摘要:
select count(c.channel_name),c.channel_name from channel c GROUP BY c.channel_name HAVING count(c.channel_name)!=1 阅读全文
摘要:
f(n)=n*(n-1)*……*1 public int fun(int n) { if(n==0) return 1;//递归出口 return fun(n-1)*n;} 注:使用递归方法解决问题,必须有一个明确的终止条件,即递归出口。 阅读全文