lsming Since the question only asks the number of bribes, there's no need to really do a sorting, nor element swapping, nor "bubbling up" an element. All you need to do is to count the number of people who overtake a person.
void calc(vector<int> q) { int ans = 0; for (int i = q.size() - 1; i >= 0; i--) { if (q[i] - (i + 1) > 2) { cout << "Too chaotic" << endl; return; } for (int j = max(0, q[i] - 2); j < i; j++) if (q[j] > q[i]) ans++; } cout << ans << endl; }
amchap06 No need to swap values, no need to loop backwards, no need to loop more than once. Just loop through each person in the queue and check two things: 1. Has this person moved more than two positions forward? 2. How many times has this person been bribed?
In Python3:
def minimumBribes(Q): # # initialize the number of moves moves = 0 # # decrease Q by 1 to make index-matching more intuitive # so that our values go from 0 to N-1, just like our # indices. (Not necessary but makes it easier to # understand.) Q = [P-1 for P in Q] # # Loop through each person (P) in the queue (Q) for i,P in enumerate(Q): # i is the current position of P, while P is the # original position of P. # # First check if any P is more than two ahead of # its original position if P - i > 2: print("Too chaotic") return # # From here on out, we don't care if P has moved # forwards, it is better to count how many times # P has RECEIVED a bribe, by looking at who is # ahead of P. P's original position is the value # of P. # Anyone who bribed P cannot get to higher than # one position in front if P's original position, # so we need to look from one position in front # of P's original position to one in front of P's # current position, and see how many of those # positions in Q contain a number large than P. # In other words we will look from P-1 to i-1, # which in Python is range(P-1,i-1+1), or simply # range(P-1,i). To make sure we don't try an # index less than zero, replace P-1 with # max(P-1,0) for j in range(max(P-1,0),i): if Q[j] > P: moves += 1 print(moves)
xenialxerus Two points to bear in mind while solving this problem:
- A person can bribe the one who is sitting just in front of him. The opposite is not possible.
- A person can bribe atmost 2 different persons.
Keeping this in mind, let's have a look at testcase-1.
First case:
Current position : 5 1 2 3 7 8 6 4 Initial position : 1 2 3 4 5 6 7 8
In the first test, the person-5 has occupied 1st seat. That means he has to bribe 4 persons in front of him to reach on the 1st seat So he violated the second rule here. So that answer is "Too chaotic" without further speculation.
Second case:
Current position : 1 2 5 3 7 8 6 4 Initial position : 1 2 3 4 5 6 7 8
So how did person-4 occupy at position 8? As per the rules, it's not possible for person-4 to bribe persons who are sitting behind him. Instead person 5, 6, 7 & 8 bribed person-4 as he is sitting infront of them. Here is the trasition from initial position to the current position.
1 2 3 4 5 6 7 8 : 0 swap (initial) 1 2 3 5 4 6 7 8 : 1 swap (5 and 4) 1 2 3 5 6 4 7 8 : 1 swap (6 and 4) 1 2 3 5 6 7 4 8 : 1 swap (7 and 4) 1 2 3 5 6 7 8 4 : 1 swap (8 and 4) 1 2 5 3 6 7 8 4 : 1 swap (5 and 3) 1 2 5 3 7 6 8 4 : 1 swap (7 and 6) 1 2 5 3 7 8 6 4 : 1 swap (8 and 6)
Obviously no person violated the second rule here. Hence the output is minimum number of swaps 7.
faogustavo Can some one help me? All tests are failing with me but i think i'm making everything allright. Here is my code
let test = Int(readLine()!)! extern: for i in 1...test { let itemCount = Int(readLine()!)! var items = readLine()!.characters.split(" ").map{Int(String($0))!} var swaps = 0 for j in 0 ..< items.count { let myPos = items[j] var dif = myPos - (j + 1) if dif < 0 { dif *= -1 } if (dif > 2) { print("Too chaotic") continue extern } } var it = 0 // 0 = pos 1 swapsLoop: while it < itemCount { for k in 0 ..< itemCount { if it + 1 == items[it] { it += 1 continue swapsLoop } if items[k] == it + 1 { var aux = items[k] items[k] = items[k - 1] items[k - 1] = aux swaps += 1 } } } print(swaps) }
I bought one test case that is this:
2 8 5 1 2 3 7 8 6 4 8 1 2 5 3 7 8 6 4
And wait this response:
Too chaotic 7
But the number 4 is too away of his place(both cases). He is 4 steps. It's more than 2, so it prints Too chaotic and i got the wrong anser. Can someone help me?
prog149 I saw this following code by Isming , so can someone explain the logic behind max(0, q[i] - 2) in nested for loop?
void calc(vector<int> q) { int ans = 0; for (int i = q.size() - 1; i >= 0; i--) { if (q[i] - (i + 1) > 2) { cout << "Too chaotic" << endl; return; } for (int j = max(0, q[i] - 2); j < i; j++) if (q[j] > q[i]) ans++; } cout << ans << endl; }
t_serban88 Who would have thought that knowing bubble sort would ever come in handy...
kangnahua Since there are usually no Python codes for these exercises, I would post mine in case other beginners don't know how to read Java or C++. New Year Chaos, like others said, can be solved by using the bubble sort algorithm. It seems that one can also use merge sort. Here's a Python bubble sort code for your reference:
def NewYearChaos(queue): lastIndex = len(queue) - 1 swaps = 0 swaped = False # check if the queue is too chaotic for i, v in enumerate(queue): if (v - 1) - i > 2: return "Too chaotic" # bubble sorting to find the answer for i in xrange(0, lastIndex): for j in xrange(0, lastIndex): comps += 1 if queue[j] > queue[j+1]: temp = queue[j] queue[j] = queue[j+1] queue[j+1] = temp swaps += 1 swaped = True if swaped: swaped = False else: break return swaps
Let me know if you have a faster or shorter solution!
Shafaet Your code is nice, I will add it in the editorial!
Btw, you can do swap in python in just one line
a,b=b,a
CompSocialSci For some reason comments are blocked from @Isming's excellent solution posting here.
This is a python 3 translation of his C++ code:
def minimumBribes(q): bribes = 0 for i in range(len(q)-1,-1,-1): if q[i] - (i + 1) > 2: print('Too chaotic') return for j in range(max(0, q[i] - 2),i): if q[j] > q[i]: bribes+=1 print(bribes)
mariogersbach There is a pretty simple solution using only a single for-loop.
// Complete the minimumBribes function below. void minimumBribes(vector<int> q) { int totalBribes = 0; int expectedFirst = 1; int expectedSecond = 2; int expectedThird = 3; for (unsigned int i = 0; i < q.size(); ++i) { if (q[i] == expectedFirst) { expectedFirst = expectedSecond; expectedSecond = expectedThird; ++expectedThird; } else if (q[i] == expectedSecond) { ++totalBribes; expectedSecond = expectedThird; ++expectedThird; } else if (q[i] == expectedThird) { totalBribes += 2; ++expectedThird; } else { cout << "Too chaotic" << endl; return; } } cout << totalBribes << endl; }
sv_piedpiper I got 22 score out of 40. 4 testcases (testcases 6 to 9) are failing. Error message says Terminated due to Timeout. Any way to make it faster..
static void minimumBribes(int[] q) { //if value at (index+1), index starts at zero, minus the index > 2, then it is // a chaotic situation for(int i=0;i<q.length;i++){ if((q[i] - (i+1)) > 2){ System.out.println("Too chaotic"); return; } } //now we just need to count number of Swaps int swaps=0; for(int i=0;i< q.length;i++){ for(int j=i+1;j<q.length;j++){ if(q[i] > q[j]){ int tmp=q[j]; q[j]=q[i]; q[i]=tmp; swaps++; } } } System.out.println(swaps); }
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