17

I have created a list of objects and have people added to it:

ArrayList<Person> peeps = new ArrayList<Person>(); 

peeps.add(new Person("112", "John", "Smith"));
peeps.add(new Person("516", "Jane", "Smith"));
peeps.add(new Person("114", "John", "Doe"));

I am trying to figure out how to remove the person from the list by ID number. So if I wanted to remove the person with the ID number 114 but didn't now where it fell in the list, how would I?

6
  • 5
    Do you have to use an ArrayList? You would be much better off with a HashMap<Integer (ID), Person>.
    – lacraig2
    Mar 17, 2015 at 18:56
  • 2
    You haven't chosen the right data structure for your problem. Use a Map, not a List.
    – Asaph
    Mar 17, 2015 at 18:57
  • Can you extend your Person class?
    – ddagsan
    Mar 17, 2015 at 18:58
  • @lacraig2 Map<String, Person>
    – m0skit0
    Mar 17, 2015 at 19:07
  • @m0skit0 true. Would be a string. Its a bit weird to store integers like that, but it is a string.
    – lacraig2
    Mar 17, 2015 at 19:11

7 Answers 7

49

Using Java8:

peeps.removeIf(p -> p.getId().equals("112"));

Note that this is equivalent to linear search and will take O(n) time. If this operation will be repeated frequently it is recommended to use a HashMap in order to speed things up to O(1).

Alternatively using a sorted list would also do the trick, but require O(log n) time.

3
  • 1
    Nice one using Java 8 lambda expressions and new functionality.
    – m0skit0
    Mar 17, 2015 at 18:58
  • 1
    nice it is straight to use May 6, 2017 at 12:43
  • Awesome! Nice use of SE 8! Saved me tons of trouble having to iterate through to remove that one object.
    – Zhi Kai
    Oct 14, 2017 at 13:26
13

If you are going to be using an ArrayList, the the only way is to go through the entire list, looking at each person, and seeing it their id number is 114. For larger datasets, this is not going to efficient and should be avoided.

If you can change your data structure, then some sort of Map would be better (HashMap is typically a good choice). You could have the id number as a "key" and then associate it with each person. Later you can query the Map by key. The con is you can only have one value as a key, so you can't have say both name and id number keys

Edit:
An more efficient way to do use an ArrayList would be to keep it sorted by id number. Then you can use something like Collections.binarySearch() to quickly access the elements by id number. The con is is that it is expensive to remove from/insert into a sorted array, as everything greater the element has to be moved. So if you are going to be doing relatively few changes compared to the number of reads, this might be viable

1
  • 1
    Good answer but it is not the only way. Nice suggestion about the Map.
    – m0skit0
    Mar 17, 2015 at 18:59
7

There are many ways to tackle this.

  1. I am using CollectionUtils from apache.common.collection4 or its google equivalent. and then select what you wish using a predicate or in java 8 an lambda expression.
CollectionUtils.select(peeps, new Predicate<Person>() {
    @Override
    public boolean evaluate(Person object) {
        return object.getId().equals("114");
    }
});
  1. use good old iterator and loop over it
Iterator<Person> iterator = peeps.iterator();
while(iterator.hasNext()) {
   Person next = iterator.next();
   if(next.getId().equals("114")) {
       iterator.remove();
   }
}
3

iterate in the ArrayList elements and remove the ones which match the string you want to remove: The Iterator remove operations is safe and does not create a ConcurrentModificationException

for (Iterator<String> iterator = peeps.iterator(); elementToCheck = iterator.next();) {
    if (elementToCheck.getId().equals("112")) {
        // Remove the current element from the iterator and the list.
        iterator.remove();
    }
}
3
  • True. I changed it. Iterator remove is safe and will not cause this exception.
    – adrCoder
    Mar 17, 2015 at 18:58
  • You can just put elementToCheck = iterator.next() in the for ;)
    – m0skit0
    Mar 17, 2015 at 19:03
  • true :D Changed it ;-)
    – adrCoder
    Mar 17, 2015 at 19:04
3

You first need to have a working equals in your Person class (which you should). Then you can just use List#indexOf and List#remove. For example:

final Person toRemove = new Person("112");
peeps.remove(peeps.indexOf(toRemove));

(assuming the Person ID is unique).

Alternatively if your list is an ArrayList you can use ArrayList#remove(Object):

final Person toRemove = new Person("112");
peeps.remove(toRemove);

If you're using Java 8, you can use Paul's solution.

0

if you want to search for string then should use .equals

String query;
ArrayList<String> list;

   for(int i=0; i < list.size();i++)
       if (list.get(i).equals(query)){
           list.remove(i);
           break;
       }
1
  • ArrayList<Person> is pretty clear in the question.
    – m0skit0
    Oct 4, 2021 at 10:31
-1
class Processor{

ArrayList<Person> peeps = new ArrayList<Person>(); 

void setPeeps(){
    peeps.add(new Person(112, "John", "Smith"));
    peeps.add(new Person(516, "Jane", "Smith"));
    peeps.add(new Person(114, "John", "Doe"));
}

void removePerson(int id){
    for(int i=0; i <= peeps.size(); i++){
        Person person = peeps.get(i);
        if(person.id == id)
            peeps.remove(peeps.get(i));
    }
}

void displayPersonsList(){
    for(Person person : peeps){
        System.out.println(person.id + ":" + person.fName + ":" + person.lName);
    }
}

public static void main(String args[]){
    Processor objProcessor = new Processor();
    objProcessor.setPeeps();
    objProcessor.removePerson(114);
    objProcessor.displayPersonsList();
}
}

class Person{
int id;
String fName;
String lName;

public Person(int id, String fName, String lName){
    this.id = id;
    this.fName = fName;
    this.lName = lName;
}
}
2
  • I did not just type the code in here. I tried it on STS, ran it and then copied it. Can you post your error here? I tried it again, it works! Mar 18, 2015 at 13:19
  • @JobinThomas try removing any entry but the last one! (assuming you are still reading the site)
    – user85421
    Jan 22, 2017 at 18:58

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