正如您将在以下程序的注释中看到的那样,我应该创建一个列表,存储从1到1000的所有素数并释放节点。
只有两个功能是我的工作。但是,我还没弄清楚为什么这个程序不能编译。你们看到了这个错误吗?这是一本已经完成的作业,所以这仅供我个人参考。
#include <stdio.h>
#include <stdlib.h>
#include <math.h>
/* given data structure declaration */
struct record {
int data;
struct record * next;
};
typedef struct record RecordType;
/* DO NOT MODIFY */
/* print a list */
void print_list(RecordType * list)
{
RecordType * visitor = list;
int count = 0;
while (visitor != NULL)
{
printf("%d ", visitor->data);
visitor = visitor->next;
count++;
}
printf("\n");
printf("There are %d items in the list.\n", count);
}
/* MY WORK HERE */
/* free every node in the list */
void free_list(RecordType * list)
{
while (list->data != 2){
free(list->next);
list->next = list;
}
}
/* MY WORK HERE */
/* this function may call other functions created by students */
/* create a list storing all prime numbers in [1, 1000] in ascending order */
/* return a pointer to the starting point of the list */
RecordType * create_list_prime_in_1_to_1000()
{
RecordType * begin, *tail, *temp;
int i = 0;
begin = malloc(sizeof(RecordType));
begin->data = 0;
begin->next = NULL;
tail = begin;
while(i<1000){
temp = malloc(sizeof(RecordType));
temp -> data = ++i;
tail -> next = temp;
tail -> temp;
tail -> next = NULL;
}
}
int isPrime(int n){
int d;
for (d = 2; d < n; d = d + 1)
if (n % d == 0)
return 0;
return 1;
}
/* DO NOT MODIFY */
/* main program */
int main(void)
{
RecordType * start;
/* create a linked list to store all the prime numbers in 1 - 10 */
/* this is a naive way by hard-coding */
start = malloc(sizeof(RecordType));
start->data = 2;
start->next = malloc(sizeof(RecordType));
start->next->data = 3;
start->next->next = malloc(sizeof(RecordType));
start->next->next->data = 5;
start->next->next->next = malloc(sizeof(RecordType));
start->next->next->next->data = 7;
start->next->next->next->next = NULL;
print_list(start);
free_list(start);
/* i am expected to expected to build a list iteratively rather than hard-code */
start = create_list_prime_in_1_to_1000();
print_list(start);
free_list(start);
return 0;
}
答案 0 :(得分:4)
您将tail
声明为:
RecordType * begin, *tail, *temp;
和RecordType
as:
struct record {
int data;
struct record * next;
};
typedef struct record RecordType;
接下来你有:
tail -> temp;
不起作用RecordType
没有名为temp的成员。
我认为应该是:
tail = temp;
运行时错误的原因似乎是因为:
void free_list(RecordType * list)
{
while (list->data != 2){
free(list->next);
list->next = list;
}
}
这是不正确的。你需要这样的东西:
void free_list(RecordType * list)
{
// keep going till there are nodes.
while (list){
// save the link to the rest of the nodes.
RecordType *temp = list->next;
// free the current node.
free(list);
// repeat the process starting at the next node.
list = temp;
}
}