2014华为上机试题


 

1.第一题的题目大概是输入整型数组求数组的最小数和最大数之和。比如输入1,2,3,4则输出为5,当输入仅仅有一个数的时候。则最小数和最大数都是该数,比如仅仅输入1,则输出为2;另外数组的长度不超过50


#include<stdio.h>

main()

{

         intnum[50]={0};

         inti,n;

 

         printf("请输入整型数组的长度(1~50):");

         scanf("%d",&n);

 

                   printf("请输入整型数组的元素:");

         for(i=0;i<n;i++)

         {

                   scanf("%d",&num[i]);     

         }

 

         intmin_num=num[0];

         intmax_num=num[0];

         for(intj=0;j<n;j++)

         {

                   if(max_num<num[j])

                            max_num=num[j];

                   elseif(min_num>num[j])

                            min_num=num[j];

         }

         intsum=min_num+max_num;

         printf("数组中最大与最小值之和:%d\n",sum);

         return0;

}


 

2.求两个长长整型的数据的和并输出。比如输入1233333333333333。。

3111111111111111111111111.。。。。则输出。。

。。


#include<stdio.h>

#include<string.h>

#include<malloc.h>

main()

{

         char*num1,*num2;  //两个长长整型数据

         char*sum;

//      inttemp;

int len_num1,len_num2; // 两个长长整型数据的长度

         intlen_max,len_min;

         num1=(char*)malloc(sizeof(char));

         num2=(char*)malloc(sizeof(char));

         printf("输入两个长长整型数据:");

         scanf("%s",num1);

         printf("输入两个长长整型数据:");

         scanf("%s",num2);

         len_num1=strlen(num1);

         len_num2=strlen(num2);

         len_max=(len_num1>=len_num2)?len_num1:len_num2;

         len_min=(len_num1<=len_num2)?len_num1:len_num2;

         int len_max1=len_max;

         sum=(char*)malloc(sizeof(char)*len_max);

         memset(sum,0x00,len_max+1);//切忌初始化

         for(;len_num1>0&&len_num2>0;len_num1--,len_num2--)

         {

         sum[len_max--]=((num1[len_num1-1]-'0')+(num2[len_num2-1]-'0'));

         }

         if(len_num1>0)

         {

                   sum[len_max--]=num1[len_num1- 1 ]-'0';

                   len_num1--;

         }

         if(len_num2>0)

         {

                   sum[len_max--]=num1[len_num2- 1]-'0';

                   len_num2--;

         }

         for(intj=len_max1;j>=0;j--) //实现进位操作

         {

         //      temp=sum[j]-'0';

                   if(sum[j]>=10)

                   {

                    sum[j-1]+=sum[j]/10;

                            sum[j]%=10;

                   }

         }

         char*outsum=(char*)malloc(sizeof(char)*len_max1);

         j=0;

         while(sum[j]==0)  //跳出头部0元素

                   j++;

         for(int m=0;m<len_max1;j++,m++)

                   outsum[m]=sum[j]+'0';

         outsum[m]='\0';

   printf("输出两长长整型数据之和:%s\n",outsum);

         return0;

}


 

3.通过键盘输入一串小写字母(a~z)组成的字符串。请编写一个字符串过滤程序,若字符串中出现多个同样的字符,将非首次出现的字符过滤掉。

比方字符串“abacacde”过滤结果为“abcde”。

要求实现函数:

void stringFilter(const char *pInputStr,long lInputLen, char *pOutputStr);

【输入】 pInputStr:输入字符串

lInputLen: 输入字符串长度

【输出】 pOutputStr:输出字符串。空间已经开辟好。与输入字符串等长;

#include <stdio.h>

#include<string.h>

#include<malloc.h>

void stringFilter(const char *p_str, longlen, char *p_outstr)

{

 intarray[256]={0};

 const char *tmp = p_str;

 for(int j=0;j<len;j++)

 {

          if(array[tmp[j]]==0)

                   *p_outstr++=tmp[j];

          array[tmp[j]]++;

 }

         *p_outstr= '\0';

}

 

void main()

{

         char  *str = "cccddecc";

         intlen = strlen(str);

                   char* outstr = (char *)malloc(len*sizeof(char));

         stringFilter(str,len,outstr);

         printf("%s\n",outstr);

         free(outstr);

         outstr= NULL;

}

 

4.通过键盘输入一串小写字母(a~z)组成的字符串。请编写一个字符串压缩程序,将字符串中连续出席的反复字母进行压缩。并输出压缩后的字符串。

压缩规则:

1. 仅压缩连续反复出现的字符。

比方字符串"abcbc"因为无连续反复字符,压缩后的字符串还是"abcbc".

2. 压缩字段的格式为"字符反复的次数+字符"。比如:字符串"xxxyyyyyyz"压缩后就成为"3x6yz"

 

要求实现函数:

void stringZip(const char*pInputStr, long lInputLen, char *pOutputStr);

 

【输入】 pInputStr: 输入字符串

lInputLen: 输入字符串长度

【输出】 pOutputStr: 输出字符串,空间已经开辟好,与输入字符串等长;


#include <stdio.h>

#include<string.h>

#include<malloc.h>

 

void stringZip(const char *p_str, long len,char *p_outstr)

{

         intcount=1;

         for(inti=0;i<len;i++)

         {

                   if(p_str[i]==p_str[i+1])

                   {

                            count++;

                   }

                   else

                   {

                            if(count>1)

                            {

                                     *p_outstr++= count +'0';

                                     *p_outstr++=p_str[i];

                            }

                            else

                            {

                                     *p_outstr++=p_str[i];

                            }

                            count = 1;//注意其位置

                   }

         }

         *p_outstr= '\0';

}

 

void main()

{

         char*str = "cccddecc";

   printf("压缩之前的字符串为:%s\n",str);

         intlen = strlen(str);

         char* outstr = (char*)malloc(len*sizeof(char));

         stringZip(str,len,outstr);

         printf("压缩之后的字符串为:%s\n",outstr);

         free(outstr);

         outstr= NULL;

}


5.通过键盘输入100以内正整数的加、减运算式,请编写一个程序输出运算结果字符串。

输入字符串的格式为:“操作数1 运算符 操作数2”,“操作数”与“运算符”之间以一个空格隔开。

 

补充说明:

1. 操作数为正整数,不须要考虑计算结果溢出的情况。

2. 若输入算式格式错误,输出结果为“0”。

 

要求实现函数:

void arithmetic(const char*pInputStr, long lInputLen, char *pOutputStr);

 

【输入】 pInputStr: 输入字符串

lInputLen: 输入字符串长度

【输出】 pOutputStr: 输出字符串,空间已经开辟好,与输入字符串等长;

#include <stdio.h>

#include<string.h>

#include<stdlib.h>

void arithmetic(const char *input, longlen, char *output)

{

         chars1[10];

         chars2[10];

         chars3[10];

         intcnt = 0;

         intlen_input=strlen(input);

         for(inti=0;i<len_input;++i)

         {

                   if(input[i]=='')

                            cnt++;

         }

 

         if(cnt!=2)

         {

                   *output++= '0';

                   *output= '\0';

                   return;

         }

 

         sscanf(input,"%s %s %s",s1,s2,s3);

         if(strlen(s2)!=1||(s2[0]!='+'&&s2[0]!='-'))

         {

                   *output++= '0';

                   *output= '\0';

                   return;

 

         }

 

         int len_s1=strlen(s1);

         for(i=0;i<len_s1;i++)

         {

                   if(s1[i]<'0'||s1[i]>'9')

                   {

                            *output++= '0';

                          *output= '\0';

                            return;

                   }

         }

 

         intlen_s3=strlen(s3);

         for(i=0;i<len_s3;i++)

         {

                   if(s3[i]<'0'||s3[i]>'9')

                   {

                            *output++= '0';

                          *output= '\0';

                            return;

                   }

         }

 

         int x = atoi(s1);

         int y = atoi(s3);

         if(s2[0]=='+')

         {

                   intresult = x+y;

                   itoa(result,output,10);

         }

         elseif(s2[0]=='-')

         {

                   intresult = x-y;

                   itoa(result,output,10);

         }

         else

         {

                   *output++= '0';

                 *output= '\0';

                   return;

 

         }

 

}

void main()

{

         charstr[] = {"10 - 23"};

         charoutstr[10];

         intlen = strlen(str);

         arithmetic(str,len,outstr);

         printf("%s\n",str);

         printf("%s\n",outstr);     

}

 

6.一组人(n个)。围成一圈。从某人開始数到第三个的人出列,再接着从下一个人開始数,终于输出终于出列的人

(约瑟夫环是一个数学的应用问题:已知n个人(以编号1,2。3...n分别表示)围坐在一张圆桌周围。从编号为k的人開始报数,数到m的那个人出列;他的下一个人又从1開始报数,数到m的那个人又出列;依此规律反复下去,直到圆桌周围的人所有出列。)

#include <stdio.h>

#include<string.h>

#include<stdlib.h>

#include<malloc.h>

 

typedef struct Node

{

         intdata;

         structNode *next;

}LinkList;

 

LinkList *create(int n)

{

         LinkList*p,*q,*head;

         inti=1;

         p=(LinkList*)malloc(sizeof(LinkList));

         p->data=i;

         head=p;

 

         for(i=1;i<=n;i++)

         {

                   q=(LinkList*)malloc(sizeof(LinkList));

                   q->data=i+1;

                   p->next=q;

                   p=q;

         }

         p->next=head;  //使链表尾连接链表头,形成循环链表

         returnhead;

         free(p);

         p=NULL;

         free(q);

         q=NULL;

}

 

void deletefun(LinkList *L,int m)

{

         LinkList*p,*q,*temp;

         inti;

         p=L;

 

         while(p->next!=p)

         {

                   for(i=1;i<m;i++)

                   {

                            q=p;

                            p=p->next;

                   }

                   printf("%5d",p->data);

                   temp=p;

                   q->next=p->next;

                   p=p->next;

                   free(temp);

         }

         printf("%5d\n",p->data);

}

 

int main()

{

         intn=7,m=3;

         LinkList*head1;

         head1=create(n);

         deletefun(head1,m);

         return0;

}

7..输入一串字符,仅仅包括“0-10”和“。”找出当中最小的数字和最大的数字(可能不止一个),输出最后剩余数字个数。如输入 “3,3,4,5,6,7,7”

#include<stdio.h>

#include<stdlib.h>

#include<string.h>

 

void main()

{

         charstr[100];

         printf("输入一组字符串:\n");

         scanf("%s",&str);

 

         intlen=strlen(str);

         intarray[100];

         intcount=0;

         for(inti=0;i<len;i++)

         {

                   if(str[i]>='0'&&str[i]<='9')

                            array[count++]=str[i]-'0';

        

         }

         array[count]='\0';

         intresult=count;

         intmin=array[0];

         intmax=array[0];

         for(intj=0;j<count;j++)

         {

                   if(max<array[j])

                            max=array[j];

                   elseif(min>array[j])

                            min=array[j];

         }

         for(intk=0;k<count;k++)

         {

                   if(array[k]==min)

                            result--;

                   if(array[k]==max)

                            result--;

         }

         printf("%d\n",result);

}

8.输入一组身高在170到190之间(5个身高),比較身高差,选出身高差最小的两个身高;若身高差同样,选平均身高高的那两个身高;从小到大输出;
如 输入 170 181173 186 190   输出 170 173

#include<stdio.h>

#include<stdlib.h>

#define N 5

 

int main()

{

         intHeight[N];

         intdmin;

         intH1,H2;

         inti,j,temp;

 

         printf("请输入一组身高在170到190之间的数据(共5个):\n");

         for(intk=0;k<N;k++)

         scanf("%d",&Height[k]);

         printf("\n");

 

         for(i=0;i<N;i++)

                   for(j=1;j<N-i&&Height[j-1]>Height[j];j++)

                   {

                            temp=Height[j-1];

                            Height[j-1]=Height[j];

                            Height[j]=temp;

                   }

 

         H1=Height[0];

         H2=Height[1];

         dmin=H2-H1;

         for(intm=2;m<N;m++)

         {

                   if(Height[m]-Height[m-1]<=dmin)

                   {

                            H1=Height[m-1];

                            H2=Height[m];

                            dmin=Height[m]-Height[m-1];

                   }

         }

         printf("身高差最小的两个身高为:\n");

         printf("%d,%d\n",H1,H2);

         return0;

}

9. 删除子串,仅仅要是原串中有同样的子串就删掉。无论有多少个,返回子串个数。

#include <stdio.h>

#include <stdlib.h>

#include <assert.h>

#include <string.h>

int delete_sub_str(const char *str,constchar *sub_str,char *result)

{

         assert(str!= NULL && sub_str != NULL);

         constchar *p,*q;

         char*t,*temp;

         p= str;

         q= sub_str;

         t= result;

         intn,count = 0;

         n= strlen(q);

         temp= (char *)malloc(n+1);

         memset(temp,0x00,n+1);

         while(*p)

         {

                   memcpy(temp,p,n);

                   if(strcmp(temp,q)== 0 )

                   {

                            count++;

                            memset(temp,0x00,n+1);

                            p= p + n;

                   }

                   else

                   {       

                            *t= *p;

                            p++;

                            t++;

                            memset(temp,0x00,n+1);

                   }       

         }

         free(temp);

         returncount;

}

void main()

{

         chars[100] = {‘\0’};

         intnum = delete_sub_str(“123abc12de234fg1hi34j123k”,”123”,s);

         printf(“Thenumber of sub_str is %d\r\n”,num);

         printf(“Theresult string is %s\r\n”,s);

}

10. 要求编程实现上述高精度的十进制加法。

要求实现函数:

void add (const char *num1,const char *num2, char *result)

【输入】num1:字符串形式操作数1,假设操作数为负。则num1[0]为符号位'-'

num2:字符串形式操作数2,假设操作数为负,则num2[0]为符号位'-'

【输出】result:保存加法计算结果字符串,假设结果为负,则result[0]为符号位。

#include<stdio.h>

 #include<stdlib.h>

 #include<string.h>

 

 void move(char *str, int length)   //移除字母前的"-"符号

 {

      if(str[0] != '-')

        return;

    int i;

    for(i = 0; i < length-1; i++)

        str[i] = str[i+1];

    str[i] = '\0';

 }

 

 intremove_zero(char *result, int length)

 {

    int count = 0;

    for(int i = length-1; i > 0; i--)   //从最后開始移除0。直到遇到非0数字,仅仅对最初位置上的0不予推断

    {

        if(result[i] == '0')

        {

            result[i] = '\0';

            count++;

        }else

            return length-count;

    }

    return length - count;

 }

 

 voidreverse(char *result, int length)       //将字符串倒转

 {

    char temp;

    for(int i = 0; i <= (length-1)/2; i++)

    {

        temp = result[i];

        result[i] = result[length-1-i];

        result[length-1-i] = temp;

    }

 }

 

 intreal_add(char *str1, char *str2, char *result, const bool flag)

 {

    int len1 = strlen(str1);

    int len2 = strlen(str2);

    int n1, n2, another = 0;   //another表示进位

    int cur_rs = 0;        //表示result的当前位数

    int i, j;

    int curSum;

    for(i = len1-1, j = len2-1; i >= 0 && j >= 0; i--, j--)

    {

        n1 = str1[i] - '0';

        n2 = str2[j] - '0';

        curSum = n1 + n2 + another;

        result[cur_rs++] = curSum % 10 + '0';

        another = curSum / 10;

    }

 

    if(j < 0)

    {

        while(i >= 0)        //遍历str1剩余各位

        {

            n1 = str1[i--] - '0';

            curSum = n1 + another;

            result[cur_rs++] = curSum % 10 + '0';

            another = curSum / 10;

        }

        if(another != 0)        //假设还有进位未加上

            result[cur_rs++] = another + '0';

    }

          else

          {

        while(j >= 0)

        {

            n2 = str2[j--] - '0';

            curSum = n2 + another;

            result[cur_rs++] = curSum % 10 + '0';

            another = curSum / 10;

        }

        if(another != 0)

            result[cur_rs++] = another + '0';

    }

 

    result[cur_rs] = '\0';

 

    cur_rs = remove_zero(result, cur_rs);

    if(!flag)

    {

        result[cur_rs++] = '-';

        result[cur_rs] = '\0';

    }

    reverse(result, strlen(result));

    return cur_rs;

 }

 

 

 intreal_minus(char *str1, char *str2, char *result)    //使用str1减去str2

 {

    char big[100], small[100];

    int big_len, sml_len;

 

    int len1 = strlen(str1);

    int len2 = strlen(str2);

    bool flag = false;        //用于标记str2是否比str1大

 

    if(len1 < len2)

        flag = true;

    else if(len1 == len2)

    {

        if(strcmp(str1, str2) == 0)

        {

            result[0] = '0';

            result[1] = '\0';

            return 1;

        }else if(strcmp(str1,str2) < 0)

            flag = true;

    }

 

    if(flag)    //将str1和str2交换,确保str1指向的值是当中较大者,最后通过flag确定要不要给前面加-号

    {

        char *temp = str1;

        str1 = str2;

        str2 = temp;

        len1 = strlen(str1);

        len2 = strlen(str2);

    }

 

    int n1, n2, another = 0;   //another表示是否有借位

    int i, j;

    int cur_rs = 0;

    int curMinus;

 

     for(i = len1-1, j =len2-1; i>=0 && j>=0; i--,j--)

     {

         n1 = str1[i] - '0';

         n2 = str2[j] - '0';

         if(n1 >= n2+another)

         {

             result[cur_rs++] = (n1-n2-another)+'0';

             another = 0;

         }

         else

         {

             result[cur_rs++] = (n1+10-n2-another)+ '0';

             another = 1;

         }

     }

 

     while(i >= 0)

     {

         n1 = str1[i--] - '0';

         if(another != 0)

         {

             n1 -= another;

             another = 0;

         }

         result[cur_rs++] = n1 + '0';

     }

    

    result[cur_rs] = '\0';

    cur_rs = remove_zero(result, cur_rs);

    if(flag)

    {

        result[cur_rs++] = '-';

        result[cur_rs] = '\0';

    }

    reverse(result, cur_rs);

 

    return cur_rs;

 }

 

 voidaddi(const char *num1, const char *num2, char *result)

 {

    int len1 = strlen(num1);

    int len2 = strlen(num2);

    int rs_len;

    if(!len1 || !len2)

            return;

    char str1[100], str2[100];

    strncpy(str1, num1, len1);

    str1[len1] = '\0';

    strncpy(str2, num2, len2);

    str2[len2] = '\0';

 

    if(str1[0] == '-' && str2[0] == '-')

    {

        move(str1, len1);

        move(str2, len2);

        rs_len = real_add(str1, str2, result, false);

    }else if(str1[0] == '-')

    {

        move(str1, len1);

        rs_len = real_minus(str2, str1, result);

    }

    else if(str2[0] == '-')

    {

        move(str2, len2);

        rs_len = real_minus(str1, str2, result);

    }else

        rs_len = real_add(str1, str2, result, true);

 }

 

 //int main(int argc, char *argv[])

 intmain()

 {

    char num1[100],num2[100];

          printf("请输入两个整型数据:\n");

          scanf("%s%s",num1,num2);

 

          char result[100];

    memset(result, 0, 100);

    addi(num1,num2, result);

    printf("%s\n", result);

 

    return 0;

 }

11. 描写叙述:10个学生考完期末考试评卷完毕后,A老师须要划出及格线,要求例如以下:
(1) 及格线是10的倍数;
(2) 保证至少有60%的学生及格;
(3) 假设全部的学生都高于60分,则及格线为60分

输入:输入10个整数,取值0~100

输出:输出及格线,10的倍数

 #include<stdio.h>

 

void bubblesort(int arr[])

{

         inti,j,temp;

         for(i=0;i<10;i++)

                   for(j=0;j<9-i&&arr[j]>arr[j+1];j++)

                   {

                            temp=arr[j];

                            arr[j]=arr[j+1];

                            arr[j+1]=temp;

                   }

}

 

int GetPassLine(int a[])

{

         bubblesort(a);

         if(a[0]>=60)

                   return60;

         else

                   return(((int)a[4]/10)*10);

}

 

main()

{

         inta[10]={0};

         intresult;

         printf("请随机输入10个成绩(0-100):\n");

         scanf("%d%d%d%d%d%d%d%d%d%d",&a[0],&a[1],&a[2],&a[3],&a[4],&a[5],&a[6],&a[7],&a[8],&a[9]);

         printf("\n");

         result=GetPassLine(a);

         printf("及格线为:%d\n",result);

         return1;

}

 

12. 描写叙述:一条长廊里依次装有n(1 ≤ n ≤ 65535)盏电灯,从头到尾编号1、2、3、…n-1、n。每盏电灯由一个拉线开关控制。開始。电灯所有关着。

有n个学生从长廊穿过。第一个学生把号码凡是1的倍数的电灯的开关拉一下。接着第二个学生把号码凡是2的倍数的电灯的开关拉一下。接着第三个学生把号码凡是3的倍数的电灯的开关拉一下。如此继续下去,最后第n个学生把号码凡是n的倍数的电灯的开关拉一下。

n个学生按此规定走完后,长廊里电灯有几盏亮着。注:电灯数和学生数一致。

输入:电灯的数量

输出:亮着的电灯数量

例子输入:3

例子输出:1

 

#include<stdio.h>

#define Max_Bubl_Num 65535

 

int GetLightLampNum(int n)

{

         intBublNum[Max_Bubl_Num]={0};  //0表示灯灭。1表示灯亮

         unsignedint i,j;

         unsignedint count=0;

         for(i=1;i<=n;i++)

                   for(j=i;j<=n&&j%i==0;j++)

                   {

                            BublNum[j-1]+=1;

                            BublNum[j-1]=BublNum[j-1]%2;

                   }

 

         for(intk=0;k<n;k++)

         {

                   if(BublNum[k]==1)

                            count++;

         }

         returncount;

}

int main()

{

         intn,result;

         printf("请输入灯的数量(1-65535):\n");

         scanf("%d",&n);

         result=GetLightLampNum(n);

         printf("最后亮灯的数量为:%d\n",result);

         return0;

}

13. 描写叙述:已知2条地铁线路,当中A为环线,B为东西向线路,线路都是双向的。经过的网站名分别例如以下。两条线交叉的换乘点用T1、T2表示。编敲代码,随意输入两个网站名称,输出乘坐地铁最少须要经过的车站数量(含输入的起点和终点。换乘网站仅仅计算一次)。
地铁线A(环线)经过车站:A1 A2 A3 A4 A5 A6A7 A8 A9 T1 A10 A11 A12 A13 T2 A14 A15 A16 A17 A18
地铁线B(直线)经过车站:B1 B2 B3 B4 B5 T1B6 B7 B8 B9 B10 T2 B11 B12 B13 B14 B15

输入:输入两个不同的站名

输出:输出最少经过的站数,含输入的起点和终点,换乘网站仅仅计算一次

输入例子:A1 A3

输出例子:3

#include<stdio.h>

#include<string>

#include<queue>

#include<vector>

using namespace std;

 

#define MAX 35

#define SUBWAY_A 20

#define SUBWAY_B 15

typedef struct node{

       int adjvex;

       struct node *next;

}edgenode;

typedef struct{

       char name[10];

       bool flag;

       edgenode *link;

}vexnode;

 

const charsubway_name1[SUBWAY_A][10]={"A1","A2","A3","A4","A5","A6","A7","A8","A9","T1","A10","A11","A12","A13","T2","A14","A15","A16","A17","A18"};

const charsubway_name2[SUBWAY_B][10]={"B1","B2","B3","B4","B5","B6","B7","B8","B9","B10","B11","B12","B13","B14","B15"};

void creat(vexnode ga[]){

       int i;

       edgenode *p;

       for(i=0;i<MAX;i++){

                ga[i].link=NULL;

                ga[i].flag=true;

                if(i<SUBWAY_A)strcpy(ga[i].name,subway_name1[i]);

                elsestrcpy(ga[i].name,subway_name2[i-20]);

       }

       //A地铁建邻接表

       for(i=1;i<SUBWAY_A-1;i++){

               p=(edgenode*)malloc(sizeof(edgenode));

                p->adjvex=i-1;

                p->next=NULL;

                ga[i].link=p;

               p=(edgenode*)malloc(sizeof(edgenode));

                p->adjvex=i+1;

                p->next=NULL;

                ga[i].link->next=p;

                if(i==9){

                       p=(edgenode*)malloc(sizeof(edgenode));

                       p->adjvex=SUBWAY_A+4;

                        p->next=NULL;

                        ga[i].link->next->next=p;

                       p=(edgenode*)malloc(sizeof(edgenode));

                       p->adjvex=SUBWAY_A+5;

                        p->next=NULL;

                       ga[i].link->next->next->next=p;

                }

                else if(i==14){

                       p=(edgenode*)malloc(sizeof(edgenode));

                       p->adjvex=SUBWAY_A+9;

                        p->next=NULL;

                       ga[i].link->next->next=p;

                       p=(edgenode*)malloc(sizeof(edgenode));

                       p->adjvex=SUBWAY_A+10;

                        p->next=NULL;

                       ga[i].link->next->next->next=p;

                }

       }

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A-1;

       p->next=NULL;

       ga[0].link=p;

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=1;

       p->next=NULL;

       ga[0].link->next=p;

 

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A-2;

       p->next=NULL;

       ga[SUBWAY_A-1].link=p;

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=0;

       p->next=NULL;

       ga[SUBWAY_A-1].link->next=p;

 

       //B地铁建邻接表

       for(i=1;i<SUBWAY_B-1;i++){

                if(i==4||i==5||i==9||i==10)continue;

               p=(edgenode*)malloc(sizeof(edgenode));

                p->adjvex=SUBWAY_A+i-1;

                p->next=NULL;

                ga[i+SUBWAY_A].link=p;

               p=(edgenode*)malloc(sizeof(edgenode));

                p->adjvex=SUBWAY_A+i+1;

                p->next=NULL;

                ga[i+SUBWAY_A].link->next=p;

       }

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A+3;

       p->next=NULL;

       ga[SUBWAY_A+4].link=p;

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=9;

       p->next=NULL;

       ga[SUBWAY_A+4].link->next=p;

 

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=9;

       p->next=NULL;

       ga[SUBWAY_A+5].link=p;

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A+6;

       p->next=NULL;

       ga[SUBWAY_A+5].link->next=p;

 

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A+8;

       p->next=NULL;

       ga[SUBWAY_A+9].link=p;

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=14;

       p->next=NULL;

       ga[SUBWAY_A+9].link->next=p;

 

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=14;

       p->next=NULL;

       ga[SUBWAY_A+10].link=p;

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A+11;

       p->next=NULL;

       ga[SUBWAY_A+10].link->next=p;

 

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A+1;

       p->next=NULL;

       ga[SUBWAY_A].link=p;

 

       p=(edgenode*)malloc(sizeof(edgenode));

       p->adjvex=SUBWAY_A+SUBWAY_B-2;

       p->next=NULL;

       ga[SUBWAY_A+SUBWAY_B-1].link=p;

       //  打印各邻接节点

       for(i=0;i<MAX;i++){

               printf("%s:",ga[i].name);

               edgenode *s;

                s=ga[i].link;

                while(s!=NULL){

                       printf("->%s",ga[s->adjvex].name);

                        s=s->next;

                }

                printf("\n");

       }

       

}

int main(){

       vexnode ga[MAX];

       creat(ga);

       int i;

       char str[2][10];

       while(scanf("%s%s",str[0],str[1])!=EOF){

                int temp=0;

                for(i=0;i<MAX;i++){

                        ga[i].flag=true;

                       if(!strcmp(str[0],ga[i].name))temp=i;

                }

                queue<vexnode>q;

                q.push(ga[temp]);

                ga[temp].flag=false;

                int count=0;

                int start=0;

                int end=1;

                bool find_flag=false;

                while(!q.empty()){

                        if(find_flag) break;

                        count++;

                       printf("************************\n");

                        printf("第%d层搜索:",count);

                        int temp_end=end;               

                       while(start<temp_end){

                                printf("%s",q.front().name);

                               if(!strcmp(q.front().name,str[1])){

                                       find_flag=true;

                                        break;

                                }

                                edgenode *s;

                               s=q.front().link;

                                while(s!=NULL){

                                       if(ga[s->adjvex].flag){

                                               q.push(ga[s->adjvex]);

                                               ga[s->adjvex].flag=false;

                                               end++;

                                           //printf("%s ",ga[s->adjvex].name);

                                        }

                                       s=s->next;               

                               }

                                q.pop();

                                start++;

                        }

                        printf("\n");

                }

                printf("%d\n",count);

       }

       return 0;

}

14. 字串转换
问题描写叙述:
将输入的字符串(字符串仅包括小写字母‘a’到‘z’),依照例如以下规则,循环转换后输出:a->b,b->c,…,y->z,z->a。若输入的字符串连续出现两个字母同样时,后一个字母须要连续转换2次。

比如:aa 转换为 bc。zz 转换为 ab;当连续同样字母超过两个时,第三个出现的字母按第一次出现算。


要求实现函数:
void convert(char *input,char* output)
【输入】 char *input , 输入的字符串
【输出】 char *output ,输出的字符串
【返回】 无

#include<stdio.h>

#include<string.h>

#include<stdlib.h>

 

void convert(char *input,char* output)

{

         if(input==NULL)

                   return;

         chartemp='\0';

         intlen_input=strlen(input);

         inti;

         intflag=0;

 

         for(i=0;i<len_input;i++)

         {

                   if(input[i]!=temp)

                   {

                            output[i]=(input[i]-'a'+1)%26+'a';

                            temp=input[i];

                            flag=1;

                   }

                   else

                   {

                            if(flag==1)

                            {

                                     output[i]=(input[i]-'a'+2)%26+'a';

                                     temp=input[i];

                                     flag=0;

                            }

                            else

                            {

                                     output[i]=(input[i]-'a'+1)%26+'a';

                                     temp=input[i];

                                     flag=1;

                            }

                   }

         }

         output[i]='\0';

}

 

void main()

{

         char*input="xyz";

         charoutput[256];

//      scanf("%s",input);

         convert(input,output);

         printf("%s\n",output);

}

15. 在给定字符串中找出单词( “单词”由大写字母和小写字母字符构成,其它非字母字符视为单词的间隔,如空格、问号、数字等等;另外单个字母不算单词);找到单词后,依照长度进行降序排序,(排序时假设长度同样,则按出现的顺序进行排列),然后输出到一个新的字符串中。假设某个单词反复出现多次,则仅仅输出一次。假设整个输入的字符串中没有找到单词,请输出空串。

输出的单词之间使用一个“空格”隔开,最后一个单词后不加空格。
要求实现函数:
void my_word(charinput[], char output[])
【输入】 char input[], 输入的字符串
【输出】 char output[],输出的字符串
【返回】 无

#include <string.h> 

#include <stdlib.h> 

#include <stdio.h> 

 

void my_word(char input[],charoutput[]) 

   char *p; 

    char *temp; 

    char *word[10];  

   int len_input=strlen(input); 

   int i,j; 

   char except[] = ","; 

   char *blank = " "; 

    i=0;  

   for (i=0;i<len_input;i++) 

   { 

       if (input[i]<'A' || (input[i]>'Z'&&input[i]<'a') ||input[i]>'z') 

       { 

           input[i]=','; 

       } 

   } 

 

   j=0; 

   /*保存取出的单词*/ 

    p= strtok(input,except); 

    while(NULL!=p) 

    { 

        word[j++]=p; 

        p= strtok(NULL,except); 

    } 

     for(i=0;i<5;i++)

            printf("%s",word[i]);

   /*对单词依照长度降序排序,冒泡法*/ 

   for (i=0;i<5;i++) 

   { 

        for (j=1;j<5-i;j++) 

       { 

           if(strlen(word[j-1])<strlen(word[j])) 

           { 

                temp=word[j]; 

                word[j]=word[j-1]; 

                word[j-1]=temp; 

           } 

       } 

         

   } 

   /*删除同样单词*/ 

   for (i=0;i<5;i++) 

   { 

       for(j=i+1;j<5;j++) 

       { 

           if(strcmp(word[i],word[j])==0) 

                word[j]="\0"; 

       } 

   } 

   /*将单词连接起来输出*/ 

   for (j=0;j<5;j++) 

   { 

        if (0==j) 

      { 

           strncpy(output,word[j],strlen(word[j])+1); 

       } 

       else 

       { 

           strcat(output,blank); 

           strcat(output,word[j]); 

       } 

   } 

   return ; 

int main() 

 

   char input[] ="some local buses, some1234123drivers"; 

         printf("筛选之前的字符串:%s\n",input);

   char output[30]; 

   my_word(input,output); 

   printf("筛选之后的字符串:%s",output); 

   printf("\n"); 

   return 0; 

16. 数组中数字都两两同样,仅仅有一个不同。找出该数字:

int findUnique(int* a, int len)

{

        int i = 1;

        int temp =a[0];

        for(; i <len; i++)

        {

               temp= temp ^ a[i];

        }

        printf("%d", temp);

}

17.题目二:数组中数字两两同样。有两个不同,找出这两个:

 

#include <stdlib.h>

 

int a[] = {1,1,2,4,3,3,2,5};

 

int findXorSum(int* a, int len)

{

        int i = 0;

        int temp =0;

        for(; i <len; i++)

        {

               temp= temp ^ a[i];

        }

        return temp;

}

 

int findFirstBit1(int n) 

    int count =1; 

    while(!( n &1)) 

    { 

        n =n>>1; 

       count++; 

    } 

    returncount; 

 

int isBit1(int a, int count)

{

        a= a >> count-1;

        return(a & 1);

}

 

void findTwoUnique(int* a, int len)

{

        int i = 0;

        int m = 0, n= 0;

        int temp =findXorSum(a, len);

        int count =findFirstBit1(temp);

        for(; i <len; i++)

        {

               if(isBit1(a[i],count))

               {

                       m= m ^ a[i];

               }

               else

               {

                       n= n ^ a[i];

               }

        }

        printf("%d,%d", m, n);

}

 

int main()

{

        findTwoUnique(a,8);

}

18. 链表翻转。

给出一个链表和一个数k。比方链表1→2→3→4→5→6。k=2,则翻转后2→1→4→3→6→5,若k=3,翻转后3→2→1→6→5→4。若k=4,翻转后4→3→2→1→5→6,用程序实现

思想:採用遍历链表,分成length/k组,对每组进行逆转,逆转的同一时候要将逆转后的尾和头连接起来

//#include "stdafx.h"

#include "stdio.h"

#include "stdlib.h"

#include<malloc.h>

 

typedef struct Node{

         intvalue;

         Node*next;

}LinkList;

 

void Converse(LinkList* pPre,LinkList*pCur)

{ //链表逆转

         LinkList*p = NULL;

         LinkList*pNext = NULL;

         p= pPre->next;

         LinkList*p1  = NULL;

         if(pCur!=NULL)

                   pNext= pCur->next;

 

         while(p!=pNext)

         {

                   p1= p->next;

                   p->next= pPre;

                   pPre= p;

                   p= p1;

         }

}

 

int main()

{  

         intcount = 0, k,i=0,j=0,flag = 1,length=0,groups = 0;

         scanf("%d",&k);

         LinkList*pPre = (LinkList*)malloc(sizeof(LinkList));

         LinkList*pCur = (LinkList*)malloc(sizeof(LinkList));

         LinkList*pNext = (LinkList*)malloc(sizeof(LinkList));

         LinkList*head = NULL;

   LinkList* pTempTail = NULL; //指向逆转之后的尾部

         LinkList*pTempHead = NULL;

 

         pCur->value= 1;

         pPre= pCur;    //创建初始链表

         for(i=2;i<=6;i++){

                   LinkList*node = (LinkList*)malloc(sizeof(LinkList));

                   node->value= i;

                   pCur->next= node;

                   pCur= node;

         }

         pCur->next= NULL;//最后一定要置NULL,c++中用new则无须置NULL

        

         pCur= pPre;

         while(pCur!=NULL)

         {

                   length++;

                   pCur= pCur->next;

         }

         i=0;

         groups= length/k; //分成K段

         pCur= pPre;

         while(i<=groups)

         {

                   count= 0;

                   while(count<k-1 && i<groups)

                   {

                            pCur= pCur->next;

                            count++;

                   }

                           

                   if(i<groups)

                   {

                            pNext= pCur->next;

                            pTempHead= pCur;   /*没做翻转之前的头部,变成了翻转之后的尾部*/

                            if(flag== 0)

                            {

                                     pTempTail->next= pTempHead;

                            }

                            pTempTail= pPre;

                            Converse(pPre,pCur);

                            //pTempTail= pPre;

                            if(flag==1)

                            {

                                     head= pCur;

                                     flag= 0;

                            }

                            pCur= pNext;

                   }

                   else

                   {

                            pTempTail->next= pNext;

                   }

                   pPre= pCur;

                   i++;

         }

        

 

         pCur= head;

 

         while(j<length){

                   j++;

                   printf("%d",pCur->value);

                   pCur= pCur->next;

         }

         printf("\n");

//      system("pause");

         return0;

}

19. 链表相邻元素翻转,如a->b->c->d->e->f-g,翻转后变为:b->a->d->c->f->e->g

#include <stdio.h>

#include <stdlib.h>

#include <malloc.h>

 

typedef struct node{

         charval;

         structnode* pNext;        

}Node;

 

Node* CreateList(int n);

void Traverslist(Node* pHead);

Node* TransNeighbor(Node* pHead);

 

int main(){

         Node*pHead = CreateList(7);

         printf("beforetransform\n");

         Traverslist(pHead);

         TransNeighbor(pHead);

         printf("\naftertransform\n");

         Traverslist(pHead);

         getchar();

         return1;

}

//创建新链表

Node* CreateList(int n){

         Node*pHead = (Node*)malloc(sizeof(Node));

         Node*pTail = pHead;

         pTail->pNext=NULL;

         inti;

         for(i=0;i < n; i++){

       Node* pNew = (Node*)malloc(sizeof(Node));    

       pNew->val = 'a'+i;                            

       pTail->pNext = pNew;                        

       pNew->pNext = NULL;                           

       pTail = pNew;

                  

         }

         returnpHead;

}

 

void Traverslist(Node* pHead){

         Node*p = pHead->pNext;

         intisFirst = 0;

         while(p!=NULL)

{

                   if(isFirst==0)

{

                            printf("%c",p->val);

                            isFirst=1;

                   }else{

                            printf("->%c",p->val);

                   }                

                   p= p->pNext;

         }

         return;

}

 

Node* TransNeighbor(Node* pHead){

         Node*p = pHead->pNext;

         while(p->pNext!=NULL &&p->pNext->pNext!=NULL)

         {

                   charvalue = p->val;

                   p->val=p->pNext->val;

                   p->pNext->val=value;

                   p=p->pNext->pNext;

         }

         returnpHead;

}

20. 输入一串字符串,当中有普通的字符与括号组成(包含‘[’,']',要求验证括号是否匹配。假设匹配则输出0、否则输出1.

#include<stdio.h>

#include<malloc.h>

//#define MAX 100

int main()

{

         chara[100],c[]="(((1+2))";

         int i=0,j=0;;

         int flag=0;

         while(c[i]!=NULL&&flag==0)

         {

                   switch(c[i])

                   {

                   case('('):

                   case('['):

                            a[j++]=c[i];break;

                   case(')'):

                            if(a[j-1]=='(')

                            {

                                     a[j-1]='\0';

                                     j--;

                            }

                            else

                                     flag=1;

                            break;

                   case(']'):

                            if(a[j-1]=='[')

                            {

                                     a[j-1]='\0';

                                     j--;

                            }

                            else

                                     flag=1;

                            break;

 

                   }

                   i++;

         }

         if(j!=0) flag=1;

         printf("%d\n",flag);

         return 0;

}

方法2:#include<stdio.h>

#include<string.h>

#include <stdlib.h>  // !!!分配内存头文件

#define m 20

typedef char ElemType;

 typedef struct

{

 ElemType stack[m];

 int top;

}stacknode;

stacknode *sp;

Init(stacknode *st)

{

 st->top=0;

 return 0;

}

void Push(stacknode *st,ElemType x)

{

 if(st->top==m)

  printf("The stack isoverflow!\n");

 else

 {

  st->top=st->top+1;

  st->stack[st->top]=x;

 }

}

void Pop(stacknode *st)

{

 st->top=st->top-1;

}

main()

{

 char s[m]="(()";

 int i;

 printf("Creat astack!\n");

 sp = (stacknode*)malloc(sizeof(stacknode));  // !!!

加入的语句

 Init(sp);

 printf("Input aexpression:\n");

// gets(s);

 for(i=0;i<strlen(s);i++)

 {

  if(s[i]=='(')

   Push(sp,s[i]);

  if(s[i]==')')

   Pop(sp);

 }

 if(sp->top==0)

  printf("左右括号是匹配的!\n");

 else

     printf("左右括号是不匹配的!\n");

 return 0;

}

21.将第一行中含有第二行中“23”的数输出并排序

2.输入一行数字:123 423 5645 875 186523
在输入第二行:23

将第一行中含有第二行中“23”的数输出并排序
结果即:123 423 186523


#include<stdio.h>

#define M 20

 

int main()

{

         int a[M];

         int i,j,s,temp;

         int sort[M],t=0;

         char c=' ';

         i=0;

         while(c!='\n')

         {

                   scanf("%d%c",&temp,&c);

                   a[i++]=temp;

         }

         scanf("%d",&s);

         for(j=0;j<i;j++)

         {

                  temp=a[j];

                   if(temp%100==s)

                   {

                            sort[t++]=a[j];

                   }

                   else

                            temp/=10;

         }

         for(i=0;i<t-1;i++)

         for(j=0;j<t-i-1;j++)

         {

                   if(sort[j]>sort[j+1])

                   {

                            temp=sort[j+1];

                            sort[j+1]=sort[j];

                            sort[j]=temp;

                   }

         }

         for(i=0;i<t;i++)

                   printf("%d",sort[i]);

         printf("\n");

         return 0;

}


22输入m个字符串 和一个整数n, 把字符串M化成以N为单位的段,不足的位数用0补齐。

 n=8 m=9 

123456789划分为:12345678
90000000

123化为 12300000


#include<stdio.h>

#include<string.h>

 

int main()

{

         char c[200]={'\0'};

         scanf("%s",&c);

         int n,i,j;

         int len=strlen(c);

         scanf("%d",&n);

         for(i=1;i<=len;i++)

         {

                   j=i%n;

                   printf("%c",c[i-1]);

                   if(j==0)

                            printf("\n");

         }

         if(j!=0)

         for(i=j+1;i<=n;i++)

                   printf("0");

         return 0;

}


23将 电话号码 one two 。

。nine zero
翻译成1  2 。。9 0

中间会有double

比如输入:OneTwoThree
输出:123

输入:OneTwoDoubleTwo
输出:1222

输入:1Two2 输出:ERROR

输入:DoubleDoubleTwo 输出:ERROR

有空格,非法字符,两个Double相连,Double位于最后一个单词都错误


#include<stdio.h>

#include<stdlib.h>

#include<string.h>

int main()

{

         chara[11][11]={"zero","one","two","three","four","five","six","seven","eight","nine","double"};

         char temp[11], c=' ';

         int i,j,f,d=0;

         while(c!='\n')

         {

                   scanf("%s%c",&temp,&c);

                   f=0;

                   for(j=0;j<11;j++)

                   {

                            if(!strcmp(temp,a[j])&&j<10)

                            {

                                     printf("%d",j);

                                     f=1;

                                     if(d==1)

                                     {

                                               printf("%d",j);

                                               d=0;

                                     }

                            }

                            elseif(!strcmp(temp,a[j])&&j==10)

                            {

                                     d=1;

                                     f=1;

                            }

                   }

                   if(f==0)

                            break;

         }

         if(d==1||f==0)

                   printf("error\n");

         printf("\n");

         return 0;

}


24.将整数倒序输出,剔除反复数据

输入一个整数,如12336544,或1750,然后从最后一位開始倒过来输出。最后假设是0,则不输出。输出的数字是不带反复数字的,所以上面的输出是456321和571。假设是负数,比方输入-175。输出-571。


#include<stdio.h>

#include<stdlib.h>

#include<string.h>

#include<malloc.h>

 

int main()

{

         char*input=(char*)malloc(sizeof(char));

         scanf("%s",input);

         inta[10]={0},i,flag=0,flag1=0;

         int len=strlen(input);

         if(input[0]=='-')

         {

                   flag=1;

                   for(i=0;i<len;i++)

                            input[i]=input[i+1];

         }

         intlen1=strlen(input);

         int n[50],temp;

         int count=0;

         for(i=0;i<len1;i++)

         {

                   temp=input[i]-'0';

                   if(a[temp]==0)

                   {

                            n[count++]=temp;

                            a[temp]=1;

                   }

         }

         n[count]='\0';

         if(flag==1)

                   printf("-");

 

         for(intii=count-1;ii>=0;ii--)

         {

                   if(n[ii]!=0||flag1!=0)

                   {

                            printf("%d",n[ii]);

                            flag1=1;

                   }

         }

         printf("\n");

         return 0;

}

 


 

25.编程的时候,if条件里面的“(”、“)”括号常常出现不匹配的情况导致编译只是。请编敲代码检測输入一行if语句中的圆括号是否匹配正确。

同一时候输出语句中出现的左括号和右括号数量。如if((a==1)&&(b==1))是正确的,而if((a==1))&&(b==1))是错误的。注意if语句的最外面至少有一对括号。提示:用堆栈来做。

输入:if((a==1)&&(b==1))

输出:RIGTH 3 3

输入:if((a==1))&&(b==1))

输出:WRONG 3 4


#include<stdio.h>

#include<string.h>

int main()

{

         char s[800]={'\0'};

         scanf("%s",&s);

//    char s[]="if(())";

         int len=strlen(s);

         int i,left=0,right=0;

         int a[50],k=0,flag=1;

         for(i=0;i<len;i++)

         {

                   if(s[i]=='(')

                   {

                            left++;

                            a[k]=1;

                            k++;

                   }

                   elseif(s[i]==')')

                   {

                            right++;

                            if(a[k-1]==1&&k>0)

                            {

                                     a[k-1]=0;

                                     k--;

                            }

                            else

                                     flag=0;

                   }

                  if((i==2&&s[i]!='(')||(i==len-1&&s[i]!=')'))

                            flag=0;

         }

         if(a[0]==0&&flag!=0)

                   printf("RIGHT");

         else

                   printf("WRONG");

         printf("%d%d\n",left,right);

         return 0;

}


约瑟夫问题

输入一个由随机数组成的数列(数列中每一个数均是大于0的整数。长度已知)。和初始计数值m。从数列首位置開始计数,计数到m后。将数列该位置数值替换计数值m,并将数列该位置数值出列,然后从下一位置从新開始计数,直到数列全部数值出列为止。假设计数到达数列尾段,则返回数列首位置继续计数。

请编程实现上述计数过程,同一时候输出数值出列的顺序

比方:输入的随机数列为:3,1,2,4,初始计数值m=7,从数列首位置開始计数(数值3所在位置)
第一轮计数出列数字为2,计数值更新m=2。出列后数列为3,1,4,从数值4所在位置从新開始计数
第二轮计数出列数字为3,计数值更新m=3,出列后数列为1,4,从数值1所在位置開始计数
第三轮计数出列数字为1,计数值更新m=1,出列后数列为4。从数值4所在位置開始计数
最后一轮计数出列数字为4,计数过程完毕。
输出数值出列顺序为:2,3,1,4。

要求实现函数:
void array_iterate(int len, int input_array[], int m, int output_array[])

【输入】 int len:输入数列的长度;
int intput_array[]:输入的初始数列
int m:初始计数值

【输出】 int output_array[]:输出的数值出列顺序

【返回】 无

演示样例:
输入:int input_array[] = {3,1,2,4}。int len = 4, m=7
输出:output_array[] = {2,3,1,4}

解题思路:

每次出列一个数值。须要对m、input_array、output_array、输出位置outPos、起始位置startPos进行更新;

对于输出位置outPos的计算是关键!通过分析可知。outPos=(startPos+m-1)%num

代码实现:

view plaincopy to clipboardprint?

#include<stdio.h>

voidprint_array(int len, int array[]) 

    for(int i=0; i<len; i++) 

        printf("%d ", array[i]); 

    printf("\n"); 

//input_array:a[0]...a[len-1] 

voidarray_iterate(int len, int input_array[], int m, int output_array[]) 

    int startPos=0; 

    int outPos; 

    int nIter=len-1; 

    int num=len; 

    for(; nIter>=0; nIter--) 

    { 

        outPos=(m+startPos-1)%num; 

        m=input_array[outPos]; 

        startPos=outPos; 

        printf("outPos is %d, new m is%d\n", outPos, m); 

       output_array[len-nIter-1]=input_array[outPos]; 

        for(int i=outPos; i<num-1; i++) 

           input_array[i]=input_array[i+1]; 

        num--; 

        print_array(num, input_array); 

    } 

voidmain() 

    int input_array[]={3,1,2,4}; 

    int output_array[4]={0}; 

    array_iterate(4, input_array, 7,output_array); 

    print_array(4, output_array); 

27.统计数字出现的次数,最大次数的统计出来

举例:

输入:323324423343

输出:3,6

 

#include<stdio.h>

#include<stdlib.h>

#include<string.h>

int main()

{

    char*num="323324423343";

    inta[10]={0};

    intlen=strlen(num);

    inti,j,temp,count=0,maxnum=0;

    printf("%d\n",len);

 

    for(i=0;i<len;i++)

    {

       temp=num[i]-'0';

       a[temp]++;

    }

    inttemp1=a[0];

    for(j=0;j<10;j++)

    {

       if(a[j]!=0)

       {

           count++;

           temp1=(temp1>a[j])?temp1:a[j];

           printf("%d%d\n",a[j],j);

       }

    }

    printf("数字出现次数为:%d\n",count);

    printf("最大次数为:%d\n",temp1);

    return0;

}

28. .字符串首字母转换成大写

举例:

输入:this is a book

返回:This Is A Book

 

#include<stdio.h>

#include<stdlib.h>

#include<string.h>

int main()

{

         charinput[]="this is a book";

         charoutput[256]={'\0'};

         int i,len;

         len=strlen(input);

         printf("变换前的字符串为:%s\n",input);

         for(i=0;i<len;i++)

         {

                   if(input[0]!='')

                            input[0]-=32;

                   if(input[i]=='')

                            input[i+1]-=32;

                   output[i]=input[i];

         }

         printf("变换后的字符串为:%s\n",output);

}

29. 子串分离 

题目描写叙述:   

通过键盘输入随意一个字符串序列,字符串可能包括多个子串,子串以空格分隔。请编写一

个程序,自己主动分离出各个子串,并使用’,’将其分隔,而且在最后也补充一个’,’并将子

串存储。  

假设输入“abc def gh i        d”,结果将是abc,def,gh,i,d, 

要求实现函数:   

voidDivideString(const char *pInputStr, long lInputLen, char *pOutputStr); 

【输入】  pInputStr  输入字符串 

        lInputLen  输入字符串长度                  

【输出】  pOutputStr  输出字符串,空间已经开辟好。与输入字符串等长。 

 


#include <stdio.h> 

#include<stdlib.h>

#include<malloc.h>

#include<string.h>

void DivideString(const char *pInputStr, long lInputLen, char*pOutputStr) 

 

    int cnt; 

         const char*p=pInputStr;

    while(*p!=NULL) 

    { 

       if(*p!=' ') 

       {   cnt = 0; 

           *pOutputStr++ = *p++; 

       } 

       else 

       {   cnt++; 

           p++; 

           if(cnt==1)   

               *pOutputStr++ = ','; 

 

        }        

    } 

    *pOutputStr++ = ','; 

    *pOutputStr = '\0'; 

 

void main() 

    char *str = "abcdef  gh i    d"; 

    long len =strlen(str); 

    char *outstr =(char*)malloc(sizeof(str)); 

    //char outstr[100]; 

   DivideString(str,len,outstr); 

   printf("%s",outstr); 

   printf("\n"); 


 


 


posted @ 2016-02-28 15:55  zfyouxi  阅读(364)  评论(0编辑  收藏  举报