C/C++ 笔试、面试题目大汇总_笔试题目

C/C++ 笔试、面试题目大汇总

10-15 23:59:20 来源：http://www.qz26.com 笔试题目 阅读：8389次

导读：return head;Node *p1 = head ;Node *p2 = p1->next ;Node *p3 = p2->next ;p1->next = NULL ;while ( p3 != NULL ){p2->next = p1 ;p1 = p2 ;p2 = p3 ;p3 = p3->next ;}p2->next = p1 ;head = p2 ;return head ;}(2)已知两个链表head1 和head2 各自有序，请把它们合并成一个链表依然有序。(保留所有结点，即便大小相同）Node * Merge(Node *head1 , Node *head2){if ( head1 == NULL)return head2 ;if ( head2 == NULL)return head1 ;Node *head = NULL ;Node *p1 = NULL;Node *p2 = NULL;if ( head1->data < head

C/C++ 笔试、面试题目大汇总,标签：银行笔试题目,企业笔试题目,http://www.qz26.com

return head;

Node *p1 = head ;

Node *p2 = p1->next ;

Node *p3 = p2->next ;

p1->next = NULL ;

while ( p3 != NULL )

{

p2->next = p1 ;

p1 = p2 ;

p2 = p3 ;

p3 = p3->next ;

}

p2->next = p1 ;

head = p2 ;

return head ;

}

(2)已知两个链表head1 和head2 各自有序，请把它们合并成一个链表依然有序。(保留所有结点，即便大小相同）

Node * Merge(Node *head1 , Node *head2)

{

if ( head1 == NULL)

return head2 ;

if ( head2 == NULL)

return head1 ;

Node *head = NULL ;

Node *p1 = NULL;

Node *p2 = NULL;

if ( head1->data < head2->data )

{

head = head1 ;

p1 = head1->next;

p2 = head2 ;

}

else

{

head = head2 ;

p2 = head2->next ;

p1 = head1 ;

}

Node *pcurrent = head ;

while ( p1 != NULL && p2 != NULL)

{

if ( p1->data <= p2->data )

{

pcurrent->next = p1 ;

pcurrent = p1 ;

p1 = p1->next ;

}

else

{

pcurrent->next = p2 ;

pcurrent = p2 ;

p2 = p2->next ;

}

if ( p1 != NULL )

pcurrent->next = p1 ;

if ( p2 != NULL )

pcurrent->next = p2 ;

return head ;

}

(3)已知两个链表head1 和head2 各自有序，请把它们合并成一个链表依然有序，这次要求用递归方法进行。 (Autodesk)

答案：

Node * MergeRecursive(Node *head1 , Node *head2)

{

if ( head1 == NULL )