package sojava;
import java.util.ArrayList;
public class Main {
public static Object get(ArrayList list, int index) {
if (list.size() > index) { return list.get(index); }
return null;
}
public static void main(String[] args) {
ArrayList list = new ArrayList();
list.add(""); list.add(""); list.add("");
System.out.println(get(list, 4));
// prints 'null'
}
}
Quick and dirty test for whether an index exists or not. in your implementation replace list With your list you are testing.
public boolean hasIndex(int index){
if(index < list.size())
return true;
return false;
}
or for 2Dimensional ArrayLists...
public boolean hasRow(int row){
if(row < _matrix.size())
return true;
return false;
}
.length it has list.size() but it's no big deal I screw up like this all the time haha I rely on compiler to guide me on that one. You were probably thinking of primitive arrays
a simple way to do this:
try {
list.get( index );
}
catch ( IndexOutOfBoundsException e ) {
if(list.isEmpty() || index >= list.size()){
// Adding new item to list.
}
}
If your index is less than the size of your list then it does exist, possibly with null value. If index is bigger then you may call ensureCapacity() to be able to use that index.
If you want to check if a value at your index is null or not, call get()
Scanner input = new Scanner(System.in);
System.out.println("Enter the index to check");
int i = input.nextInt();
if (i > tasksList.size() || i < 0 ){
System.out.println("invalid input");
}else {
//your code
}
get()and check fornull- don't rely on exceptions though. Consider using aHashTableinstead java.sun.com/j2se/1.4.2/docs/api/java/util/Hashtable.html