-
The PCA9549 provides eight bits of high speed TTL-compatible bus switching controlledby the I2C-bus. The low ON-state resistance of the switch allows connections to be madewith minimal propagation delay. Any individual A to B channel or combination of channelscan be selected via the I2C-bus, determined by the contents of the programmable Controlregister. When the I2C-bus bit is HIGH (logic 1), the switch is on and data can flow fromPort A to Port B, or vice versa. When the I2C-bus bit is LOW (logic 0), the switch is open,creating a high-impedance state between the two ports, which stops the data flow.An active LOW reset input (RESET) allows the PCA9549 to recover from a situationwhere the I2C-bus is stuck in a LOW state. Pulling the RESET pin LOW resets the I2C-busstate machine and causes all the bits to be open, as does the internal power-on resetfunction.
標(biāo)簽:
switch
Octal
9549
with
上傳時(shí)間:
2014-11-22
上傳用戶(hù):xcy122677
-
RSA算法 :首先, 找出三個(gè)數(shù), p, q, r, 其中 p, q 是兩個(gè)相異的質(zhì)數(shù), r 是與 (p-1)(q-1) 互質(zhì)的數(shù)...... p, q, r 這三個(gè)數(shù)便是 person_key�,接著, 找出 m, 使得 r^m == 1 mod (p-1)(q-1)..... 這個(gè) m 一定存在, 因?yàn)?r 與 (p-1)(q-1) 互質(zhì), 用輾轉(zhuǎn)相除法就可以得到了..... 再來(lái), 計(jì)算 n = pq....... m, n 這兩個(gè)數(shù)便是 public_key �����,編碼過(guò)程是, 若資料為 a, 將其看成是一個(gè)大整數(shù), 假設(shè) a < n.... 如果 a >= n 的話, 就將 a 表成 s 進(jìn)位 (s
標(biāo)簽:
person_key
RSA
算法
上傳時(shí)間:
2013-12-14
上傳用戶(hù):zhuyibin
-
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(hù):daguda
-
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(hù):weixiao99
-
MATLAB 6_5 輔助優(yōu)化計(jì)算與設(shè)計(jì)
1����、文件命名說(shuō)明
a)文件夾“第1章”中的文件對(duì)應(yīng)書(shū)中第1章的例程,其他以此類(lèi)推;
b) 文件名exampleX1_X2.m:對(duì)應(yīng)例程X1_X2
例如:example2_1表示例程2_1.
2����、注意
為了方便起見(jiàn)��,書(shū)中的每一個(gè)例程存為一個(gè)文件;而有些例程中將其調(diào)用的函數(shù)文件也放在這個(gè)例程文件中,所以讀者在運(yùn)行光盤(pán)中的例程文件時(shí)注意這一點(diǎn)��,如果是這樣的例程文件應(yīng)該將其調(diào)用的函數(shù)文件分離出來(lái)另存為一個(gè)文件��。
標(biāo)簽:
MATLAB
輔助
優(yōu)化計(jì)算
上傳時(shí)間:
2015-08-05
上傳用戶(hù):王小奇
-
上下文無(wú)關(guān)文法(Context-Free Grammar, CFG)是一個(gè)4元組G=(V, T, S, P)���,其中�,V和T是不相交的有限集�,S∈V,P是一組有限的產(chǎn)生式規(guī)則集���,形如A→α�����,其中A∈V��,且α∈(V∪T)*。V的元素稱(chēng)為非終結(jié)符�,T的元素稱(chēng)為終結(jié)符��,S是一個(gè)特殊的非終結(jié)符,稱(chēng)為文法開(kāi)始符��。
設(shè)G=(V, T, S, P)是一個(gè)CFG,則G產(chǎn)生的語(yǔ)言是所有可由G產(chǎn)生的字符串組成的集合�,即L(G)={x∈T* | Sx}�。一個(gè)語(yǔ)言L是上下文無(wú)關(guān)語(yǔ)言(Context-Free Language, CFL)����,當(dāng)且僅當(dāng)存在一個(gè)CFG G����,使得L=L(G)。 *⇒
例如,設(shè)文法G:S→AB
A→aA|a
B→bB|b
則L(G)={a^nb^m | n,m>=1}
其中非終結(jié)符都是大寫(xiě)字母���,開(kāi)始符都是S,終結(jié)符都是小寫(xiě)字母���。
標(biāo)簽:
Context-Free
Grammar
CFG
上傳時(shí)間:
2013-12-10
上傳用戶(hù):gaojiao1999
-
The XML Toolbox converts MATLAB data types (such as double, char, struct, complex, sparse, logical) of any level of nesting to XML format and vice versa.
For example,
>> project.name = MyProject
>> project.id = 1234
>> project.param.a = 3.1415
>> project.param.b = 42
becomes with str=xml_format(project, off )
"<project>
<name>MyProject</name>
<id>1234</id>
<param>
<a>3.1415</a>
<b>42</b>
</param>
</project>"
On the other hand, if an XML string XStr is given, this can be converted easily to a MATLAB data type or structure V with the command V=xml_parse(XStr).
標(biāo)簽:
converts
Toolbox
complex
logical
上傳時(shí)間:
2016-02-12
上傳用戶(hù):a673761058
-
【問(wèn)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(guò)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(wèn)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(wèn)并僅可以訪問(wèn)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(wèn)并僅可以訪問(wèn)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(wú)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(hù):llandlu
-
learningMatlab
PhÇ n 1
c¬ së Mat lab
Ch ¬ ng 1:
Cµ i ® Æ t matlab
1.1.Cµ i ® Æ t ch ¬ ng tr×nh:
Qui tr×nh cµ i ® Æ t Matlab còng t ¬ ng tù nh viÖ c cµ i ® Æ t c¸ c ch ¬ ng tr×nh phÇ n mÒ m kh¸ c, chØ cÇ n theo c¸ c h íng dÉ n vµ bæ xung thª m c¸ c th« ng sè cho phï hî p.
1.1.1 Khë i ® éng windows.
1.1.2 Do ch ¬ ng tr×nh ® î c cÊ u h×nh theo Autorun nª n khi g¾ n dÜ a CD vµ o æ ® Ü a th× ch ¬ ng tr×nh tù ho¹ t ® éng, cö a sæ
標(biāo)簽:
learningMatlab
172
199
173
上傳時(shí)間:
2013-12-20
上傳用戶(hù):lanwei
-
#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(hù):Aa123456789
