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算法笔试题

2019-11-14 09:27:45
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1、将一整数逆序后放入一数组中(要求递归实现)void convert(int *result, int n){     if(n>=10)         convert(result+1, n/10);     *result = n%10;   }int main(int argc, char* argv[]){     int n = 123456789, result[20]={};     convert(result, n);     PRintf("%d:", n);     for(int i=0; i<9; i++)         printf("%d", result[i]);     return getchar();}2、求高于平均分的学生学号及成绩(学号和成绩人工输入)double find(int total, int n){     int number, score, average;     scanf("%d", &number);     if(number != 0){         scanf("%d", &score);         average = find(total+score, n+1);         if(score >= average)              printf("%d:%d/n", number, score);         return average;     }else{         printf("Average=%d/n", total/n);         return total/n;     }}int main(int argc, char* argv[]){     find(0, 0);     return getchar();}3、递归实现回文判断(如:abcdedbca就是回文)int find(char *str, int n){     if(n<=1) return 1;     else if(str[0]==str[n-1])   return find(str+1, n-2);     else     return 0;} int main(int argc, char* argv[]){     char *str = "abcdedcba";     printf("%s: %s/n", str, find(str, strlen(str)) ? "Yes" : "No");     return getchar();} 4、组合问题(从M个不同字符中任取N个字符的所有组合)void find(char *source, char *result, int n){     if(n==1){         while(*source)            printf("%s%c/n", result, *source++);     }else{         int i, j;         for(i=0; source[i] != 0; i++);         for(j=0; result[j] != 0; j++);         for(; i>=n; i--)         {              result[j] = *source++;              result[j+1] = '/0';              find(source, result, n-1);         }     }} int main(int argc, char* argv[]){     int const n = 3;     char *source = "ABCDE", result[n+1] = {0};     if(n>0 && strlen(source)>0 && n<=strlen(source))         find(source, result, 3);     return getchar();}5、分解成质因数(如435234=251*17*17*3*2)void prim(int m, int n){     if(m>n){         while(m%n != 0) n++;         m /= n;         prim(m, n);         printf("%d*", n);     }}int main(int argc, char* argv[]){     int n = 435234;     printf("%d=", n);     prim(n, 2);     return getchar();} 6、寻找迷宫的一条出路(o:通路; X障碍)#define MAX_SIZE 8int H[4] = {0, 1, 0, -1};int V[4] = {-1, 0, 1, 0};          char Maze[MAX_SIZE][MAX_SIZE] = {{'X','X','X','X','X','X','X','X'},                                 {'o','o','o','o','o','X','X','X'},                                 {'X','o','X','X','o','o','o','X'},                                 {'X','o','X','X','o','X','X','o'},                                 {'X','o','X','X','X','X','X','X'},{'X','o','X','X','o','o','o','X'},                                {'X','o','o','o','o','X','o','o'},                                 {'X','X','X','X','X','X','X','X'}};void FindPath(int X, int Y){    if(X == MAX_SIZE || Y == MAX_SIZE){         for(int i = 0; i < MAX_SIZE; i++)for(int j = 0; j < MAX_SIZE; j++)                  printf("%c%c", Maze[i][j], j < MAX_SIZE-1 ? ' ' : '/n');}else for(int k = 0; k < 4; k++)if(X >= 0 && Y >= 0 && Y < MAX_SIZE && X < MAX_SIZE && 'o' == Maze[X][Y]){                  Maze[X][Y] = ' ';                  FindPath(X+V[k], Y+H[k]);                  Maze[X][Y] ='o';}}int main(int argc, char* argv[]){    FindPath(1,0);    return getchar();} 7、随机分配座位,共50个学生,使学号相邻的同学座位不能相邻(早些时候用C#写的,没有用C改写)。static void Main(string[] args){     int Tmp = 0, Count = 50;                 int[] Seats = new int[Count];                 bool[] Students = new bool[Count];     System.Random RandStudent=new System.Random();     Students[Seats[0]=RandStudent.Next(0,Count)]=true;     for(int i = 1; i < Count; ){         Tmp=(int)RandStudent.Next(0,Count);         if((!Students[Tmp])&&(Seats[i-1]-Tmp!=1) && (Seats[i-1] - Tmp) != -1){              Seats[i++] = Tmp;Students[Tmp] = true;         }     }     foreach(int Student in Seats)         System.Console.Write(Student + " ");     System.Console.Read();} 8、求网格中的黑点分布(有6*7的网格,在某些格子中有黑点,已知各行与各列中有黑点的点数之和)#define ROWS 6#define COLS 7int ipointsR[ROWS] = {2, 0, 4, 3, 4, 0};           // 各行黑点数和的情况int iPointsC[COLS] = {4, 1, 2, 2, 1, 2, 1};        // 各列黑点数和的情况int iCount, iFound;int iSumR[ROWS], iSumC[COLS], Grid[ROWS][COLS]; int Set(int iRowNo){if(iRowNo == ROWS){        for(int iColNo=0; iColNo < COLS && iSumC[iColNo]==iPointsC[iColNo]; iColNo++)           if(iColNo == COLS-1){               printf("/nNo.%d:/n", ++iCount);               for(int i=0; i < ROWS; i++)                  for(int j=0; j < COLS; j++)                      printf("%d%c", Grid[i][j], (j+1) % COLS ? ' ' : '/n');               iFound = 1;                        // iFound = 1,有解           }    }else{        for(int iColNo=0; iColNo < COLS; iColNo++)        {            if(iPointsR[iRowNo] == 0){                Set(iRowNo + 1);  }else if(Grid[iRowNo][iColNo]==0){Grid[iRowNo][iColNo] = 1;iSumR[iRowNo]++; iSumC[iColNo]++;                                  if(iSumR[iRowNo]<iPointsR[iRowNo] && iSumC[iColNo]<=iPointsC[iColNo])                     Set(iRowNo);else if(iSumR[iRowNo]==iPointsR[iRowNo] && iRowNo < ROWS)                     Set(iRowNo + 1);                Grid[iRowNo][iColNo] = 0;                iSumR[iRowNo]--; iSumC[iColNo]--;            }        }    }return iFound;   // 用于判断是否有解}int main(int argc, char* argv[]){    if(!Set(0))        printf("Failure!");    return getchar();}9、有4种面值(面值为1, 4, 12, 21)的邮票很多枚,从中最多任取5张进行组合,求邮票最大连续组合值#define N 5#define M 5int k, Found, Flag[N];int Stamp[M] = {0, 1, 4, 12, 21}; // 在剩余张数n中组合出面值和Valueint Combine(int n, int Value){     if(n >= 0 && Value == 0){         Found = 1;         int Sum = 0;         for(int i=0; i<N && Flag[i] != 0; i++){              Sum += Stamp[Flag[i]];              printf("%d ", Stamp[Flag[i]]);         }         printf("/tSum=%d/n/n", Sum);     }else for(int i=1; i<M && !Found && n>0; i++)         if(Value-Stamp[i] >= 0){              Flag[k++] = i;              Combine(n-1, Value-Stamp[i]);              Flag[--k] = 0;         }     return Found;} int main(int argc, char* argv[]){     for(int i=1; Combine(N, i); i++, Found=0);     return getchar();} 10、大整数数相乘的问题。void Multiple(char A[], char B[], char C[]){    int TMP, In=0, LenA=-1, LenB=-1;    while(A[++LenA] != '/0');    while(B[++LenB] != '/0');    int Index, Start = LenA + LenB - 1;    for(int i=LenB-1; i>=0; i--)    {        Index = Start--;        if(B[i] != '0'){            for(int In=0, j=LenA-1; j>=0; j--)            {                TMP = (C[Index]-'0') + (A[j]-'0') * (B[i] - '0') + In;                C[Index--] = TMP % 10 + '0';                In = TMP / 10;            }            C[Index] = In + '0';        }    }} int main(int argc, char* argv[]){    char A[] = "21839244444444448880088888889";    char B[] = "38888888888899999999999999988";char C[sizeof(A) + sizeof(B) - 1];     for(int k=0; k<sizeof(C); k++)        C[k] = '0';    C[sizeof(C)-1] = '/0';     Multiple(A, B, C);    for(int i=0; C[i] != '/0'; i++)        printf("%c", C[i]);    return getchar();} 11、求最大连续递增数字串(如“ads3sl456789DF3456ld345AA”中的“456789”)int GetSubString(char *strSource, char *strResult){    int iTmp=0, iHead=0, iMax=0;    for(int Index=0, iLen=0; strSource[Index]; Index++)    {        if(strSource[Index] >= '0' && strSource[Index] <= '9'&& strSource[Index-1] > '0' && strSource[Index] == strSource[Index-1]+1){            iLen++;                    // 连续数字的长度增1        }else{                          // 出现字符或不连续数字            if(iLen > iMax)            {            iMax = iLen;iHead = iTmp;            }                              // 该字符是数字,但数字不连续            if(strSource[Index] >= '0' && strSource[Index] <= '9'){                iTmp = Index;iLen = 1;            }        }       }           for(iTmp=0 ; iTmp < iMax; iTmp++) // 将原字符串中最长的连续数字串赋值给结果串        strResult[iTmp] = strSource[iHead++];    strResult[iTmp]='/0';    return iMax;                      // 返回连续数字的最大长度}int main(int argc, char* argv[]){    char strSource[]="ads3sl456789DF3456ld345AA", char strResult[sizeof(strSource)];printf("Len=%d, strResult=%s /nstrSource=%s/n", GetSubString(strSource, strResult),strResult, strSource);    return getchar();} 12、四个工人,四个任务,每个人做不同的任务需要的时间不同,求任务分配的最优方案。(2005年5月29日全国计算机软件资格水平考试——软件设计师的算法题)。#include "stdafx.h"#define N 4int Cost[N][N] = { {2, 12, 5, 32},       // 行号:任务序号,列号:工人序号                    {8, 15, 7, 11},       // 每行元素值表示这个任务由不同工人完成所需要的时间                    {24, 18, 9, 6},                    {21, 1, 8, 28}};int MinCost=1000;int Task[N], TempTask[N], Worker[N];void Assign(int k, int cost){     if(k==N)     {         MinCost = cost;            for(int i=0; i<N; i++)              TempTask[i] = Task[i];     }else{         for(int i=0; i<N; i++){              if(Worker[i]==0 && cost+Cost[k][i] < MinCost)              {                   Worker[i] = 1;     Task[k] = i;                   Assign(k+1, cost+Cost[k][i]);                   Worker[i] = 0; Task[k] = 0;              }         }     }} int main(int argc, char* argv[]){     Assign(0, 0);     printf("最佳方案总费用=%d/n", MinCost);     for(int i=0; i<N; i++)      /* 输出最佳方案 */         printf("/t任务%d由工人%d来做:%d/n", i, TempTask[i], Cost[i][TempTask[i]]);     return getchar();     } 13、八皇后问题(输出所有情况,不过有些结果只是旋转了90度而已)。哈哈:)回溯算法的典型例题#define N 8int Board[N][N];int Valid(int i, int j)     // 所下棋子有效性的严正{     int k = 1;     for(k=1; i>=k && j>=k;k++)         if(Board[i-k][j-k])    return 0;     for(k=1; i>=k;k++)         if(Board[i-k][j])      return 0;     for(k=1; i>=k && j+k<N;k++)         if(Board[i-k][j+k])    return 0;     return 1;} void Trial(int i, int n){     if(i==n){          for(int k=0; k<n; k++){              for(int m=0; m<n; m++)                   printf("%d ", Board[k][m]);              printf("/n");         }         printf("/n");     }else{         for(int j=0; j<n; j++){              Board[i][j] = 1;              if(Valid(i,j))                   Trial(i+1, n);              Board[i][j] = 0;         }     }} int main(int argc, char* argv[]){     Trial(0, N);     return getchar();}14、实现strstr功能(寻找子串在父串中首次出现的位置)char * strstring(char *ParentString, char *SubString){     char *pSubString, *pPareString;     for(char *pTmp=ParentString; *pTmp; pTmp++)     {         pSubString = SubString;         pPareString = pTmp;            while(*pSubString == *pPareString && *pSubString != '/0')         {              pSubString++;              pPareString++;         }         if(*pSubString == '/0')     return pTmp;     }     return NULL;} int main(int argc, char* argv[]){     char *ParentString = "happy birthday to you!";     char *SubString = "birthday";     printf("%s",strstring(ParentString, SubString));     return getchar();}}

 

1,写出一个函数,比较两个字符串,返回最大公串,例如abacdaccbadc和cedaccbe返回daccb;2,有100个数字,其中有正数也有负数,找出连续三个相加之和最大部分;要求:尽量不要使用库函数!两道一起来:支持搜索中文,import java.util.Random;public class Test{  private static int maxSubStart = 0;  private static int maxSubLength = 0;  private static char[] c1, c2;  private static boolean isSame(int i, int j)  {    return c1[i] == c2[j];  }  private static void setMaxSub(int start1, int start2)  {    int i = start1, j = start2;    int maxStart = 0;    int maxLength = 0;    for (; i < c1.length && j < c2.length; i++,j++)    {      if (isSame(i, j))      {        maxLength++;      }      else        break;    }    if (maxLength > maxSubLength)    {      maxSubLength = maxLength;      maxSubStart  = start1;    }  }  private static String getMaxCommonString(String s1, String s2)  {    c1 = s1.toCharArray();    c2 = s2.toCharArray();    if (c1.length > c2.length)  // swap s1, s2 so s1.length < s2.length    {      char[] c = c1;      c1 = c2;      c2 = c;    }    int minLength = c1.length;    int maxLength = c2.length;    for (int i = 0; i < minLength; i++)    {      char ch = c1[i];      for (int j = 0; j < maxLength; j++)      {        if (ch == c2[j])        {          setMaxSub(i, j);        }      }    }    return new String(c1, maxSubStart, maxSubLength);  }  private static int[] getRandomInt(int length)  {    Random r = new Random();    int[] res = new int[length];    for (int i = 0; i < length; i++)    {      res[i] = r.nextInt(200) - 100;    }    return res;  }  private static int count(int[] num, int i)  {    return num[i]+num[i+1]+num[i+2];  }  private static int getMaxThreeStart(int[] num)  {    int end = num.length - 3;    int max = 0;    int start = 0;    for (int i = 0; i < end; i++)    {      int c = count(num, i);      if (c > max)      {        max = c;        start = i;      }    }    return start;  }  public static void main(String[] args)  {    //abacdaccbadc和cedaccbe    String s1 = "abacd测试汉字 accbadc", s2 = "ced测试汉字 accbe";    System.out.println(s1 + "   " + s2 + " 的最大公串为: " + getMaxCommonString(s1, s2));    int[] num = getRandomInt(100);    int start = getMaxThreeStart(num);    for (int i = 0; i < 100; i++)    {      System.out.print(num[i] + "  ");      if (i%10 == 9)      {        System.out.println();      }    }    System.out.println("三个连续数字之和最大的三个数子为: " + num[start] + "  " + num[start+1] + "  " + num[start+2]);  }};
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