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數(shù)字運(yùn)算,判斷一個(gè)數(shù)是否接近素?cái)?shù)
A Niven number is a number such that the sum of its digits divides itself. For example, 111 is a Niven number because the sum of its digits is 3, which divides 111. We can also specify a number in another base b, and a number in base b is a Niven number if the sum of its digits divides its value.
Given b (2 <= b <= 10) and a number in base b, determine whether it is a Niven number or not.
Input
Each line of input contains the base b, followed by a string of digits representing a positive integer in that base. There are no leading zeroes. The input is terminated by a line consisting of 0 alone.
Output
For each case, print "yes" on a line if the given number is a Niven number, and "no" otherwise.
Sample Input
10 111
2 110
10 123
6 1000
8 2314
0
Sample Output
yes
yes
no
yes
no
標(biāo)簽:
數(shù)字
運(yùn)算
上傳時(shí)間:
2015-05-21
上傳用戶:daguda
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源代碼\用動(dòng)態(tài)規(guī)劃算法計(jì)算序列關(guān)系個(gè)數(shù)
用關(guān)系"<"和"="將3個(gè)數(shù)a���,b���,c依次序排列時(shí)���,有13種不同的序列關(guān)系:
a=b=c,a=b<c,a<b=v,a<b<c,a<c<b
a=c<b,b<a=c,b<a<c,b<c<a,b=c<a
c<a=b,c<a<b,c<b<a
若要將n個(gè)數(shù)依序列,設(shè)計(jì)一個(gè)動(dòng)態(tài)規(guī)劃算法���,計(jì)算出有多少種不同的序列關(guān)系,
要求算法只占用O(n),只耗時(shí)O(n*n).
標(biāo)簽:
lt
源代碼
動(dòng)態(tài)規(guī)劃
序列
上傳時(shí)間:
2013-12-26
上傳用戶:siguazgb
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The government of a small but important country has decided that the alphabet needs to be streamlined and reordered. Uppercase letters will be eliminated. They will issue a royal decree in the form of a String of B and A characters. The first character in the decree specifies whether a must come ( B )Before b in the new alphabet or ( A )After b . The second character determines the relative placement of b and c , etc. So, for example, "BAA" means that a must come Before b , b must come After c , and c must come After d .
Any letters beyond these requirements are to be excluded, so if the decree specifies k comparisons then the new alphabet will contain the first k+1 lowercase letters of the current alphabet.
Create a class Alphabet that contains the method choices that takes the decree as input and returns the number of possible new alphabets that conform to the decree. If more than 1,000,000,000 are possible, return -1.
Definition
標(biāo)簽:
government
streamline
important
alphabet
上傳時(shí)間:
2015-06-09
上傳用戶:weixiao99
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電力系統(tǒng)在臺(tái)穩(wěn)定計(jì)算式電力系統(tǒng)不正常運(yùn)行方式的一種計(jì)算���。它的任務(wù)是已知電力系統(tǒng)某一正常運(yùn)行狀態(tài)和受到某種擾動(dòng)���,計(jì)算電力系統(tǒng)所有發(fā)電機(jī)能否同步運(yùn)行
1運(yùn)行說明:
請(qǐng)輸入初始功率S0���,形如a+bi
請(qǐng)輸入無限大系統(tǒng)母線電壓V0
請(qǐng)輸入系統(tǒng)等值電抗矩陣B
矩陣B有以下元素組成的行矩陣
1正常運(yùn)行時(shí)的系統(tǒng)直軸等值電抗Xd
2故障運(yùn)行時(shí)的系統(tǒng)直軸等值電抗X d
3故障切除后的系統(tǒng)直軸等值電抗
請(qǐng)輸入慣性時(shí)間常數(shù)Tj
請(qǐng)輸入時(shí)段數(shù)N
請(qǐng)輸入哪個(gè)時(shí)段發(fā)生故障Ni
請(qǐng)輸入每時(shí)段間隔的時(shí)間dt
標(biāo)簽:
電力系統(tǒng)
正
計(jì)算
運(yùn)行
上傳時(shí)間:
2015-06-13
上傳用戶:it男一枚
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SQL Server Security Distilled, Second Edition
by Morris Lewis ISBN:1590592190
Apress © 2004 (352 pages)
This book takes an in-depth look at what you can do to secure data in SQL Server, shows how to authenticate access to data on the server, and authorizes what users can and can t do with that data, in versions 6.5, 7.0, and 2000.
標(biāo)簽:
1590592190
Distilled
Security
Edition
上傳時(shí)間:
2015-12-25
上傳用戶:hj_18
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We have a group of N items (represented by integers from 1 to N), and we know that there is some total order defined for these items. You may assume that no two elements will be equal (for all a, b: a<b or b<a). However, it is expensive to compare two items. Your task is to make a number of comparisons, and then output the sorted order. The cost of determining if a < b is given by the bth integer of element a of costs (space delimited), which is the same as the ath integer of element b. Naturally, you will be judged on the total cost of the comparisons you make before outputting the sorted order. If your order is incorrect, you will receive a 0. Otherwise, your score will be opt/cost, where opt is the best cost anyone has achieved and cost is the total cost of the comparisons you make (so your score for a test case will be between 0 and 1). Your score for the problem will simply be the sum of your scores for the individual test cases.
標(biāo)簽:
represented
integers
group
items
上傳時(shí)間:
2016-01-17
上傳用戶:jeffery
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漢諾塔?��。���?��!
Simulate the movement of the Towers of Hanoi puzzle Bonus is possible for using animation
eg. if n = 2 A→B A→C B→C
if n = 3 A→C A→B C→B A→C B→A B→C A→C
標(biāo)簽:
the
animation
Simulate
movement
上傳時(shí)間:
2017-02-11
上傳用戶:waizhang
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本代碼為編碼開關(guān)代碼,編碼開關(guān)也就是數(shù)字音響中的
360度旋轉(zhuǎn)的數(shù)字音量以及顯示器上用的(單鍵飛梭開
關(guān))等類似鼠標(biāo)滾輪的手動(dòng)計(jì)數(shù)輸入設(shè)備。
我使用的編碼開關(guān)為5個(gè)引腳的,其中2個(gè)引腳為按下
轉(zhuǎn)輪開關(guān)(也就相當(dāng)于鼠標(biāo)中鍵)���。另外3個(gè)引腳用來
檢測(cè)旋轉(zhuǎn)方向以及旋轉(zhuǎn)步數(shù)的檢測(cè)端���。引腳分別為a,b,c
b接地a���,c分別接到P2.0和P2.1口并分別接兩個(gè)10K上拉
電阻���,并且a,c需要分別對(duì)地接一個(gè)104的電容���,否則
因?yàn)榫幋a開關(guān)的觸點(diǎn)抖動(dòng)會(huì)引起輕微誤動(dòng)作���。本程序不
使用定時(shí)器,不占用中斷���,不使用延時(shí)代碼,并對(duì)每個(gè)
細(xì)分步數(shù)進(jìn)行判斷,避免一切誤動(dòng)作,性能超級(jí)穩(wěn)定���。
我使用的編碼器是APLS的EC11B可以參照附件的時(shí)序圖
編碼器控制流水燈最能說明問題���,下面是以一段流水
燈來演示���。
標(biāo)簽:
代碼
編碼開關(guān)
上傳時(shí)間:
2017-07-03
上傳用戶:gaojiao1999
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【問題描述】
在一個(gè)N*N的點(diǎn)陣中���,如N=4,你現(xiàn)在站在(1���,1)���,出口在(4���,4)���。你可以通過上���、下���、左���、右四種移動(dòng)方法���,在迷宮內(nèi)行走���,但是同一個(gè)位置不可以訪問兩次���,亦不可以越界���。表格最上面的一行加黑數(shù)字A[1..4]分別表示迷宮第I列中需要訪問并僅可以訪問的格子數(shù)���。右邊一行加下劃線數(shù)字B[1..4]則表示迷宮第I行需要訪問并僅可以訪問的格子數(shù)���。如圖中帶括號(hào)紅色數(shù)字就是一條符合條件的路線���。
給定N���,A[1..N] B[1..N]���。輸出一條符合條件的路線���,若無解���,輸出NO ANSWER���。(使用U,D���,L���,R分別表示上���、下���、左���、右���。)
2 2 1 2
(4���,4) 1
(2���,3) (3���,3) (4���,3) 3
(1���,2) (2���,2) 2
(1���,1) 1
【輸入格式】
第一行是數(shù)m (n < 6 )���。第二行有n個(gè)數(shù)���,表示a[1]..a[n]���。第三行有n個(gè)數(shù)���,表示b[1]..b[n]���。
【輸出格式】
僅有一行���。若有解則輸出一條可行路線���,否則輸出“NO ANSWER”���。
標(biāo)簽:
點(diǎn)陣
上傳時(shí)間:
2014-06-21
上傳用戶:llandlu
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#include "iostream" using namespace std;
class Matrix
{
private:
double** A; //矩陣A
double *b; //向量b
public:
int size;
Matrix(int );
~Matrix();
friend double* Dooli(Matrix& );
void Input();
void Disp();
};
Matrix::Matrix(int x) {
size=x;
//為向量b分配空間并初始化為0
b=new double [x];
for(int j=0;j<x;j++)
b[j]=0;
//為向量A分配空間并初始化為0
A=new double* [x];
for(int i=0;i<x;i++)
A[i]=new double [x];
for(int m=0;m<x;m++)
for(int n=0;n<x;n++)
A[m][n]=0;
}
Matrix::~Matrix() {
cout<<"正在析構(gòu)中~~~~"<<endl;
delete b;
for(int i=0;i<size;i++)
delete A[i];
delete A;
}
void Matrix::Disp()
{
for(int i=0;i<size;i++)
{
for(int j=0;j<size;j++)
cout<<A[i][j]<<" ";
cout<<endl;
}
}
void Matrix::Input()
{
cout<<"請(qǐng)輸入A:"<<endl;
for(int i=0;i<size;i++)
for(int j=0;j<size;j++){
cout<<"第"<<i+1<<"行"<<"第"<<j+1<<"列:"<<endl;
cin>>A[i][j];
}
cout<<"請(qǐng)輸入b:"<<endl;
for(int j=0;j<size;j++){
cout<<"第"<<j+1<<"個(gè):"<<endl;
cin>>b[j];
}
}
double* Dooli(Matrix& A) {
double *Xn=new double [A.size];
Matrix L(A.size),U(A.size);
//分別求得U���,L的第一行與第一列
for(int i=0;i<A.size;i++)
U.A[0][i]=A.A[0][i];
for(int j=1;j<A.size;j++)
L.A[j][0]=A.A[j][0]/U.A[0][0];
//分別求得U,L的第r行���,第r列
double temp1=0,temp2=0;
for(int r=1;r<A.size;r++){
//U
for(int i=r;i<A.size;i++){
for(int k=0;k<r-1;k++)
temp1=temp1+L.A[r][k]*U.A[k][i];
U.A[r][i]=A.A[r][i]-temp1;
}
//L
for(int i=r+1;i<A.size;i++){
for(int k=0;k<r-1;k++)
temp2=temp2+L.A[i][k]*U.A[k][r];
L.A[i][r]=(A.A[i][r]-temp2)/U.A[r][r];
}
}
cout<<"計(jì)算U得:"<<endl;
U.Disp();
cout<<"計(jì)算L的:"<<endl;
L.Disp();
double *Y=new double [A.size];
Y[0]=A.b[0];
for(int i=1;i<A.size;i++ ){
double temp3=0;
for(int k=0;k<i-1;k++)
temp3=temp3+L.A[i][k]*Y[k];
Y[i]=A.b[i]-temp3;
}
Xn[A.size-1]=Y[A.size-1]/U.A[A.size-1][A.size-1];
for(int i=A.size-1;i>=0;i--){
double temp4=0;
for(int k=i+1;k<A.size;k++)
temp4=temp4+U.A[i][k]*Xn[k];
Xn[i]=(Y[i]-temp4)/U.A[i][i];
}
return Xn;
}
int main()
{
Matrix B(4);
B.Input();
double *X;
X=Dooli(B);
cout<<"~~~~解得:"<<endl;
for(int i=0;i<B.size;i++)
cout<<"X["<<i<<"]:"<<X[i]<<" ";
cout<<endl<<"呵呵呵呵呵";
return 0;
}
標(biāo)簽:
道理特分解法
上傳時(shí)間:
2018-05-20
上傳用戶:Aa123456789
