找幸运数

题目描述

数字8最多的那个数为幸运数。

输入n和n个整数，找这n个数中的幸运数。在主函数中调用ndigit函数，判断某个整数x含数字8的个数。如果有多个幸运数输出第一个幸运数，如果所有的数中都没有含数字8，则输出NO.

函数int ndigit（int n,int k)功能：统计整数n中含数字k的个数。

输入描述

输入n个n个整数

输出描述

幸运数

输入样例

5 568 567 328 48768 8688

输出样例

8688

---

ANSWER(with a little presentation error)

#include <stdio.h>

#include <stdlib.h>

//I think I should improve my POOR English, so all the comments are written in English

int ndigit (int n, int k);

int main()

{

	/**

	 * @param n INPUT 1

	 * @param num the temp of the number in INPUT

	 * @param luckyNum the lucky number

	 * @param luckyDigCount the count of lucky digit in the lucky number

	 */

	int n, i, num, luckyNum = 0, luckyDigCount = 0;

	//get the INPUT

	scanf("%d", &n);

	//get n numbers from console

	//and find the lucky number

	for (i = 0; i < n; i++)

	{

		//get the input

		scanf("%d", &num);

		//if the count of lucky digit in current number more than current lucky number's

		if (ndigit(num, 8) > luckyDigCount)

		{

			//set current number as lucky number

			luckyDigCount=ndigit(num,8);

			luckyNum = num;

		}

	}

	//if lucky number doesn't have a lucky digit

	//that means there is no lucky number in this test case

	//so, Print "NO"

	if (luckyDigCount==0)

	{

		printf("NO");

	}

	else

	{

		//Print the lucky number

		printf("%d\n", luckyNum);

	}

}

/**

 * get the count of lucky digit in the param n

 * @param  n test number

 * @param  k lucky digit

 * @return   the count of lucky digit in the param n

 */

int ndigit (int n, int k)

{

	int count = 0;

	for (; n; n /= 10)

	{

		if (n%10 == k)

		{

			count++;

		}

	}

	return count;

}

---

SUMMARY

What if the OUTPUT is the biggest lucky number?

Add a judgement statement,that compare current number to the previous lucky number, after we ensure current number is one of the lucky numbers.