90

I need to group a list of objects(Student) using an attribute(Location) of the particular object, the code is like below,

public class Grouping {

    /**
     * @param args the command line arguments
     */
    public static void main(String[] args) {

        List<Student> studlist = new ArrayList<Student>();
        studlist.add(new Student("1726", "John", "New York"));
        studlist.add(new Student("4321", "Max", "California"));
        studlist.add(new Student("2234", "Andrew", "Los Angeles"));
        studlist.add(new Student("5223", "Michael", "New York"));
        studlist.add(new Student("7765", "Sam", "California"));
        studlist.add(new Student("3442", "Mark", "New York"));

        //Code to group students by location
        /*  Output should be Like below
            ID : 1726   Name : John Location : New York
            ID : 5223   Name : Michael  Location : New York
            ID : 4321   Name : Max  Location : California
            ID : 7765   Name : Sam  Location : California    

         */

        for (Student student : studlist) {
            System.out.println("ID : "+student.stud_id+"\t"+"Name : "+student.stud_name+"\t"+"Location : "+student.stud_location);
        }


    }
}

class Student {

    String stud_id;
    String stud_name;
    String stud_location;

    Student(String sid, String sname, String slocation) {

        this.stud_id = sid;
        this.stud_name = sname;
        this.stud_location = slocation;

    }
}

Please suggest me a clean way to do it.

  • 2
    A hashmap with location as the key and the students list as value. – Omoro Feb 10 '14 at 13:26
  • Would sorting by location solve your problem, or is there something else? – Warlord Feb 10 '14 at 13:27
  • Try using Comparator and sort by location. – pshemek Feb 10 '14 at 13:28
  • 1
    @Warlord Yes, But going further if I need get information like, Student count by Location better if I could get it grouped – Dilukshan Mahendra Feb 10 '14 at 13:28
  • @Omoro Please can you give me a clue by code, Im not so familiar with Hashmaps – Dilukshan Mahendra Feb 10 '14 at 13:30

12 Answers 12

124

This will add the students object to the HashMap with locationID as key.

HashMap<Integer, List<Student>> hashMap = new HashMap<Integer, List<Student>>();

Iterate over this code and add students to the HashMap:

if (!hashMap.containsKey(locationId)) {
    List<Student> list = new ArrayList<Student>();
    list.add(student);

    hashMap.put(locationId, list);
} else {
    hashMap.get(locationId).add(student);
}

If you want all the student with particular location details then you can use this:

hashMap.get(locationId);

which will get you all the students with the same the location ID.

| improve this answer | |
  • 4
    You declared a List of Location objects and in the next line you add a Student object to the previous list which should throw an error. – OJVM Dec 6 '17 at 15:25
  • hashMap.get() returns null when hashMap.contanisKey() return false. You could save the call to containsKey() method if you call first hashMap.get(), store result in a local var, and check if this local var is null – Esteve Jan 18 '18 at 9:45
231

In Java 8:

Map<String, List<Student>> studlistGrouped =
    studlist.stream().collect(Collectors.groupingBy(w -> w.stud_location));
| improve this answer | |
  • That is because in Student class stud_location is specified as Friendly. Only Student class and any class that is defined in the same package of Student can access stud_location. If you put public String stud_location; instead of String stud_location;, this should work. Or you can define a getter function. More info in cs.princeton.edu/courses/archive/spr96/cs333/java/tutorial/java/… – Eranga Heshan Dec 30 '18 at 14:19
31
Map<String, List<Student>> map = new HashMap<String, List<Student>>();

for (Student student : studlist) {
    String key  = student.stud_location;
    if(map.containsKey(key)){
        List<Student> list = map.get(key);
        list.add(student);

    }else{
        List<Student> list = new ArrayList<Student>();
        list.add(student);
        map.put(key, list);
    }

}
| improve this answer | |
8

Using Java 8

import java.util.List;
import java.util.Map;
import java.util.stream.Collectors;
import java.util.stream.Stream;

class Student {

    String stud_id;
    String stud_name;
    String stud_location;

    public String getStud_id() {
        return stud_id;
    }

    public String getStud_name() {
        return stud_name;
    }

    public String getStud_location() {
        return stud_location;
    }



    Student(String sid, String sname, String slocation) {

        this.stud_id = sid;
        this.stud_name = sname;
        this.stud_location = slocation;

    }
}

class Temp
{
    public static void main(String args[])
    {

        Stream<Student> studs = 
        Stream.of(new Student("1726", "John", "New York"),
                new Student("4321", "Max", "California"),
                new Student("2234", "Max", "Los Angeles"),
                new Student("7765", "Sam", "California"));
        Map<String, Map<Object, List<Student>>> map= studs.collect(Collectors.groupingBy(Student::getStud_name,Collectors.groupingBy(Student::getStud_location)));
                System.out.println(map);//print by name and then location
    }

}

The result will be:

{
    Max={
        Los Angeles=[Student@214c265e], 
        California=[Student@448139f0]
    }, 
    John={
        New York=[Student@7cca494b]
    }, 
    Sam={
        California=[Student@7ba4f24f]
    }
}
| improve this answer | |
  • This answer can be improved by sticking to the same example as the question. Also the result does not match with the desired output requested in the question. – Pim Hazebroek Apr 2 '19 at 13:30
4

You can use the following:

Map<String, List<Student>> groupedStudents = new HashMap<String, List<Student>>();
for (Student student: studlist) {
    String key = student.stud_location;
    if (groupedStudents.get(key) == null) {
        groupedStudents.put(key, new ArrayList<Student>());
    }
    groupedStudents.get(key).add(student);
}

//print

Set<String> groupedStudentsKeySet = groupedCustomer.keySet();
for (String location: groupedStudentsKeySet) {
   List<Student> stdnts = groupedStudents.get(location);
   for (Student student : stdnts) {
        System.out.println("ID : "+student.stud_id+"\t"+"Name : "+student.stud_name+"\t"+"Location : "+student.stud_location);
    }
}
| improve this answer | |
4

Implement SQL GROUP BY Feature in Java using Comparator, comparator will compare your column data, and sort it. Basically if you keep sorted data that looks as grouped data, for example if you have same repeated column data then sort mechanism sort them keeping same data one side and then look for other data which is dissimilar data. This indirectly viewed as GROUPING of same data.

public class GroupByFeatureInJava {

    public static void main(String[] args) {
        ProductBean p1 = new ProductBean("P1", 20, new Date());
        ProductBean p2 = new ProductBean("P1", 30, new Date());
        ProductBean p3 = new ProductBean("P2", 20, new Date());
        ProductBean p4 = new ProductBean("P1", 20, new Date());
        ProductBean p5 = new ProductBean("P3", 60, new Date());
        ProductBean p6 = new ProductBean("P1", 20, new Date());

        List<ProductBean> list = new ArrayList<ProductBean>();
        list.add(p1);
        list.add(p2);
        list.add(p3);
        list.add(p4);
        list.add(p5);
        list.add(p6);

        for (Iterator iterator = list.iterator(); iterator.hasNext();) {
            ProductBean bean = (ProductBean) iterator.next();
            System.out.println(bean);
        }
        System.out.println("******** AFTER GROUP BY PRODUCT_ID ******");
        Collections.sort(list, new ProductBean().new CompareByProductID());
        for (Iterator iterator = list.iterator(); iterator.hasNext();) {
            ProductBean bean = (ProductBean) iterator.next();
            System.out.println(bean);
        }

        System.out.println("******** AFTER GROUP BY PRICE ******");
        Collections.sort(list, new ProductBean().new CompareByProductPrice());
        for (Iterator iterator = list.iterator(); iterator.hasNext();) {
            ProductBean bean = (ProductBean) iterator.next();
            System.out.println(bean);
        }
    }
}

class ProductBean {
    String productId;
    int price;
    Date date;

    @Override
    public String toString() {
        return "ProductBean [" + productId + " " + price + " " + date + "]";
    }
    ProductBean() {
    }
    ProductBean(String productId, int price, Date date) {
        this.productId = productId;
        this.price = price;
        this.date = date;
    }
    class CompareByProductID implements Comparator<ProductBean> {
        public int compare(ProductBean p1, ProductBean p2) {
            if (p1.productId.compareTo(p2.productId) > 0) {
                return 1;
            }
            if (p1.productId.compareTo(p2.productId) < 0) {
                return -1;
            }
            // at this point all a.b,c,d are equal... so return "equal"
            return 0;
        }
        @Override
        public boolean equals(Object obj) {
            // TODO Auto-generated method stub
            return super.equals(obj);
        }
    }

    class CompareByProductPrice implements Comparator<ProductBean> {
        @Override
        public int compare(ProductBean p1, ProductBean p2) {
            // this mean the first column is tied in thee two rows
            if (p1.price > p2.price) {
                return 1;
            }
            if (p1.price < p2.price) {
                return -1;
            }
            return 0;
        }
        public boolean equals(Object obj) {
            // TODO Auto-generated method stub
            return super.equals(obj);
        }
    }

    class CompareByCreateDate implements Comparator<ProductBean> {
        @Override
        public int compare(ProductBean p1, ProductBean p2) {
            if (p1.date.after(p2.date)) {
                return 1;
            }
            if (p1.date.before(p2.date)) {
                return -1;
            }
            return 0;
        }
        @Override
        public boolean equals(Object obj) {
            // TODO Auto-generated method stub
            return super.equals(obj);
        }
    }
}

Output is here for the above ProductBean list is done GROUP BY criteria, here if you see the input data that is given list of ProductBean to Collections.sort(list, object of Comparator for your required column) This will sort based on your comparator implementation and you will be able to see the GROUPED data in below output. Hope this helps...

    ******** BEFORE GROUPING INPUT DATA LOOKS THIS WAY ******
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 30 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P2 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P3 60 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ******** AFTER GROUP BY PRODUCT_ID ******
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 30 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P2 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P3 60 Mon Nov 17 09:31:01 IST 2014]

    ******** AFTER GROUP BY PRICE ******
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P2 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 20 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P1 30 Mon Nov 17 09:31:01 IST 2014]
    ProductBean [P3 60 Mon Nov 17 09:31:01 IST 2014]

| improve this answer | |
  • 1
    Hi, please don't post the same answer multiple times, and please don't post raw code without an explanation about how it works and how it solves the problem in the question above. – Mat Nov 17 '14 at 4:28
  • Sorry buddy, there was some mistake in pasting the code, since it might have become multiple times. I have edited explanation for what I posted. Hope that looks fine now??? – Ravi Beli Nov 17 '14 at 12:58
1

Java 8 groupingBy Collector

Probably it's late but I like to share an improved solution to this problem. This is basically the same idea of @Vitalii Fedorenko's answer but more handly to play around.

So you can just use the Collectors.groupingBy() by passing the grouping logic as function parameter and you will get the splitted list with the key parameter mapping. Note that using Optional helps to avoid unwanted NPE when the provided list is null

public static <E, K> Map<K, List<E>> groupBy(List<E> list, Function<E, K> keyFunction) {
    return Optional.ofNullable(list)
            .orElseGet(ArrayList::new)
            .stream()
            .collect(Collectors.groupingBy(keyFunction));
}

Now you can groupBy anything with this. For the use case here in the question

Map<String, List<Student>> map = groupBy(studlist, Student::getLocation);

Maybe you can like to look into this also Guide to Java 8 groupingBy Collector

| improve this answer | |
0

You can sort like this:

    Collections.sort(studlist, new Comparator<Student>() {

        @Override
        public int compare(Student o1, Student o2) {
            return o1.getStud_location().compareTo(o2.getStud_location());
        }
    });

Assuming you also have the getter for location on your Student class.

| improve this answer | |
  • 2
    Why Sort ? The problem is to group the elements ! – Sankalp Mar 31 '18 at 6:50
0

You could do this:

Map<String, List<Student>> map = new HashMap<String, List<Student>>();
List<Student> studlist = new ArrayList<Student>();
studlist.add(new Student("1726", "John", "New York"));
map.put("New York", studlist);

the keys will be locations and the values list of students. So later you can get a group of students just by using:

studlist = map.get("New York");
| improve this answer | |
0

you can use guava's Multimaps

@Canonical
class Persion {
     String name
     Integer age
}
List<Persion> list = [
   new Persion("qianzi", 100),
   new Persion("qianzi", 99),
   new Persion("zhijia", 99)
]
println Multimaps.index(list, { Persion p -> return p.name })

it print:

[qianzi:[com.ctcf.message.Persion(qianzi, 100),com.ctcf.message.Persion(qianzi, 88)],zhijia:[com.ctcf.message.Persion(zhijia, 99)]]

| improve this answer | |
0
Function<Student, List<Object>> compositKey = std ->
                Arrays.asList(std.stud_location());
        studentList.stream().collect(Collectors.groupingBy(compositKey, Collectors.toList()));

If you want to add multiple objects for group by you can simply add the object in compositKey method separating by a comma:

Function<Student, List<Object>> compositKey = std ->
                Arrays.asList(std.stud_location(),std.stud_name());
        studentList.stream().collect(Collectors.groupingBy(compositKey, Collectors.toList()));
| improve this answer | |
0
public class Test9 {

    static class Student {

        String stud_id;
        String stud_name;
        String stud_location;

        public Student(String stud_id, String stud_name, String stud_location) {
            super();
            this.stud_id = stud_id;
            this.stud_name = stud_name;
            this.stud_location = stud_location;
        }

        public String getStud_id() {
            return stud_id;
        }

        public void setStud_id(String stud_id) {
            this.stud_id = stud_id;
        }

        public String getStud_name() {
            return stud_name;
        }

        public void setStud_name(String stud_name) {
            this.stud_name = stud_name;
        }

        public String getStud_location() {
            return stud_location;
        }

        public void setStud_location(String stud_location) {
            this.stud_location = stud_location;
        }

        @Override
        public String toString() {
            return " [stud_id=" + stud_id + ", stud_name=" + stud_name + "]";
        }

    }

    public static void main(String[] args) {

        List<Student> list = new ArrayList<Student>();
        list.add(new Student("1726", "John Easton", "Lancaster"));
        list.add(new Student("4321", "Max Carrados", "London"));
        list.add(new Student("2234", "Andrew Lewis", "Lancaster"));
        list.add(new Student("5223", "Michael Benson", "Leeds"));
        list.add(new Student("5225", "Sanath Jayasuriya", "Leeds"));
        list.add(new Student("7765", "Samuael Vatican", "California"));
        list.add(new Student("3442", "Mark Farley", "Ladykirk"));
        list.add(new Student("3443", "Alex Stuart", "Ladykirk"));
        list.add(new Student("4321", "Michael Stuart", "California"));

        Map<String, List<Student>> map1  =

                list
                .stream()

            .sorted(Comparator.comparing(Student::getStud_id)
                    .thenComparing(Student::getStud_name)
                    .thenComparing(Student::getStud_location)
                    )

                .collect(Collectors.groupingBy(

                ch -> ch.stud_location

        ));

        System.out.println(map1);

/*
  Output :

{Ladykirk=[ [stud_id=3442, stud_name=Mark Farley], 
 [stud_id=3443, stud_name=Alex Stuart]], 

 Leeds=[ [stud_id=5223, stud_name=Michael Benson],  
 [stud_id=5225, stud_name=Sanath Jayasuriya]],


  London=[ [stud_id=4321, stud_name=Max Carrados]],


   Lancaster=[ [stud_id=1726, stud_name=John Easton],  

   [stud_id=2234, stud_name=Andrew Lewis]], 


   California=[ [stud_id=4321, stud_name=Michael Stuart],  
   [stud_id=7765, stud_name=Samuael Vatican]]}
*/


    }// main
}
| improve this answer | |

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