Python code which passes all the test done in O(n). I think it is clean and easy to understand.
def minimumBribes(q): bribes = 0 ori = [x for x in range(1,len(q)+1)] i = 0 while i < len(q): if ori[i] == q[i]: next elif q[i] == ori[i+1]: ori[i+1], ori[i] = ori[i], ori[i+1] bribes +=1 elif q[i] == ori[i+2]: ori[i+2], ori[i+1] = ori[i+1], ori[i+2] ori[i+1], ori[i] = ori[i], ori[i+1] bribes +=2 else: print("Too chaotic") return i+=1 print(bribes) return
c# code {int bribe=0; List l =new List();
l.AddRange(q); l.Sort(); int index=0,lindex=0; while(index<q.Count){ if(q[index]!=l[lindex]){ int e=l.IndexOf(q[index]); e-=lindex; if(e>=3) { Console.WriteLine("Too chaotic"); return; } else { bribe+=e; l.RemoveAt(e+lindex); } }else { lindex++; } index++; } Console.WriteLine(bribe); }
This will help you understand and solve this better.
def minimumBribes(q): """ Sliding Window Approach. Imagine a queue of people in line for a ride. where each person have a number tag. And you are a police man standing at the end of the line. Assume there are 8 people in line. """ # As you dnt know about how many bribes have been done, bribes # count is 0. bribes = 0 # Moving towards the start of the line and checking for bribes. i = 0. for i in range(len(q)): # j is the person you are standing next to. j = 8 - 1 - 0 = 7. j = len(q) - 1 - i # check if the person in front of j (j-1) has tag of j (j+1) then he bribed j. if q[j-1] == j + 1: # Swap them to fix the queue. q[j], q[j-1] = q[j-1], q[j] # Take the bribe money from j ;) bribes += 1 # check if the person next to the person in front j (j-2) # if he has tag of j (j+1) then he bribed both. elif q[j-2] == j + 1: # Swap them to fix the queue. q[j], q[j-1], q[j-2] = q[j-2], q[j], q[j-1] # Take the bribe money from both ;) bribes += 2 # Now if not the both above cases, check the person next to you j. # If he got the correct tag do nothing. if not, arrest everyone as # you have proof that the bribes are more than 2. :o elif q[j] != j + 1: print('Too chaotic') return # If not Too Chaotic take the bribe money and go home. You Deserve it. :) print(bribes)
Python3 solution: reverse bribe
def minimumBribes(q): # Write your code here ans = 0 L = len(q) for i,p in enumerate(reversed(q)): j = L-1-i if q[j-1] == j+1: q[j],q[j-1] = q[j-1],q[j] ans+=1 elif q[j-2] == j+1: q[j],q[j-1],q[j-2] = q[j-2],q[j],q[j-1] ans+=2 elif q[j]!=j+1: print('Too chaotic') return print(ans)
JS solution - all tests OK*
Console explained code: It will log every step so you can understad what is happening
let counterLogs = 0 function llog (where, message){ console.log(`${counterLogs} -- ${where} -> ${message}`); counterLogs++ // llog(``, ); } Array.prototype.swap = function (a, b) { let temp = Number(this[a]); this[a] = this[b] this[b] = temp } function bribedOne(actualPos, onePosBelow){ let rigthPosValue = actualPos + 1; let notEndOfQueue = (actualPos - 1 >= 0); llog(`bribedOne`, `${onePosBelow} === ${rigthPosValue}`); return notEndOfQueue && onePosBelow === rigthPosValue } function bribedTwo(actualPos, twoPosBelow){ let notEndOfQueue = (actualPos - 2 >= 0); let rigthPosValue = actualPos + 1; llog(`bribedTwo`, `${twoPosBelow} === ${rigthPosValue}`); return notEndOfQueue && twoPosBelow === rigthPosValue } function minimumBribes(queue) { let totalBribes = 0; let queueSize = queue.length let endOfQuery = queueSize - 1; llog(`Initial Queue`, queue); for (let actualPos = endOfQuery; actualPos >=0; actualPos--) { llog(`actualPos Index`, actualPos); let rigthPosValue = actualPos + 1; let actualValue = queue[actualPos]; llog(`actualValue`, actualValue); let inRightPosition = actualValue === rigthPosValue; llog(`inRightPosition`, `${actualValue} === ${rigthPosValue}`); if (inRightPosition) { continue; } let onePosBelow = actualPos - 1; let twoPosBelow = actualPos - 2; if (bribedOne(actualPos, queue[onePosBelow])) { totalBribes += 1 llog(`queue before swap`, queue); llog(`swap`, `${actualValue} - ${queue[onePosBelow]}`); queue.swap(actualPos, onePosBelow) llog(`queue after swaps`, queue); } else if (bribedTwo(actualPos, queue[twoPosBelow])) { totalBribes += 2; llog(`queue before swap`, queue); llog(`swap twoPosBelow - onePosBelow`, `${queue[twoPosBelow]} - ${queue[onePosBelow]}`); queue.swap(twoPosBelow, onePosBelow); llog(`queue after swap`, queue); llog(`swap onePosBelow - actualPos`, `${queue[onePosBelow]} - ${actualValue}`); queue.swap(onePosBelow, actualPos); llog(`queue after swaps `, queue); } else { console.log('Too chaotic'); return } llog(`-- NEXT --`, `-- NEXT --`); } console.log(totalBribes) } function main() { const t = parseInt(readLine().trim(), 10); for (let tItr = 0; tItr < t; tItr++) { const n = parseInt(readLine().trim(), 10); const q = readLine().replace(/\s+$/g, '').split(' ').map(qTemp => parseInt(qTemp, 10)); minimumBribes(q); } }
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