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Input-<b>OUTPUT</b>

將魔王的語言抽象為人類的語言：魔王語言由以下兩種規(guī)則由人的語言逐步抽象上去的：α-〉β1β2β3…βm ；θδ1δ2…-〉θδnθδn-1…θδ1 設(shè)大寫字母表示魔王的語言

將魔王的語言抽象為人類的語言：魔王語言由以下兩種規(guī)則由人的語言逐步抽象上去的：α-〉β1β2β3…βm ；θδ1δ2…-〉θδnθδn-1…θδ1 設(shè)大寫字母表示魔王的語言，小寫字母表示人的語言B-〉tAdA，A-〉sae，eg：B(ehnxgz)B解釋為tsaedsaeezegexenehetsaedsae對應(yīng)的話是：“天上一只鵝地上一只鵝鵝追鵝趕鵝下鵝蛋鵝恨鵝天上一只鵝地上一只鵝”。(t-天d-地s-上a-一只e-鵝z-追g-趕x-下n-蛋h-恨)

標簽： 語言抽象字母

上傳時間： 2013-12-19

上傳用戶：aix008
本代碼為編碼開關(guān)代碼

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)）等類似鼠標滾輪的手動計數(shù)輸入設(shè)備。我使用的編碼開關(guān)為5個引腳的，其中2個引腳為按下轉(zhuǎn)輪開關(guān)（也就相當于鼠標中鍵）。另外3個引腳用來檢測旋轉(zhuǎn)方向以及旋轉(zhuǎn)步數(shù)的檢測端。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10K上拉電阻，并且a，c需要分別對地接一個104的電容，否則因為編碼開關(guān)的觸點抖動會引起輕微誤動作。本程序不使用定時器，不占用中斷，不使用延時代碼，并對每個細分步數(shù)進行判斷，避免一切誤動作，性能超級穩(wěn)定。我使用的編碼器是APLS的EC11B可以參照附件的時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。

標簽： 代碼編碼開關(guān)

上傳時間： 2017-07-03

上傳用戶：gaojiao1999
【問題描述】在一個N*N的點陣中

【問題描述】在一個N*N的點陣中，如N=4,你現(xiàn)在站在（1，1），出口在（4，4）。你可以通過上、下、左、右四種移動方法，在迷宮內(nèi)行走，但是同一個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個數(shù)，表示a[1]..a[n]。第三行有n個數(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”。

標簽： 點陣

上傳時間： 2014-06-21

上傳用戶：llandlu
這是本人原創(chuàng)的

這是本人原創(chuàng)的，包含了iptables各種功能實現(xiàn)的例子。有NAT轉(zhuǎn)換，對外發(fā)布服務(wù)器，特定端口的映射，filter表中FORWARD、INPUT、OUTPUT鏈規(guī)則制定的實現(xiàn)細則，并做了詳盡的注釋。配置命令中的每一條均在實際機器上做過測試，請放心參閱。

標簽：

上傳時間： 2017-08-17

上傳用戶：小儒尼尼奧
離散實驗一個包的傳遞用warshall

實驗源代碼 //Warshall.cpp #include<stdio.h> void warshall(int k,int n) { int i , j, t; int temp[20][20]; for(int a=0;a<k;a++) { printf("請輸入矩陣第%d 行元素:",a); for(int b=0;b<n;b++) { scanf ("%d",&temp[a][b]); } } for(i=0;i<k;i++){ for( j=0;j<k;j++){ if(temp[ j][i]==1) { for(t=0;t<n;t++) { temp[ j][t]=temp[i][t]||temp[ j][t]; } } } } printf("可傳遞閉包關(guān)系矩陣是:\n"); for(i=0;i<k;i++) { for( j=0;j<n;j++) { printf("%d", temp[i][ j]); } printf("\n"); } } void main() { printf("利用 Warshall 算法求二元關(guān)系的可傳遞閉包\n"); void warshall(int,int); int k , n; printf("請輸入矩陣的行數(shù) i: "); scanf("%d",&k); 四川大學實驗報告 printf("請輸入矩陣的列數(shù) j: "); scanf("%d",&n); warshall(k,n); }

標簽： warshall 離散實驗

上傳時間： 2016-06-27

上傳用戶：梁雪文以
運動會源代碼

#include <malloc.h> #include <stdio.h> #include <stdlib.h> #include <string.h> #define NULL 0 #define MaxSize 30 typedef struct athletestruct /*運動員*/ { char name[20]; int score; /*分數(shù)*/ int range; /**/ int item; /*項目*/ }ATH; typedef struct schoolstruct /*學校*/ { int count; /*編號*/ int serial; /**/ int menscore; /*男選手分數(shù)*/ int womenscore; /*女選手分數(shù)*/ int totalscore; /*總分*/ ATH athlete[MaxSize]; /**/ struct schoolstruct *next; }SCH; int nsc,msp,wsp; int ntsp; int i,j; int overgame; int serial,range; int n; SCH *head,*pfirst,*psecond; int *phead=NULL,*pafirst=NULL,*pasecond=NULL; void create(); void input () { char answer; head = (SCH *)malloc(sizeof(SCH)); /**/ head->next = NULL; pfirst = head; answer = 'y'; while ( answer == 'y' ) { Is_Game_DoMain: printf("\nGET Top 5 when odd\nGET Top 3 when even"); printf("\n輸入運動項目序號 (x<=%d):",ntsp); scanf("%d",pafirst); overgame = *pafirst; if ( pafirst != phead ) { for ( pasecond = phead ; pasecond < pafirst ; pasecond ++ ) { if ( overgame == *pasecond ) { printf("\n這個項目已經(jīng)存在請選擇其他的數(shù)字\n"); goto Is_Game_DoMain; } } } pafirst = pafirst + 1; if ( overgame > ntsp ) { printf("\n項目不存在"); printf("\n請重新輸入"); goto Is_Game_DoMain; } switch ( overgame%2 ) { case 0: n = 3;break; case 1: n = 5;break; } for ( i = 1 ; i <= n ; i++ ) { Is_Serial_DoMain: printf("\n輸入序號 of the NO.%d (0<x<=%d): ",i,nsc); scanf("%d",&serial); if ( serial > nsc ) { printf("\n超過學校數(shù)目,請重新輸入"); goto Is_Serial_DoMain; } if ( head->next == NULL ) { create(); } psecond = head->next ; while ( psecond != NULL ) { if ( psecond->serial == serial ) { pfirst = psecond; pfirst->count = pfirst->count + 1; goto Store_Data; } else { psecond = psecond->next; } } create(); Store_Data: pfirst->athlete[pfirst->count].item = overgame; pfirst->athlete[pfirst->count].range = i; pfirst->serial = serial; printf("Input name:) : "); scanf("%s",pfirst->athlete[pfirst->count].name); } printf("\n繼續(xù)輸入運動項目(y&n)？"); answer = getchar(); printf("\n"); } } void calculate() /**/ { pfirst = head->next; while ( pfirst->next != NULL ) { for (i=1;i<=pfirst->count;i++) { if ( pfirst->athlete[i].item % 2 == 0 ) { switch (pfirst->athlete[i].range) { case 1:pfirst->athlete[i].score = 5;break; case 2:pfirst->athlete[i].score = 3;break; case 3:pfirst->athlete[i].score = 2;break; } } else { switch (pfirst->athlete[i].range) { case 1:pfirst->athlete[i].score = 7;break; case 2:pfirst->athlete[i].score = 5;break; case 3:pfirst->athlete[i].score = 3;break; case 4:pfirst->athlete[i].score = 2;break; case 5:pfirst->athlete[i].score = 1;break; } } if ( pfirst->athlete[i].item <=msp ) { pfirst->menscore = pfirst->menscore + pfirst->athlete[i].score; } else { pfirst->womenscore = pfirst->womenscore + pfirst->athlete[i].score; } } pfirst->totalscore = pfirst->menscore + pfirst->womenscore; pfirst = pfirst->next; } } void output() { pfirst = head->next; psecond = head->next; while ( pfirst->next != NULL ) { // clrscr(); printf("\n第%d號學校的結(jié)果成績:",pfirst->serial); printf("\n\n項目的數(shù)目\t學校的名字\t分數(shù)"); for (i=1;i<=ntsp;i++) { for (j=1;j<=pfirst->count;j++) { if ( pfirst->athlete[j].item == i ) { printf("\n %d\t\t\t\t\t\t%s\n %d",i,pfirst->athlete[j].name,pfirst->athlete[j].score);break; } } } printf("\n\n\n\t\t\t\t\t\t按任意建進入下一頁"); getchar(); pfirst = pfirst->next; } // clrscr(); printf("\n運動會結(jié)果:\n\n學校編號\t男運動員成績\t女運動員成績\t總分"); pfirst = head->next; while ( pfirst->next != NULL ) { printf("\n %d\t\t %d\t\t %d\t\t %d",pfirst->serial,pfirst->menscore,pfirst->womenscore,pfirst->totalscore); pfirst = pfirst->next; } printf("\n\n\n\t\t\t\t\t\t\t按任意建結(jié)束"); getchar(); } void create() { pfirst = (struct schoolstruct *)malloc(sizeof(struct schoolstruct)); pfirst->next = head->next ; head->next = pfirst ; pfirst->count = 1; pfirst->menscore = 0; pfirst->womenscore = 0; pfirst->totalscore = 0; } void Save() {FILE *fp; if((fp = fopen("school.dat","wb"))==NULL) {printf("can't open school.dat\n"); fclose(fp); return; } fwrite(pfirst,sizeof(SCH),10,fp); fclose(fp); printf("文件已經(jīng)成功保存\n"); } void main() { system("cls"); printf("\n\t\t\t 運動會分數(shù)統(tǒng)計\n"); printf("輸入學校數(shù)目 (x>= 5):"); scanf("%d",&nsc); printf("輸入男選手的項目(x<=20):"); scanf("%d",&msp); printf("輸入女選手項目(<=20):"); scanf("%d",&wsp); ntsp = msp + wsp; phead = (int *)calloc(ntsp,sizeof(int)); pafirst = phead; pasecond = phead; input(); calculate(); output(); Save(); }

標簽： 源代碼

上傳時間： 2016-12-28

上傳用戶：150501
Coding+for+MIMO+Communication+Systems

Employing multiple transmit and receive antennas, namely using multi-input multi-output (MIMO) systems, has proven to be a major breakthrough in providing reliable wireless communication links. Since their invention in the mid-1990s, transmit diversity, achieved through space-time coding, and spatial multiplexing schemes have been the focus of much research in the area of wireless communications.

標簽： Communication Systems Coding MIMO for

上傳時間： 2020-05-26

上傳用戶：shancjb
Complex Orthogonal Space-Time Processing

Multiple-Input Multiple-Output (MIMO) systems have recently been the subject of intensive consideration in modem wireless communications as they offer the potential of providing high capacity, thus unleashing a wide range of applications in the wireless domain. The main feature of MIMO systems is the use of space-time processing and Space-Time Codes (STCs). Among a variety of STCs, orthogonal Space-Time Block Codes (STBCs) have a much simpler decoding method, compared to other STCs

標簽： Orthogonal Space-Time Processing Complex

上傳時間： 2020-05-26

上傳用戶：shancjb
Dynamic+Channel+Acquisition

Multiuser multiple-input-multiple-output (MU- MIMO) systems are known to be hindered by dimensionality loss due to channel state information (CSI) acquisition overhead. In this paper, we investigate user-scheduling in MU-MIMO systems on account of CSI acquisition overhead, where a base station dynamically acquires user channels to avoid choking the system with CSI overhead.

標簽： Acquisition Dynamic Channel

上傳時間： 2020-05-27

上傳用戶：shancjb
Fundamentals+of+Wireless+Communication

The writing of this book was prompted by two main developments in wireless communications in the past decade. First is the huge surge of research activities in physical-layer wireless communication theory. While this has been a subject of study since the 60’s, recent developments in the field, such as opportunistic and multi-input multi-output (MIMO) communication techniques, have brought completely new per- spectives on how to communicate over wireless channels.

標簽： Communication Fundamentals Wireless of

上傳時間： 2020-05-27

上傳用戶：shancjb