问题
I am trying to reverse an int array in Java.
This method does not reverse the array.
for(int i = 0; i < validData.length; i++)
{
int temp = validData[i];
validData[i] = validData[validData.length - i - 1];
validData[validData.length - i - 1] = temp;
}
What is wrong with it?
回答1:
To reverse an int array, you swap items up until you reach the midpoint, like this:
for(int i = 0; i < validData.length / 2; i++)
{
int temp = validData[i];
validData[i] = validData[validData.length - i - 1];
validData[validData.length - i - 1] = temp;
}
The way you are doing it, you swap each element twice, so the result is the same as the initial list.
回答2:
With Commons.Lang, you could simply use
ArrayUtils.reverse(int[] array)
Most of the time, it's quicker and more bug-safe to stick with easily available libraries already unit-tested and user-tested when they take care of your problem.
回答3:
public class ArrayHandle {
public static Object[] reverse(Object[] arr) {
List<Object> list = Arrays.asList(arr);
Collections.reverse(list);
return list.toArray();
}
}
回答4:
I think it's a little bit easier to follow the logic of the algorithm if you declare explicit variables to keep track of the indices that you're swapping at each iteration of the loop.
public static void reverse(int[] data) {
for (int left = 0, right = data.length - 1; left < right; left++, right--) {
// swap the values at the left and right indices
int temp = data[left];
data[left] = data[right];
data[right] = temp;
}
}
I also think it's more readable to do this in a while loop.
public static void reverse(int[] data) {
int left = 0;
int right = data.length - 1;
while( left < right ) {
// swap the values at the left and right indices
int temp = data[left];
data[left] = data[right];
data[right] = temp;
// move the left and right index pointers in toward the center
left++;
right--;
}
}
回答5:
Collections.reverse(Arrays.asList(yourArray));
java.util.Collections.reverse() can reverse java.util.Lists and java.util.Arrays.asList() returns a list that wraps the the specific array you pass to it, therefore yourArray is reversed after the invocation of Collections.reverse().
The cost is just the creation of one List-object and no additional libraries are required.
A similar solution has been presented in the answer of Tarik and their commentors, but I think this answer would be more concise and more easily parsable.
回答6:
There are already a lot of answers here, mostly focused on modifying the array in-place. But for the sake of completeness, here is another approach using Java streams to preserve the original array and create a new reversed array:
int[] a = {8, 6, 7, 5, 3, 0, 9};
int[] b = IntStream.rangeClosed(1, a.length).map(i -> a[a.length-i]).toArray();
回答7:
With Guava:
Collections.reverse(Ints.asList(array));
回答8:
Simple for loop!
for (int start = 0, end = array.length - 1; start <= end; start++, end--) {
int aux = array[start];
array[start]=array[end];
array[end]=aux;
}
回答9:
This will help you
int a[] = {1,2,3,4,5};
for (int k = 0; k < a.length/2; k++) {
int temp = a[k];
a[k] = a[a.length-(1+k)];
a[a.length-(1+k)] = temp;
}
回答10:
for(int i=validData.length-1; i>=0; i--){
System.out.println(validData[i]);
}
回答11:
In case of Java 8 we can also use streams to reverse the integer array as:
int[] sample = new int[]{1,2,3,4,5};
int size = sample.length;
int[] reverseSample = IntStream.range(0,size).map(i -> sample[size-i-1])
.toArray(); //Output: [5, 4, 3, 2, 1]
回答12:
This is how I would personally solve it. The reason behind creating the parametrized method is to allow any array to be sorted... not just your integers.
I hope you glean something from it.
@Test
public void reverseTest(){
Integer[] ints = { 1, 2, 3, 4 };
Integer[] reversedInts = reverse(ints);
assert ints[0].equals(reversedInts[3]);
assert ints[1].equals(reversedInts[2]);
assert ints[2].equals(reversedInts[1]);
assert ints[3].equals(reversedInts[0]);
reverseInPlace(reversedInts);
assert ints[0].equals(reversedInts[0]);
}
@SuppressWarnings("unchecked")
private static <T> T[] reverse(T[] array) {
if (array == null) {
return (T[]) new ArrayList<T>().toArray();
}
List<T> copyOfArray = Arrays.asList(Arrays.copyOf(array, array.length));
Collections.reverse(copyOfArray);
return copyOfArray.toArray(array);
}
private static <T> T[] reverseInPlace(T[] array) {
if(array == null) {
// didn't want two unchecked suppressions
return reverse(array);
}
Collections.reverse(Arrays.asList(array));
return array;
}
回答13:
Your program will work for only length = 0, 1.
You can try :
int i = 0, j = validData.length-1 ;
while(i < j)
{
swap(validData, i++, j--); // code for swap not shown, but easy enough
}
回答14:
If working with data that is more primitive (i.e. char, byte, int, etc) then you can do some fun XOR operations.
public static void reverseArray4(int[] array) {
int len = array.length;
for (int i = 0; i < len/2; i++) {
array[i] = array[i] ^ array[len - i - 1];
array[len - i - 1] = array[i] ^ array[len - i - 1];
array[i] = array[i] ^ array[len - i - 1];
}
}
回答15:
It is most efficient to simply iterate the array backwards.
I'm not sure if Aaron's solution does this vi this call Collections.reverse(list); Does anyone know?
回答16:
public void getDSCSort(int[] data){
for (int left = 0, right = data.length - 1; left < right; left++, right--){
// swap the values at the left and right indices
int temp = data[left];
data[left] = data[right];
data[right] = temp;
}
}
回答17:
public void display(){
String x[]=new String [5];
for(int i = 4 ; i > = 0 ; i-- ){//runs backwards
//i is the nums running backwards therefore its printing from
//highest element to the lowest(ie the back of the array to the front) as i decrements
System.out.println(x[i]);
}
}
回答18:
Wouldn't doing it this way be much more unlikely for mistakes?
int[] intArray = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10};
int[] temp = new int[intArray.length];
for(int i = intArray.length - 1; i > -1; i --){
temp[intArray.length - i -1] = intArray[i];
}
intArray = temp;
回答19:
Solution with o(n) time complexity and o(1) space complexity.
void reverse(int[] array) {
int start = 0;
int end = array.length - 1;
while (start < end) {
int temp = array[start];
array[start] = array[end];
array[end] = temp;
start++;
end--;
}
}
回答20:
below is the complete program to run in your machine.
public class ReverseArray {
public static void main(String[] args) {
int arr[] = new int[] { 10,20,30,50,70 };
System.out.println("reversing an array:");
for(int i = 0; i < arr.length / 2; i++){
int temp = arr[i];
arr[i] = arr[arr.length - i - 1];
arr[arr.length - i - 1] = temp;
}
for (int i = 0; i < arr.length; i++) {
System.out.println(arr[i]);
}
}
}
For programs on matrix using arrays this will be the good source.Go through the link.
回答21:
Using the XOR solution to avoid the temp variable your code should look like
for(int i = 0; i < validData.length; i++){
validData[i] = validData[i] ^ validData[validData.length - i - 1];
validData[validData.length - i - 1] = validData[i] ^ validData[validData.length - i - 1];
validData[i] = validData[i] ^ validData[validData.length - i - 1];
}
See this link for a better explanation:
http://betterexplained.com/articles/swap-two-variables-using-xor/
回答22:
private static int[] reverse(int[] array){
int[] reversedArray = new int[array.length];
for(int i = 0; i < array.length; i++){
reversedArray[i] = array[array.length - i - 1];
}
return reversedArray;
}
回答23:
Here is a simple implementation, to reverse array of any type, plus full/partial support.
import java.util.logging.Logger;
public final class ArrayReverser {
private static final Logger LOGGER = Logger.getLogger(ArrayReverser.class.getName());
private ArrayReverser () {
}
public static <T> void reverse(T[] seed) {
reverse(seed, 0, seed.length);
}
public static <T> void reverse(T[] seed, int startIndexInclusive, int endIndexExclusive) {
if (seed == null || seed.length == 0) {
LOGGER.warning("Nothing to rotate");
}
int start = startIndexInclusive < 0 ? 0 : startIndexInclusive;
int end = Math.min(seed.length, endIndexExclusive) - 1;
while (start < end) {
swap(seed, start, end);
start++;
end--;
}
}
private static <T> void swap(T[] seed, int start, int end) {
T temp = seed[start];
seed[start] = seed[end];
seed[end] = temp;
}
}
Here is the corresponding Unit Test
import static org.hamcrest.CoreMatchers.is;
import static org.junit.Assert.assertThat;
import org.junit.Before;
import org.junit.Test;
public class ArrayReverserTest {
private Integer[] seed;
@Before
public void doBeforeEachTestCase() {
this.seed = new Integer[]{1,2,3,4,5,6,7,8};
}
@Test
public void wholeArrayReverse() {
ArrayReverser.<Integer>reverse(seed);
assertThat(seed[0], is(8));
}
@Test
public void partialArrayReverse() {
ArrayReverser.<Integer>reverse(seed, 1, 5);
assertThat(seed[1], is(5));
}
}
回答24:
Here is what I've come up with:
// solution 1 - boiler plated
Integer[] original = {100, 200, 300, 400};
Integer[] reverse = new Integer[original.length];
int lastIdx = original.length -1;
int startIdx = 0;
for (int endIdx = lastIdx; endIdx >= 0; endIdx--, startIdx++)
reverse[startIdx] = original[endIdx];
System.out.printf("reverse form: %s", Arrays.toString(reverse));
// solution 2 - abstracted
// convert to list then use Collections static reverse()
List<Integer> l = Arrays.asList(original);
Collections.reverse(l);
System.out.printf("reverse form: %s", l);
回答25:
There are two ways to have a solution for the problem:
1. Reverse an array in space.
Step 1. Swap the elements at the start and the end index.
Step 2. Increment the start index decrement the end index.
Step 3. Iterate Step 1 and Step 2 till start index < end index
For this, the time complexity will be O(n) and the space complexity will be O(1)
Sample code for reversing an array in space is like:
public static int[] reverseAnArrayInSpace(int[] array) {
int startIndex = 0;
int endIndex = array.length - 1;
while(startIndex < endIndex) {
int temp = array[endIndex];
array[endIndex] = array[startIndex];
array[startIndex] = temp;
startIndex++;
endIndex--;
}
return array;
}
2. Reverse an array using an auxiliary array.
Step 1. Create a new array of size equal to the given array.
Step 2. Insert elements to the new array starting from the start index, from the given array starting from end index.
For this, the time complexity will be O(n) and the space complexity will be O(n)
Sample code for reversing an array with auxiliary array is like:
public static int[] reverseAnArrayWithAuxiliaryArray(int[] array) {
int[] reversedArray = new int[array.length];
for(int index = 0; index < array.length; index++) {
reversedArray[index] = array[array.length - index -1];
}
return reversedArray;
}
Also, we can use the Collections API from Java to do this.
The Collections API internally uses the same reverse in space approach.
Sample code for using the Collections API is like:
public static Integer[] reverseAnArrayWithCollections(Integer[] array) {
List<Integer> arrayList = Arrays.asList(array);
Collections.reverse(arrayList);
return arrayList.toArray(array);
}
回答26:
static int[] reverseArray(int[] a) {
int ret[] = new int[a.length];
for(int i=0, j=a.length-1; i<a.length && j>=0; i++, j--)
ret[i] = a[j];
return ret;
}
回答27:
2 ways to reverse an Array .
Using For loop and swap the elements till the mid point with time complexity of O(n/2).
private static void reverseArray() { int[] array = new int[] { 1, 2, 3, 4, 5, 6 }; for (int i = 0; i < array.length / 2; i++) { int temp = array[i]; int index = array.length - i - 1; array[i] = array[index]; array[index] = temp; } System.out.println(Arrays.toString(array));}
Using built in function (Collections.reverse())
private static void reverseArrayUsingBuiltInFun() { int[] array = new int[] { 1, 2, 3, 4, 5, 6 }; Collections.reverse(Ints.asList(array)); System.out.println(Arrays.toString(array));}
Output : [6, 5, 4, 3, 2, 1]
回答28:
public static int[] reverse(int[] array) {
int j = array.length-1;
// swap the values at the left and right indices //////
for(int i=0; i<=j; i++)
{
int temp = array[i];
array[i] = array[j];
array[j] = temp;
j--;
}
return array;
}
public static void main(String []args){
int[] data = {1,2,3,4,5,6,7,8,9};
reverse(data);
}
回答29:
public static void main(String args[]) {
int [] arr = {10, 20, 30, 40, 50};
reverse(arr, arr.length);
}
private static void reverse(int[] arr, int length) {
for(int i=length;i>0;i--) {
System.out.println(arr[i-1]);
}
}
回答30:
public static void main (String args[]){
//create array
String[] stuff ={"eggs","lasers","hats","pie","apples"};
//print out array
for(String x :stuff)
System.out.printf("%s ", x);
System.out.println();
//print out array in reverse order
for(int i=stuff.length-1; i >= 0; i--)
System.out.printf("%s ",stuff[i]);
}
来源:https://stackoverflow.com/questions/2137755/how-do-i-reverse-an-int-array-in-java