A. Calculating Function
time limit per test
1 second
memory limit per test
256 megabytes
input
standard input
output
standard output
For a positive integer n let's define a function f:
f(n)?=??-?1?+?2?-?3?+?..?+?(?-?1)nn
Your task is to calculate f(n) for a given integer n.
Input
The single line contains the positive integer n (1?≤?n?≤?1015).
Output
Print f(n) in a single line.
Sample test(s)
input
output
input
output
-3
Note
f(4)?=??-?1?+?2?-?3?+?4?=?2
f(5)?=??-?1?+?2?-?3?+?4?-?5?=??-?3
#include <iostream>#include <cstdio>#include <cstring>#include <stack>using namespace std;int main(){#ifdef xxz freopen("in.txt","r",stdin);#endif // xxz long long n; while(cin>>n) { long long sum = 0; sum += n/2; if(n%2) sum -= n; cout <p></p> <p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> B. OR in Matrix </p> <p class="sycode"> </p>
<p class="sycode"> time limit per test </p> 1 second <p class="sycode"> </p>
<p class="sycode"> memory limit per test </p> 256 megabytes <p class="sycode"> </p>
<p class="sycode"> input </p> standard input <p class="sycode"> </p>
<p class="sycode"> output </p> standard output <p class="sycode"> </p>
<p> Let's define logical OR as an operation on two logical values (i. e. values that belong to the set {0,?1}) that is equal to 1 if either or both of the logical values is set to 1, otherwise it is 0. We can define logical OR of three or more logical values in the same manner:</p> <p> where is equal to 1 if some ai?=?1, otherwise it is equal to 0.</p> <p> Nam has a matrix A consisting of m rows and n columns. The rows are numbered from 1 to m, columns are numbered from 1 to n. Element at row i (1?≤?i?≤?m) and column j (1?≤?j?≤?n) is denoted as Aij. All elements of A are either 0 or 1. From matrix A, Nam creates another matrix B of the same size using formula:</p> <p> .</p> <p> (Bij is OR of all elements in row i and column j of matrix A)</p> <p> Nam gives you matrix B and challenges you to guess matrix A. Although Nam is smart, he could probably make a mistake while calculating matrix B, since size of A can be large.</p> <p class="sycode"> </p>
<p class="sycode"> Input </p> <p> The first line contains two integer m and n (1?≤?m,?n?≤?100), number of rows and number of columns of matrices respectively.</p> <p> The next m lines each contain n integers separated by spaces describing rows of matrix B (each element of B is either 0 or 1).</p> <p class="sycode"> </p>
<p class="sycode"> Output </p> <p> In the first line, print "NO" if Nam has made a mistake when calculating B, otherwise print "YES". If the first line is "YES", then also print mrows consisting of n integers representing matrix A that can produce given matrix B. If there are several solutions print any one.</p> <p class="sycode"> </p>
<p class="sycode"> Sample test(s) </p> <p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> input </p> <pre style="代码" class="precsshei">2 21 00 0
output
NO
input
2 31 1 11 1 1
output
YES1 1 11 1 1
input
2 30 1 01 1 1
output
YES0 0 00 1 0
#include <functional>#include <algorithm>#include <iostream>#include <fstream>#include <sstream>#include <iomanip>#include <numeric>#include <cstring>#include <climits>#include <cassert>#include <complex>#include <cstdio>#include <string>#include <vector>#include <bitset>#include <queue>#include <stack>#include <cmath>#include <ctime>#include <list>#include <set>#include <map>using namespace std;int n , m;int g[1111][1111];int res[1111][1111];bool check_1(int row , int column){ int ok = 0; for(int k = 0 ; k <br> <p></p> <p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> C. Palindrome Transformation </p> <p class="sycode"> </p>
<p class="sycode"> time limit per test </p> 1 second <p class="sycode"> </p>
<p class="sycode"> memory limit per test </p> 256 megabytes <p class="sycode"> </p>
<p class="sycode"> input </p> standard input <p class="sycode"> </p>
<p class="sycode"> output </p> standard output <p class="sycode"> </p>
<p> Nam is playing with a string on his computer. The string consists of n lowercase English letters. It is meaningless, so Nam decided to make the string more beautiful, that is to make it be a palindrome by using 4 arrow keys: left, right, up, down.</p> <p> There is a cursor pointing at some symbol of the string. Suppose that cursor is at position i (1?≤?i?≤?n, the string uses 1-based indexing) now. Left and right arrow keys are used to move cursor around the string. The string is cyclic, that means that when Nam presses left arrow key, the cursor will move to position i?-?1 if i?>?1 or to the end of the string (i. e. position n) otherwise. The same holds when he presses the right arrow key (if i?=?n, the cursor appears at the beginning of the string).</p> <p> When Nam presses up arrow key, the letter which the text cursor is pointing to will change to the next letter in English alphabet (assuming that alphabet is also cyclic, i. e. after 'z' follows 'a'). The same holds when he presses the down arrow key.</p> <p> Initially, the text cursor is at position p.</p> <p> Because Nam has a lot homework to do, he wants to complete this as fast as possible. Can you help him by calculating the minimum number of arrow keys presses to make the string to be a palindrome?</p> <p class="sycode"> </p>
<p class="sycode"> Input </p> <p> The first line contains two space-separated integers n (1?≤?n?≤?105) and p (1?≤?p?≤?n), the length of Nam's string and the initial position of the text cursor.</p> <p> The next line contains n lowercase characters of Nam's string.</p> <p class="sycode"> </p>
<p class="sycode"> Output </p> <p> Print the minimum number of presses needed to change string into a palindrome.</p> <p class="sycode"> </p>
<p class="sycode"> Sample test(s) </p> <p class="sycode"> </p>
<p class="sycode"> </p>
<p class="sycode"> input </p> <pre style="代码" class="precsshei">8 3aeabcaez
output
Note
A string is a palindrome if it reads the same forward or reversed.
In the sample test, initial Nam's string is: (cursor position is shown bold).
In optimal solution, Nam may do 6 following steps:
The result, , is now a palindrome.
#include <functional>#include <algorithm>#include <iostream>#include <fstream>#include <sstream>#include <iomanip>#include <numeric>#include <cstring>#include <climits>#include <cassert>#include <complex>#include <cstdio>#include <string>#include <vector>#include <bitset>#include <queue>#include <stack>#include <cmath>#include <ctime>#include <list>#include <set>#include <map>using namespace std;int n , pos;char s[100100];int main(){#ifdef xxz freopen("in.txt","r",stdin);#endif int T,Case = 0;; while(cin>>n>>pos) { pos--; cin>>s; int len = strlen(s); int l = 0,r = n/2 - 1; if(n/2 =0 && s[r] == s[n-1-r] ) r--; int ans = 0; for(int i = l; i <br> <br> D: <p></p> <p> 树形DP,目前还不会,等打完广州区域赛在学习下树形DP再补上</p> </map></set></list></ctime></cmath></stack></queue></bitset></vector></string></cstdio></complex></cassert></climits></cstring></numeric></iomanip></sstream></fstream></iostream></algorithm></functional>
HTML標籤的目的是什麼?Apr 28, 2025 am 12:02 AMhtmltagsareessentialforsenteringwebpages,增強輔助性,seo,and Performance.1)他們areAnclosedInanglebracketSandInpairStocrateAteAhierArchical.2)samantictagsictagsagtagslikleicereperreveuseerexperienceandseo.3)
什麼是自我關閉標籤?舉一個例子。Apr 27, 2025 am 12:04 AMself-closingtagsinhtmlandxmlaretagsthatclosethem hexptneedneedingAseparateClosingTag,SightifyingmarkupStrupupStrupureAndenHancingCodingsigy.1)shemesessientInsentialInxmlforelementswithcontentsswithcontent content content content content content content content content contentcontent,確保wellwell-formedDocuments.2)Inhtmlible5,inhtmlibut forfix
超越HTML:網絡開發的基本技術Apr 26, 2025 am 12:04 AM要構建一個功能強大且用戶體驗良好的網站,僅靠HTML是不夠的,還需要以下技術:JavaScript賦予網頁動態和交互性,通過操作DOM實現實時變化。 CSS負責網頁的樣式和佈局,提升美觀度和用戶體驗。現代框架和庫如React、Vue.js和Angular,提高開發效率和代碼組織結構。
HTML中的布爾屬性是什麼?舉一些例子。Apr 25, 2025 am 12:01 AM布爾屬性是HTML中的特殊屬性,不需要值即可激活。 1.布爾屬性通過存在與否控制元素行為,如disabled禁用輸入框。 2.它們的工作原理是瀏覽器解析時根據屬性的存在改變元素行為。 3.基本用法是直接添加屬性,高級用法可通過JavaScript動態控制。 4.常見錯誤是誤以為需要設置值,正確寫法應簡潔。 5.最佳實踐是保持代碼簡潔,合理使用布爾屬性以優化網頁性能和用戶體驗。
如何驗證您的HTML代碼?Apr 24, 2025 am 12:04 AMHTML代碼可以通過在線驗證器、集成工具和自動化流程來確保其清潔度。 1)使用W3CMarkupValidationService在線驗證HTML代碼。 2)在VisualStudioCode中安裝並配置HTMLHint擴展進行實時驗證。 3)利用HTMLTidy在構建流程中自動驗證和清理HTML文件。
HTML與CSS和JavaScript:比較Web技術Apr 23, 2025 am 12:05 AMHTML、CSS和JavaScript是構建現代網頁的核心技術:1.HTML定義網頁結構,2.CSS負責網頁外觀,3.JavaScript提供網頁動態和交互性,它們共同作用,打造出用戶體驗良好的網站。
HTML作為標記語言:其功能和目的Apr 22, 2025 am 12:02 AMHTML的功能是定義網頁的結構和內容,其目的在於提供一種標準化的方式來展示信息。 1)HTML通過標籤和屬性組織網頁的各個部分,如標題和段落。 2)它支持內容與表現分離,提升維護效率。 3)HTML具有可擴展性,允許自定義標籤增強SEO。
HTML,CSS和JavaScript的未來:網絡開發趨勢Apr 19, 2025 am 12:02 AMHTML的未來趨勢是語義化和Web組件,CSS的未來趨勢是CSS-in-JS和CSSHoudini,JavaScript的未來趨勢是WebAssembly和Serverless。 1.HTML的語義化提高可訪問性和SEO效果,Web組件提升開發效率但需注意瀏覽器兼容性。 2.CSS-in-JS增強樣式管理靈活性但可能增大文件體積,CSSHoudini允許直接操作CSS渲染。 3.WebAssembly優化瀏覽器應用性能但學習曲線陡,Serverless簡化開發但需優化冷啟動問題。
熱AI工具
Undresser.AI Undress
人工智慧驅動的應用程序,用於創建逼真的裸體照片
AI Clothes Remover
用於從照片中去除衣服的線上人工智慧工具。
Undress AI Tool
免費脫衣圖片
Clothoff.io
AI脫衣器
Video Face Swap
使用我們完全免費的人工智慧換臉工具,輕鬆在任何影片中換臉!
熱門文章
熱工具
SublimeText3 Mac版
神級程式碼編輯軟體(SublimeText3)
mPDF
mPDF是一個PHP庫,可以從UTF-8編碼的HTML產生PDF檔案。原作者Ian Back編寫mPDF以從他的網站上「即時」輸出PDF文件,並處理不同的語言。與原始腳本如HTML2FPDF相比,它的速度較慢,並且在使用Unicode字體時產生的檔案較大,但支援CSS樣式等,並進行了大量增強。支援幾乎所有語言,包括RTL(阿拉伯語和希伯來語)和CJK(中日韓)。支援嵌套的區塊級元素(如P、DIV),
DVWA
Damn Vulnerable Web App (DVWA) 是一個PHP/MySQL的Web應用程序,非常容易受到攻擊。它的主要目標是成為安全專業人員在合法環境中測試自己的技能和工具的輔助工具,幫助Web開發人員更好地理解保護網路應用程式的過程,並幫助教師/學生在課堂環境中教授/學習Web應用程式安全性。 DVWA的目標是透過簡單直接的介面練習一些最常見的Web漏洞,難度各不相同。請注意,該軟體中
SAP NetWeaver Server Adapter for Eclipse
將Eclipse與SAP NetWeaver應用伺服器整合。
VSCode Windows 64位元 下載
微軟推出的免費、功能強大的一款IDE編輯器
