RodneyShag Simple solution with explanation
From my HackerRank solutions.
Our input provides us n values of x and p(x)
p(x) is a one-to-one function, so it has an inverse. We create the function representing the inverse of p(x), and represent it as an array: int [] p_inverse
We need to find a y where p(p(y)) = x. This equation can be rewritten as
y = p_inverse(p_inverse(x)), which is the version of the equation we use to calculate and print y.import java.util.Scanner; public class Solution { public static void main(String [] args) { /* Create function: p_inverse */ Scanner scan = new Scanner(System.in); int n = scan.nextInt(); int [] p_inverse = new int[n + 1]; for (int x = 1; x <= n; x++) { int px = scan.nextInt(); p_inverse[px] = x; } scan.close(); /* Calculate and print each y */ for (int x = 1; x <= n; x++) { int y = p_inverse[p_inverse[x]]; System.out.println(y); } } }
Let me know if you have any questions.
Neelaesh [deleted]
rudra_utpal Much more easy n sexy java Code . . .
import java.util.*; public class Solution { public static void main(String args[] ){ Scanner scan=new Scanner(System.in); int n=scan.nextInt(); HashMap<Integer,Integer> mp=new HashMap<Integer,Integer>(); for(int i=1;i<=n;i++) mp.put(scan.nextInt(),i); for(int i=1;i<=n;i++) System.out.println(mp.get(mp.get(i))); } }
japkeerat21 Don't know why this solution has been downvoted that many times.
mehul_choksi98 That's because the first code has complexity O(n) while the second code is having complexity O(n^2);
zurendra9 The complexity of above second one is also O(n), as in first loop it takes input and in second it gives output. Both loops are isolated.
mehul_choksi98 Didn't see that, my bad. Thanks for pointing that out.
tarabahadur_tha1 I think the second will have complexity of nlogn because we have loop running for n times and inside loop we have get method of map which at best takes logn time(if we use binary search).
lpere371 The time complexity to retrieve a value from a HashMap given a key is O(1).
widefin WOW
golgoth Maybe because "Self-praise is no recommendation."
And it is neither much more easy (fewer braces and indents) nor more sexy. Nothing that requires two nested for loops is sexy.
crisagazzola The for loops aren't nested though
kishynivas10 It was downvoted, because it didn't use the property of the given array.
rudra_utpal The Complexity is nlogn not n2
arun_pahilajani Loved it
abhayupadhyay complexity of retrieve any element from hashmap is o(1) but by this solution is downvoted so many time if someone have ans please tell me.
RodneyShag [deleted]
VictoryNicholas ArrayList<Integer> list = new ArrayList<Integer>(); int n = in.nextInt(); for(int i = 0; i < n; i++) list.add(in.nextInt()); for(int i = 1; i <= n; i++) System.out.println(list.indexOf(list.indexOf(i)+1)+1);
JDenman6 I didn't understand the question until I read rshaghoulian's restatement of it. So thanks to you, rshaghoulian! Once I understood it was basically a numerical cryptogram I came up with this Ruby code:
length, sequence = gets.strip.to_i, gets.strip.split.map(&:to_i) Decoder_ring = [] sequence.each_with_index do |x,i| Decoder_ring[x-1] = i+1 end def my_p_encode(n) Decoder_ring[n - 1] end (1..length).each{|n| p my_p_encode(my_p_encode(n)) }
sourav47 will u explain this code with my test cases.. 10 5 4 6 7 8 9 9 10 5 4
sivanikankipati Here in the problem statment given that each element in the sequence is distinct
BelieveInMagic Very Beautiful!
ashokharijan97 nice explain
kumaramijeet I think there is an error in the given code.
p(x) can be anything in [1,50]
consider this as input:
5
20 21 1 5 6
the output should be : 4 3
but the above code will not produce any output.
RodneyShag [deleted]kumaramijeet the first line contains an integer, 'n', denoting the number of elements in the sequence.
The second line contains 'n' space-separated integers denoting the respective values of p(1) , p(2) , ... p(n).
constraints:
1<=n<=50
1<=p(x)<=50 ; 1<= x <=n
suppose we input n=6, x will vary from 1 to n but p(x) can be anything from 1-50
RodneyShag The 1st 2 lines of the problem statement should answer your question.
"You are given a sequence of n integers, p(1), p(2),...,p(n). Each element in the sequence is distinct and satisfies 1 <= p(x) <= n". So your original input is actually invalid input.
Also, I spent some hackos downloading several sample inputs, and the input was always within 1 to n.
kalra_bonisha Below is a much easier solution:
static int[] permutationEquation(int[] p) {
int[] resultArr = new int[p.length]; for(int i=0; i<p.length; i++) { resultArr[p[p[p[i]-1]-1]-1] = p[i]; } return resultArr; }eduasinco Even easier:
int[] q = new int[p.length]; for(int i: p){ q[p[p[i-1]-1]-1] = i; } return q;
rahulrajpl For Python lovers ...in O(n) time
def permutationEquation(p): return [(p.index(p.index(i)+1)+1) for i in range(1, max(p)+1)]
skvit001 @rahulrajpl How is the runtime complexity O(n)? p.index(i) will alone take O(n), but in your solution p.index(i) is inside another p.index() which makes the runtime complexity to be O(n2). Further, (p.index(p.index(i)+1)+1) ie., O(n2) statement executes max(p) or n times which makes the overall complexity O(n3)
satyakibose98 Still the problem is not clear to me.
manojshukla1466 really impressive solution, I was doing it in O(n). thanks for the wonderful logic.
vishuatiet Nicely Done
pavankalyan_93 #include <iostream> using namespace std; int main() { int n; cin>>n; int p[n+1]; for(int i=1;i<=n;i++){ int k; cin>>k; p[k]=i; } for(int i=1;i<=n;i++)cout<<p[p[i]]<<endl; return 0; }
Throghar Very nice :) Different approach makes it much more easier.
Mine
using namespace std; int main() { int n; cin >> n; vector<int> a(n); for(int i=0;i<n;i++) { cin >> a[i]; } for(int i=1;i<=n;i++) { cout << find(a.begin(),a.end(),find(a.begin(),a.end(),i) - a.begin() +1) - a.begin() +1 << endl; } return 0;
manzar2525 [deleted]
manzar2525 Can you please explain your logic
Cypher713_net it's inversed equotation p(p(y)) = x... instead of maping the value on the index I map the index on given value... for exaplme the sample input0 p(p(y)) = 1 so I look which p index gave the value 1 which is index 3... now i know that p(y) = 3 so I look which index gave the value 3 which is index 2... and that's the y
manzar2525 Can you please explain your logic.
akanksha_kumari It was a good approach!!
rufus17 Wow, your approach doesn't require searching at all.
Cypher713_net [deleted]kg1020 Why this is not working? Any guess?
// Complete the permutationEquation function below. vector<int> permutationEquation(vector<int> p) { vector<int> q(p.size()); for(const auto& i:p){ q[i-1] = p[p[i-1]-1]; } return q; }
Coder_AMiT n = int(input().strip()) p = list(map(int,input().strip().split(' '))) for i in range(n): print(p.index(p.index(i+1)+1)+1) ''' Our task is :: For each x from 1 to n , print an integer denoting any valid y satisfying the equation p(p(y)) = x on a new line. Here p(y) means, the value at y index in list p. But the range of y goes from 1 to n, and range of python list goes from 0 to n-1. so make it balanced, we need to add 1 in each time in y to make it equal to python index. for example 3 2 3 1 Now, x goes from 1 to 3 (inclusive), but since the range goes from 0 to n-1, 1 needed to add here to balance it. when i = 0, x = i+1, you need to find that at which index 1 is coming in list p first_index = p.index(i+1) now, u need to find at which index the first_index is coming, but since , the index coming as output in above line is from 0 to n-1, 1 needed to add to balace it second_index = p.index(first_index+1) since this will also be 0 to n-1,, add 1 ans = second_index + 1 I have written a new code so u can understand how each line works ''' n = int(input().strip()) p = list(map(int,input().strip().split(' '))) for i in range(n): x = i+1 first_index = p.index(x) second_index = p.index(first_index + 1) ans = second_index + 1 print(ans)
delamath Nope, no hashmap is needed, and one can implement their own enumerate. Furthermore, the complexity can be O(n) instead of O(n^3) in index searching. :)
n = int(input()) + 1 prev = [0] * n i = 0 for x in map(int, input().split()): prev[x] = i = i + 1 print(*(prev[prev[i]] for i in range(1, n)), sep="\n")
Coder_AMiT thank u for nice code.. i am not good at knowing the complexity. but i am learning :)
alaniane You are still using a hashmap. map is just a builtin hashmap.
Coder_AMiT python map is something different. It applies the same function to all the iterables.
alaniane In that case the best you can do is O(N*M) since map has to O(N) to iterate all of the elements. However, looking at the code what map is actually doing is creating a hashtable for you. It returns an array of the elements with the function applied to it. That is basically a hashtable.
Coder_AMiT Thanks for the info :)
Dimple151997 Can u explain the code
Freak_1231 impressive.
Aximm Mine was very similar
n = int(input()) numbers = [int(num) for num in input().split()] for x in range(n): print(numbers.index(numbers.index(x + 1) + 1) + 1)
LeHarkunwar Did it exactly this way, you're not the only one
Coder_AMiT I am Glad to hear that.
alison_thaung Thanks for sharing! This is way simpler than my Python3 solution that nested loops
n = int(input().strip()) a = [int(temp_a) for temp_a in input().strip().split(' ')] for x in range(1, n+1): for num in range(len(a)): if x == a[num]: value = num + 1 for num in range(len(a)): if value == a[num]: print(num+1)
shtolcers Same here :D
n = int(input().strip()) p = [int(a) for a in input().strip().split(' ')] for i in range(1, n+1): print(p.index(p.index(i)+1)+1)
tyler_christian2 Python 2.7+ without all the crap you don't need:
n = int( raw_input() ) a = list( map( int, raw_input().split() ) ) for i in range(n): print( a.index( a.index(i + 1) + 1) + 1 )
cfshao_bjtu You co seems very simple and nice. However, I don't understand it. Could you please explain to me how you approached the problem ? I cannot think out a way without using for loop. I am new to python.
Thank you very much cfshao
cfshao_bjtu Hi Tyler, I just figured out how the list.index() works in Python. Never used it before. Thank you for sharing this usage and your solution with us.
I will conitue to find a solution without using a built-in function in case I am solving this problem in a job interview.
jjlearman Unfortunately this is an O(N^2) solution, since a.index() is O(N).
Dimple151997 can u explain the lAST LINE
Coder_AMiT n = int(input().strip()) p = list(map(int,input().strip().split(' '))) for i in range(n): print(p.index(p.index(i+1)+1)+1) ''' Our task is :: For each x from 1 to n , print an integer denoting any valid y satisfying the equation p(p(y)) = x on a new line. Here p(y) means, the value at y index in list p. But the range of y goes from 1 to n, and range of python list goes from 0 to n-1. so make it balanced, we need to add 1 in each time in y to make it equal to python index. for example 3 2 3 1 Now, x goes from 1 to 3 (inclusive), but since the range goes from 0 to n-1, 1 needed to add here to balance it. when i = 0, x = i+1, you need to find that at which index 1 is coming in list p first_index = p.index(i+1) now, u need to find at which index the first_index is coming, but since , the index coming as output in above line is from 0 to n-1, 1 needed to add to balace it second_index = p.index(first_index+1) since this will also be 0 to n-1,, add 1 ans = second_index + 1 I have written a new code so u can understand how each line works ''' n = int(input().strip()) p = list(map(int,input().strip().split(' '))) for i in range(n): x = i+1 first_index = p.index(x) second_index = p.index(first_index + 1) ans = second_index + 1 print(ans)
nvsr01 Thank you for the explanation.
Coder_AMiT You are welcome :)
thigwyd what is the triple equals sign?
Spankajsingh easy and simple solution
for(int x = 1; x <= n; x++){ for(int y = 1; y <= n; y++){ if(p[p[y]] == x) printf("%d\n",y); } }
rejwancse10 Good solution
madhu703 It is giving Runtive error for 4th test case .any suggestions?
Spankajsingh [deleted]Spankajsingh //This is the full solution. Got it.
#include <stdio.h> int main() { int n; scanf("%d",&n); int p[n+1]; for(int i = 1; i <= n; i++) scanf("%d",&p[i]); for(int x = 1; x <= n; x++){ for(int y = 1; y <= n; y++){ if(p[p[y]] == x) printf("%d\n",y); } } return 0; }
madhu703 Got it Thank you .
Spankajsingh [deleted]
sir_fariz does not it throw ArrayIndexOutOfBoundsException at p[n] ?
Spankajsingh i am taking the size of array is n+1 not n.
Rys23 My easy C solution
int main() { int n; scanf("%d", &n); int p; int v[51]; for(int i = 1; i <= n; i++) { scanf("%d", &p); v[p] = i; } for(int i = 1; i <= n; i++) { printf("%d\n", v[v[i]]); } return 0; }
ramkumarmichael can you explain me this solution... i didt understand the question
Rys23 it's inversed equotation p(p(y)) = x... instead of maping the value on the index I map the index on given value... for exaplme the sample input0 p(p(y)) = 1 so I look which p index gave the value 1 which is index 3... now i know that p(y) = 3 so I look which index gave the value 3 which is index 2... and that's the y
koushik1998 great logic bro
singh_surajkumar this is Simplest Logic ............ good job
ggmurali6 i can't understand explain the logic
daskunal C code
#include <stdio.h> #include <stdlib.h> int main() { int n; scanf("%d", &n); int* a = (int*) malloc(sizeof(int)*n); int* b = (int*) malloc(sizeof(int)*n); for (int i = 0; i < n; i++) { scanf("%d", a+i); b[a[i]-1] = i+1; } for (int i = 0; i < n; i++) printf("%d\n", b[b[i]-1]); return 0; }
koushik1998 pls explain ur logic
daskunal You are given a sequence of integers, p(1), p(2), ..., p(n) That means, the array name is p, and length is n.
Each element in the sequence is distinct and satisfies 1 <= p(x) <= n. That means, all the numbers between 1 and n inclusive, are members of p array, in random order.
Suppose x is a number between 1 and n. For each x where 1 <= x <= n, we have to find any integer y such that p(p(y)) = x.
What does that mean? Suppose the array p is [3, 1, 5, 2, 4] For x = 1, we have to find a y so that p(p(y)) = 1. We can see here that p(2) = 1 Therefore p(y) = 2 We can see, p(4) = 2. Therefore y = 4.
Similarly, for x = 2, we get p(4) = 2. That is, p(y) = 4 So y = 5.
How to do that in program? One way is that, we take another array q of same length q(z) = p(p(y)) = x
Take example of the above array. q array has five indices 1, 2, 3, 4, 5. In another way, we can tell, q array has five indices p(1), p(2), p(3), p(4), and p(5), as {1,2,3,4,5} = {p(1), p(2), p(3), p(4), p(5)}
If we write indices of an array along with value, and write them in any order, p array will be [1:3, 2:1, 3:5, 4:2, 5:4] Here we have written it in index:value format
q array will be [p(1):1, p(2):2, p(3):3, p(4):4, p(5):5]
So, here, q = [3:1, 1:2 , 5:3 , 2:4 , 4:5] If we write q array is sorted form, q = [2, 4, 1, 5, 3]
So, for every x index in p, p(p(y)) = x => q(x) = y.
In the actual program, +1 or -1 adjust ment in the line b[a[i]-1] = i+1; was required to adjust between 1-base concept and 0-base implementation of array.
kovab93 Using inverted p(x) in python:
n = int(raw_input()) p_temp = map(int, raw_input().split()) p = {v: k+1 for k, v in enumerate(p_temp)} for i in range(1, n+1): print p[p[i]]
sagarmalik following the pre generated boiler plate code structure
static int[] permutationEquation(int[] p) { int []sol=new int[p.length]; for(int i:p) sol[p[p[i-1]-1]-1]=i; return sol; }
yinqiankong this is exactly what I expected
multipletricks_1 My Solutions
Checkout my Latest Solution - HackerRank Solutions
Solution in C# -
using System; using System.Collections.Generic; using System.IO; using System.Linq; namespace Solution { class Solution { static void Main(string[] args) { /* Enter your code here. Read input from STDIN. Print output to STDOUT */ int t = Convert.ToInt32(Console.ReadLine()); string[] str = Console.ReadLine().Split(' '); int[] arr = Array.ConvertAll(str, Int32.Parse); for(int i=1;i<=t;i++) { int index1 = Array.IndexOf(arr, i)+1; int index2 = Array.IndexOf(arr, index1)+1; Console.WriteLine(index2); } } } }
Thank you, I hope this helps you to understand this problem clearly.
Sort 280 Discussions, By:
Please Login in order to post a comment