Given two integers A and B, return any string S such that:
S has length A + B and contains exactly A ‘a‘ letters, and exactly B ‘b‘ letters;‘aaa‘ does not occur in S;‘bbb‘ does not occur in S.
Example 1:
Input: A = 1, B = 2
Output: "abb"
Explanation: "abb", "bab" and "bba" are all correct answers.
Example 2:
Input: A = 4, B = 1
Output: "aabaa"
Note:
0 <= A <= 1000 <= B <= 100S exists for the given A and B.Approach #1:
class Solution {
public:
string strWithout3a3b(int A, int B) {
string ans = "";
char a = ‘a‘;
char b = ‘b‘;
if (B > A) {
swap(A, B);
swap(a, b);
}
while (A != 0 || B != 0) {
if (A > 0) ans += a, A--;
if (A > B) ans += a, A--;
if (B > 0) ans += b, B--;
if (B > A) ans += b, B--;
}
return ans;
}
};
Create a timebased key-value store class TimeMap, that supports two operations.
1. set(string key, string value, int timestamp)
key and value, along with the given timestamp.2. get(string key, int timestamp)
set(key, value, timestamp_prev) was called previously, with timestamp_prev <= timestamp.timestamp_prev."").
Example 1:
Input: inputs = ["TimeMap","set","get","get","set","get","get"], inputs = [[],["foo","bar",1],["foo",1],["foo",3],["foo","bar2",4],["foo",4],["foo",5]]
Output: [null,null,"bar","bar",null,"bar2","bar2"]
Explanation:
TimeMap kv;
kv.set("foo", "bar", 1); // store the key "foo" and value "bar" along with timestamp = 1
kv.get("foo", 1); // output "bar"
kv.get("foo", 3); // output "bar" since there is no value corresponding to foo at timestamp 3 and timestamp 2, then the only value is at timestamp 1 ie "bar"
kv.set("foo", "bar2", 4);
kv.get("foo", 4); // output "bar2"
kv.get("foo", 5); //output "bar2"
Example 2:
Input: inputs = ["TimeMap","set","set","get","get","get","get","get"], inputs = [[],["love","high",10],["love","low",20],["love",5],["love",10],["love",15],["love",20],["love",25]]
Output: [null,null,null,"","high","high","low","low"]
Note:
[1, 100]timestamps for all TimeMap.set operations are strictly increasing.1 <= timestamp <= 10^7TimeMap.set and TimeMap.get functions will be called a total of 120000 times (combined) per test case.Approach #1:
class TimeMap {
public:
/** Initialize your data structure here. */
vector<string> ans;
map<string, vector<pair<int, string>>> mp;
TimeMap() {
}
void set(string key, string value, int timestamp) {
mp[key].push_back({timestamp, value});
}
string get(string key, int timestamp) {
if (mp.count(key)) {
for (int i = mp[key].size()-1; i >= 0 ; --i) {
if (mp[key][i].first <= timestamp) {
return mp[key][i].second;
}
}
}
return "";
}
};
/**
* Your TimeMap object will be instantiated and called as such:
* TimeMap* obj = new TimeMap();
* obj->set(key,value,timestamp);
* string param_2 = obj->get(key,timestamp);
*/
Given an array of integers A, find the number of triples of indices (i, j, k) such that:
0 <= i < A.length0 <= j < A.length0 <= k < A.lengthA[i] & A[j] & A[k] == 0, where & represents the bitwise-AND operator.
Example 1:
Input: [2,1,3]
Output: 12
Explanation: We could choose the following i, j, k triples:
(i=0, j=0, k=1) : 2 & 2 & 1
(i=0, j=1, k=0) : 2 & 1 & 2
(i=0, j=1, k=1) : 2 & 1 & 1
(i=0, j=1, k=2) : 2 & 1 & 3
(i=0, j=2, k=1) : 2 & 3 & 1
(i=1, j=0, k=0) : 1 & 2 & 2
(i=1, j=0, k=1) : 1 & 2 & 1
(i=1, j=0, k=2) : 1 & 2 & 3
(i=1, j=1, k=0) : 1 & 1 & 2
(i=1, j=2, k=0) : 1 & 3 & 2
(i=2, j=0, k=1) : 3 & 2 & 1
(i=2, j=1, k=0) : 3 & 1 & 2
Note:
1 <= A.length <= 10000 <= A[i] < 2^16Approach #1:
class Solution {
public:
int countTriplets(vector<int>& A) {
int size = A.size();
int ans = 0;
unordered_map<int, int> mp;
for (int i = 0; i < size; ++i) {
for (int j = 0; j < size; ++j) {
++mp[A[i] & A[j]];
}
}
for (int i = 0; i < size; ++i) {
for (auto m : mp) {
if ((A[i] & m.first) == 0)
ans += m.second;
}
}
return ans;
}
};
In a country popular for train travel, you have planned some train travelling one year in advance. The days of the year that you will travel is given as an array days. Each day is an integer from 1 to 365.
Train tickets are sold in 3 different ways:
costs[0] dollars;costs[1] dollars;costs[2] dollars.The passes allow that many days of consecutive travel. For example, if we get a 7-day pass on day 2, then we can travel for 7 days: day 2, 3, 4, 5, 6, 7, and 8.
Return the minimum number of dollars you need to travel every day in the given list of days.
Example 1:
Input: days = [1,4,6,7,8,20], costs = [2,7,15]
Output: 11
Explanation:
For example, here is one way to buy passes that lets you travel your travel plan:
On day 1, you bought a 1-day pass for costs[0] = $2, which covered day 1.
On day 3, you bought a 7-day pass for costs[1] = $7, which covered days 3, 4, ..., 9.
On day 20, you bought a 1-day pass for costs[0] = $2, which covered day 20.
In total you spent $11 and covered all the days of your travel.
Example 2:
Input: days = [1,2,3,4,5,6,7,8,9,10,30,31], costs = [2,7,15]
Output: 17
Explanation:
For example, here is one way to buy passes that lets you travel your travel plan:
On day 1, you bought a 30-day pass for costs[2] = $15 which covered days 1, 2, ..., 30.
On day 31, you bought a 1-day pass for costs[0] = $2 which covered day 31.
In total you spent $17 and covered all the days of your travel.
Note:
1 <= days.length <= 3651 <= days[i] <= 365days is in strictly increasing order.costs.length == 31 <= costs[i] <= 1000Approach #1:
class Solution {
public:
int mincostTickets(vector<int>& days, vector<int>& costs) {
vector<int> dp(366, 0);
vector<bool> isday(366, false);
for (int day: days) {
isday[day] = true;
}
for (int i = 1; i <= 365; ++i) {
if (!isday[i]) {
dp[i] = dp[i-1];
continue;
}
dp[i] = costs[0] + dp[i-1];
if (i >= 7) {
dp[i] = min(dp[i], costs[1]+dp[i-7]);
} else {
dp[i] = min(dp[i], costs[1]);
}
if (i >= 30) {
dp[i] = min(dp[i], costs[2]+dp[i-30]);
} else {
dp[i] = min(dp[i], costs[2]);
}
}
return dp[365];
}
};
原文:https://www.cnblogs.com/ruruozhenhao/p/10326204.html