所以我对C++还不熟悉,今天我决定坐下来了解链表是如何工作的.到目前为止,我有很多乐趣,但是当我尝试以相反的顺序打印我的链接列表时遇到了一个问题(而不是颠倒链接列表的顺序!)
另外,我想在没有双链表的情况下这样做:
#include <iostream>
#include <string>
using namespace std;
class LinkedList
{
public:
LinkedList()
{
head = NULL;
}
void addItem(string x)
{
if(head == NULL)
{
head = new node();
head->next = NULL;
head->data = x;
} else {
node* temp = head;
while(temp->next != NULL)
temp = temp->next;
node* newNode = new node();
newNode->data = x;
newNode->next = NULL;
temp->next = newNode;
}
}
void printList()
{
node *temp = head;
while(temp->next != NULL)
{
cout << temp->data << endl;
temp = temp->next;
}
cout << temp->data << endl;
}
void addToHead(string x)
{
node *temp = head;
head = new node;
head->next = temp;
head->data = x;
}
int countItems()
{
int count = 1;
for(node* temp = head; temp->next != NULL; temp = temp->next)
++count;
return count;
}
void printReverse()
{
node* temp2;
node* temp = head;
while(temp->next != NULL)
temp = temp->next;
//Print last node before we enter loop
cout << temp->data << endl;
for(double count = countItems() / 2; count != 0; --count)
{
//Set temp2 before temp
temp2 = head;
while(temp2->next != temp)
temp2 = temp2->next;
cout << temp2->data << endl;
//Set temp before temp2
temp = head;
while(temp->next != temp2)
temp = temp->next;
cout << temp->data << endl;
}
cout << "EXIT LOOP" << endl;
}
private:
struct node
{
string data;
node *next;
}
*head;
};
int main()
{
LinkedList names;
names.addItem("This");
names.addItem("is");
names.addItem("a");
names.addItem("test");
names.addItem("sentence");
names.addItem("for");
names.addItem("the");
names.addItem("linked");
names.addItem("list");
names.printList();
cout << endl;
names.addToHead("insert");
names.printList();
cout << endl;
cout << names.countItems() << endl;
cout << "Print reverse: " << endl;
names.printReverse();
cout << endl;
return 0;
}
现在我不确定为什么我的代码崩溃,任何帮助表示赞赏!
谢谢!
在其中printList,您还必须检查head == NULL,否则您正在访问指向的指针的成员NULL。以下应该有效。
void printList()
{
node *temp = head;
while(temp != NULL) // don't access ->next
{
cout << temp->data << endl;
temp = temp->next;
}
}
我printReverse()真的不明白为什么你需要一半的元素计数来打印并在每次迭代中打印两个元素。但是,这里确实不需要 for 循环。您可以在循环结束后立即停止temp == head,因为那时您刚刚打印了头部。并且仅打印一个元素,该元素的下一个指针指向先前打印的元素。
解决该问题的另一种递归尝试如下所示:
void printReverse()
{
printReverseRecursive(head);
}
void printReverseRecursive(node *n)
{
if(n) {
printReverseRecursive(n->next);
cout << n->data << endl;
}
}
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