Is there any EASY way to sort an array in descending order like how they have a sort in ascending order in the Arrays class?
Or do I have to stop being lazy and do this myself :[
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Take a look at the usages of Collections.reverseOrderdrorw– drorw2018-06-04 15:42:13 +00:00Commented Jun 4, 2018 at 15:42
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6A lot of below solutions will work on Integer and not on int type (make sure you are using appropriate)Manish Jain– Manish Jain2021-03-06 22:01:27 +00:00Commented Mar 6, 2021 at 22:01
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31 Answers
You could use this to sort all kind of Objects
sort(T[] a, Comparator<? super T> c)
Arrays.sort(a, Collections.reverseOrder());
Arrays.sort() cannot be used directly to sort primitive arrays in descending order. If you try to call the Arrays.sort() method by passing reverse Comparator defined by Collections.reverseOrder() , it will throw the error
no suitable method found for sort(int[],comparator)
That will work fine with 'Array of Objects' such as Integer array but will not work with a primitive array such as int array.
The only way to sort a primitive array in descending order is, first sort the array in ascending order and then reverse the array in place. This is also true for two-dimensional primitive arrays.
7 Comments
Masood_mj
It cannot sort arrays of primitives
Ishmael
Convert your primitives to their respective objects. Integer for int, Double for double, Boolean for boolean, etc.
Sebastian Hojas
if you still want to use your custom comparator:
Collections.reverseOrder(this)
ellipsis
Collections.reverseOrder() takes no parameters (unless I'm missing something?), instead I used myComparator.reversed().
Alexei
I use this (example): Comparator<AdMessage> notificationDataComparator = Collections.reverseOrder(GenericComparator .<AdMessage>createComparator(AdMessage.CREATED_AT_COMPARATOR)); Collections.sort(allMessageList, notificationDataComparator);
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for a list
Collections.sort(list, Collections.reverseOrder());
for an array
Arrays.sort(array, Collections.reverseOrder());
3 Comments
Dixit Singla
int []array = {2,4,3,6,8,7}; Arrays.sort(array, Collections.reverseOrder()); is giving me an error! Error is: "The method sort(int[]) in the type Arrays is not applicable for the arguments (int[], Comparator<Object>)"
Ornithopter
int is not an Object. Try use Integer[] instead.
Ornithopter
int is a primary type while Integer is not. That's why Integer has methods like parse, toString, etc.
You can use this:
Arrays.sort(data, Collections.reverseOrder());
Collections.reverseOrder() returns a Comparator using the inverse natural order. You can get an inverted version of your own comparator using Collections.reverseOrder(myComparator).
1 Comment
Pascal Thivent
The OP wants to sort an array.
Collections.sort() takes a List as input parameter, not an array.an alternative could be (for numbers!!!)
- multiply the Array by -1
- sort
- multiply once again with -1
Literally spoken:
array = -Arrays.sort(-array)
5 Comments
hackjutsu
This method is actually creative if we are sorting numbers, even though it is not generic and could cause problems for overflow...
Halil Oymacı
This is very good answer for primitive types. You are genius.
Andreas
Except that it'll fail for
Integer.MIN_VALUE (or whichever primitive is used). Would be better to sort(), then reverse(), but you'll have to do the reversing yourself, since they didn't add Arrays.reverse() implementations.
Line
@Halil İbrahim Oymacı: -array syntax doesn't work for me: "bad operand type int[] for unary operator '-'"
Halil Oymacı
@line You must multiple -1 to array. Above code is pseudo code. You can multiple -1 to array in a for loop then call Array.sort() method, lastly you multiple -1 to array again.
without explicit comparator:
Collections.sort(list, Collections.reverseOrder());
with explicit comparator:
Collections.sort(list, Collections.reverseOrder(new Comparator()));
Comments
It's not directly possible to reverse sort an array of primitives (i.e., int[] arr = {1, 2, 3};) using Arrays.sort() and Collections.reverseOrder() because those methods require reference types (Integer) instead of primitive types (int).
However, we can use Java 8 Stream to first box the array to sort in reverse order:
// an array of ints
int[] arr = {1, 2, 3, 4, 5, 6};
// an array of reverse sorted ints
int[] arrDesc = Arrays.stream(arr).boxed()
.sorted(Collections.reverseOrder())
.mapToInt(Integer::intValue)
.toArray();
System.out.println(Arrays.toString(arrDesc)); // outputs [6, 5, 4, 3, 2, 1]
3 Comments
Owen
I'm assuming the time complexity is still O(nlgn) since streaming the values and mapping them are done on the same "level" (meaning the time complexity of this whole code is something like (n + nlgn + n)? But please correct me if I'm wrong.
JBoothUA
this was great. thanks for your help, but i hate java now lol
KNU
this was most imp observation no one made. reverse sorting only possible in Integer [] freecodecamp.org/news/…
First you need to sort your array using:
Collections.sort(myArray);
Then you need to reverse the order from ascending to descending using:
Collections.reverse(myArray);
1 Comment
KNU
for the reverse()
int [] myArray wont workJava 8:
Arrays.sort(list, comparator.reversed());
Update:
reversed() reverses the specified comparator. Usually, comparators order ascending, so this changes the order to descending.
1 Comment
Ruslan Skaldin
It's work perfectly with Objects but not with primitives. For sort primitive int, you should sort in ASC order and then reverse the answer.
For array which contains elements of primitives if there is org.apache.commons.lang(3) at disposal easy way to reverse array (after sorting it) is to use:
ArrayUtils.reverse(array);
3 Comments
Betlista
Why to sort it first in ascending order and then use external library to revert this order, when it can be done in one step?
Josip Maslac
And that one step being?
Josip Maslac
Yes but (as stated in the comments to those answers) that doesn't work for primitives which my answer address. Ofcourse my answer is certainly not the optimal one but I found it to meet the criteria of being "easy" which the original author emphasized - ie.
Arrays.sort(primitives); ArrayUtils.reverse(primitives);When an array is a type of Integer class then you can use below:
Integer[] arr = {7, 10, 4, 3, 20, 15};
Arrays.sort(arr, Collections.reverseOrder());
When an array is a type of int data type then you can use below:
int[] arr = {7, 10, 4, 3, 20, 15};
int[] reverseArr = IntStream.rangeClosed(1, arr.length).map(i -> arr[arr.length-i]).toArray();
1 Comment
Raj Rajeshwar Singh Rathore
This just reverses the array. The question is to SORT the array in DESCENDING order.
For 2D arrays to sort in descending order you can just flip the positions of the parameters
int[][] array= {
{1, 5},
{13, 1},
{12, 100},
{12, 85}
};
Arrays.sort(array, (a, b) -> Integer.compare(a[1], b[1])); // for ascending order
Arrays.sort(array, (b, a) -> Integer.compare(a[1], b[1])); // for descending order
Output for descending
12, 100
12, 85
1, 5
13, 1
1 Comment
Carl Winbäck
Clean and neat solution, IMHO.
I don't know what your use case was, however in addition to other answers here another (lazy) option is to still sort in ascending order as you indicate but then iterate in reverse order instead.
Comments
For discussions above, here is an easy example to sort the primitive arrays in descending order.
import java.util.Arrays;
public class Main {
public static void main(String[] args) {
int[] nums = { 5, 4, 1, 2, 9, 7, 3, 8, 6, 0 };
Arrays.sort(nums);
// reverse the array, just like dumping the array!
// swap(1st, 1st-last) <= 1st: 0, 1st-last: nums.length - 1
// swap(2nd, 2nd-last) <= 2nd: i++, 2nd-last: j--
// swap(3rd, 3rd-last) <= 3rd: i++, 3rd-last: j--
//
for (int i = 0, j = nums.length - 1, tmp; i < j; i++, j--) {
tmp = nums[i];
nums[i] = nums[j];
nums[j] = tmp;
}
// dump the array (for Java 4/5/6/7/8/9)
for (int i = 0; i < nums.length; i++) {
System.out.println("nums[" + i + "] = " + nums[i]);
}
}
}
Output:
nums[0] = 9
nums[1] = 8
nums[2] = 7
nums[3] = 6
nums[4] = 5
nums[5] = 4
nums[6] = 3
nums[7] = 2
nums[8] = 1
nums[9] = 0
Comments
Another solution is that if you're making use of the Comparable interface you can switch the output values which you had specified in your compareTo(Object bCompared).
For Example :
public int compareTo(freq arg0)
{
int ret=0;
if(this.magnitude>arg0.magnitude)
ret= 1;
else if (this.magnitude==arg0.magnitude)
ret= 0;
else if (this.magnitude<arg0.magnitude)
ret= -1;
return ret;
}
Where magnitude is an attribute with datatype double in my program. This was sorting my defined class freq in reverse order by it's magnitude. So in order to correct that, you switch the values returned by the < and >. This gives you the following :
public int compareTo(freq arg0)
{
int ret=0;
if(this.magnitude>arg0.magnitude)
ret= -1;
else if (this.magnitude==arg0.magnitude)
ret= 0;
else if (this.magnitude<arg0.magnitude)
ret= 1;
return ret;
}
To make use of this compareTo, we simply call Arrays.sort(mFreq) which will give you the sorted array freq [] mFreq.
The beauty (in my opinion) of this solution is that it can be used to sort user defined classes, and even more than that sort them by a specific attribute. If implementation of a Comparable interface sounds daunting to you, I'd encourage you not to think that way, it actually isn't. This link on how to implement comparable made things much easier for me. Hoping persons can make use of this solution, and that your joy will even be comparable to mine.
Comments
Adding my answer in here for a couple of different scenarios For an Array
Arrays.sort(a, Comparator.reverseOrder());
FWIW Lists
Lists.reverse(a);
Any and all Collections
Collections.reverse(a);
Comments
Arrays.sort(nums, Collections.reverseOrder());
But Arrays.sort() will not work with primitive objects like int[]. For them it will throw,
error: no suitable method found for sort(int[],Comparator)
Arrays.sort() will work with primitive objects only in increasing order.
Better to convert into a collection and then sort
Collections.sort(Arrays.asList(nums), Collections.reverseOrder())
Comments
You could use stream operations (Collections.stream()) with Comparator.reverseOrder().
For example, say you have this collection:
List<String> items = new ArrayList<>();
items.add("item01");
items.add("item02");
items.add("item03");
items.add("item04");
items.add("item04");
To print the items in their "natural" order you could use the sorted() method (or leave it out and get the same result):
items.stream()
.sorted()
.forEach(item -> System.out.println(item));
Or to print them in descending (reverse) order, you could use the sorted method that takes a Comparator and reverse the order:
items.stream()
.sorted(Comparator.reverseOrder())
.forEach(item -> System.out.println(item));
Note this requires the collection to have implemented Comparable (as do Integer, String, etc.).
Comments
There is a lot of mess going on here - people suggest solutions for non-primitive values, try to implement some sorting algos from the ground, give solutions involving additional libraries, showing off some hacky ones etc. The answer to the original question is 50/50. For those who just want to copy/paste:
// our initial int[] array containing primitives
int[] arrOfPrimitives = new int[]{1,2,3,4,5,6};
// we have to convert it into array of Objects, using java's boxing
Integer[] arrOfObjects = new Integer[arrOfPrimitives.length];
for (int i = 0; i < arrOfPrimitives.length; i++)
arrOfObjects[i] = new Integer(arrOfPrimitives[i]);
// now when we have an array of Objects we can use that nice built-in method
Arrays.sort(arrOfObjects, Collections.reverseOrder());
arrOfObjects is {6,5,4,3,2,1} now. If you have an array of something other than ints - use the corresponding object instead of Integer.
1 Comment
Positive Navid
I think this is the easiest way to sort a primitive array in reverse order.
Simple method to sort an int array descending:
private static int[] descendingArray(int[] array) {
Arrays.sort(array);
int[] descArray = new int[array.length];
for(int i=0; i<array.length; i++) {
descArray[i] = array[(array.length-1)-i];
}
return descArray;
}
Comments
NOTE: this is a N log N time complexity but easier to read through and understand how to perform sort in reverse.
credits to Ken for suggestion of this solution.
// this func sorts in n log n time complexity
public void sort_reverse(int[] arr) {
// 1. sort the arr in asc order
Arrays.sort(arr);
// 2. now sort all values in descending order
for (int i = 0, j = arr.length - 1; i < arr.length / 2;i++) {
int tmp = arr[i];
arr[i] = arr[j];
arr[j] = tmp;
j--;
}
}
Comments
I know that this is a quite old thread, but here is an updated version for Integers and Java 8:
Arrays.sort(array, (o1, o2) -> o2 - o1);
Note that it is "o1 - o2" for the normal ascending order (or Comparator.comparingInt()).
This also works for any other kinds of Objects. Say:
Arrays.sort(array, (o1, o2) -> o2.getValue() - o1.getValue());
1 Comment
kimbaudi
This only works for reference type arrays, not arrays of primitive types.
This worked for me:
package doublearraysort;
import java.util.Arrays;
import java.util.Collections;
public class Gpa {
public static void main(String[] args) {
// initializing unsorted double array
Double[] dArr = new Double[] {
new Double(3.2),
new Double(1.2),
new Double(4.7),
new Double(3.3),
new Double(4.6),
};
// print all the elements available in list
for (double number : dArr) {
System.out.println("GPA = " + number);
}
// sorting the array
Arrays.sort(dArr, Collections.reverseOrder());
// print all the elements available in list again
System.out.println("The sorted GPA Scores are:");
for (double number : dArr) {
System.out.println("GPA = " + number);
}
}
}
Output:
GPA = 3.2
GPA = 1.2
GPA = 4.7
GPA = 3.3
GPA = 4.6
The sorted GPA Scores are:
GPA = 4.7
GPA = 4.6
GPA = 3.3
GPA = 3.2
GPA = 1.2
Comments
public double[] sortArrayAlgorithm(double[] array) { //sort in descending order
for (int i = 0; i < array.length; i++) {
for (int j = 0; j < array.length; j++) {
if (array[i] >= array[j]) {
double x = array[i];
array[i] = array[j];
array[j] = x;
}
}
}
return array;
}
just use this method to sort an array of type double in descending order, you can use it to sort arrays of any other types(like int, float, and etc) just by changing the "return type", the "argument type" and the variable "x" type to the corresponding type. you can also change ">=" to "<=" in the if condition to make the order ascending.
Comments
Another way with Comparator
import java.util.Arrays;
import java.util.Comparator;
...
Integer[] aInt = {6,2,3,4,1,5,7,8,9,10};
Arrays.sort(aInt, Comparator.reverseOrder() );
Comments
It's good sometimes we practice over an example, here is a full one:
sortdesc.java
import java.util.Arrays;
import java.util.Collections;
class sortdesc{
public static void main(String[] args){
// int Array
Integer[] intArray=new Integer[]{
new Integer(15),
new Integer(9),
new Integer(16),
new Integer(2),
new Integer(30)};
// Sorting int Array in descending order
Arrays.sort(intArray,Collections.reverseOrder());
// Displaying elements of int Array
System.out.println("Int Array Elements in reverse order:");
for(int i=0;i<intArray.length;i++)
System.out.println(intArray[i]);
// String Array
String[] stringArray=new String[]{"FF","PP","AA","OO","DD"};
// Sorting String Array in descending order
Arrays.sort(stringArray,Collections.reverseOrder());
// Displaying elements of String Array
System.out.println("String Array Elements in reverse order:");
for(int i=0;i<stringArray.length;i++)
System.out.println(stringArray[i]);}}
compiling it...
javac sortdec.java
calling it...
java sortdesc
OUTPUT
Int Array Elements in reverse order:
30
16
15
9
2
String Array Elements in reverse order:
PP
OO
FF
DD
AA
If you want to try an alphanumeric array...
//replace this line:
String[] stringArray=new String[]{"FF","PP","AA","OO","DD"};
//with this:
String[] stringArray=new String[]{"10FF","20AA","50AA"};
you gonna get the OUTPUT as follow:
50AA
20AA
10FF
Comments
There is a way that might be a little bit longer, but it works fine. This is a method to sort an int array descendingly.
Hope that this will help someone ,,, some day:
public static int[] sortArray (int[] array) {
int [] sortedArray = new int[array.length];
for (int i = 0; i < sortedArray.length; i++) {
sortedArray[i] = array[i];
}
boolean flag = true;
int temp;
while (flag) {
flag = false;
for (int i = 0; i < sortedArray.length - 1; i++) {
if(sortedArray[i] < sortedArray[i+1]) {
temp = sortedArray[i];
sortedArray[i] = sortedArray[i+1];
sortedArray[i+1] = temp;
flag = true;
}
}
}
return sortedArray;
}
Comments
I had the below working solution
public static int[] sortArrayDesc(int[] intArray){
Arrays.sort(intArray); //sort intArray in Asc order
int[] sortedArray = new int[intArray.length]; //this array will hold the sorted values
int indexSortedArray = 0;
for(int i=intArray.length-1 ; i >= 0 ; i--){ //insert to sortedArray in reverse order
sortedArray[indexSortedArray ++] = intArray [i];
}
return sortedArray;
}
Comments
This is applicable for primitive types examples for integers. First is to sort the array into descending order then loop through the contents but start the index into the last index of the sorted array.
int[] reversedArr = new int[0];
int[] arrNum = {1, 3, 4, 2, 5};
Arrays.sort(arrNum);
int j=0;
for(int i = (arrNum.length - 1); i >= 0; i-- ) {
reversedArr[j] = arrNum[i];
j++;
}
System.out.println(Arrays.toString(reversedArr));
Comments
Unfortunatley it's quite complicated to sort in desc. order.
It would be good to have just overloaded method like Arrays.sort(arr, reverseOrder())
For now I see the following option:
int[] sortedArr = Arrays.stream(arr)
.boxed()
.sorted(Collections.reverseOrder())
.mapToInt(Integer::intValue)
.toArray();
Comments
Here is how I sorted a primitive type int array.
int[] intArr = new int[] {9,4,1,7};
Arrays.sort(nums);
Collections.reverse(Arrays.asList(nums));
Result:
[1, 4, 7, 9]
1 Comment
user20072008
You just sorted this one. It didnt reverse.