简单枚举类型——植物与颜色（枚举类型+switch语句）

think:

1注意细节（单词输入是否正确，花朵的颜色种类需要注意）

2enum和switch的用法

3enum集合内默认下标从0开始

sdut原题链接

简单枚举类型——植物与颜色

Time Limit: 1000MS Memory Limit: 65536KB

Problem Description

请定义具有red, orange, yellow, green, blue, violet六种颜色的枚举类型color，根据输入的颜色名称，输出以下六种植物花朵的颜色：

Rose(red), Poppies(orange), Sunflower(yellow), Grass(green), Bluebells(blue), Violets(violet)。如果输入的颜色名称不在枚举类型color中，例如输入purple，请输出I don’t know about the color purple.

Input

输入数据有多行，每行有一个字符串代表颜色名称，颜色名称最多30个字符，直到文件结束为止。

Output

输出对应颜色的植物名称，例如：Bluebells are blue. 如果输入的颜色名称不在枚举类型color中，例如purple, 请输出I don’t know about the color purple.

Example Input

blue

yellow

purple

Example Output

Bluebells are blue.

Sunflower are yellow.

I don’t know about the color purple.

Hint

请用枚举类型实现。

Author

lxh

以下为accepted代码

#include <stdio.h>
#include <string.h>
int main()
{
enum color {red, orange, yellow, green, blue, violet, no};
enum color a;
char st[44];
while(scanf("%s", st) != EOF)
{
if(strcmp(st, "red") == 0)
a = red;
else if(strcmp(st, "orange") == 0)
a = orange;
else if(strcmp(st, "yellow") == 0)
a = yellow;
else if(strcmp(st, "green") == 0)
a = green;
else if(strcmp(st, "blue") == 0)
a = blue;
else if(strcmp(st, "violet") == 0)
a = violet;
else
a = no;
//printf("a:%d\n", a);
switch(a)
{
case red: printf("Rose are red.\n"); break;
case orange: printf("Poppies are orange.\n"); break;
case yellow: printf("Sunflower are yellow.\n"); break;
case green: printf("Grass are green.\n"); break;
case blue: printf("Bluebells are blue.\n"); break;
case violet: printf("Violets are violet.\n"); break;
case no: printf("I don't know about the color %s.\n", st); break;
}
}
return 0;
}

/***************************************************
User name:
Result: Accepted
Take time: 0ms
Take Memory: 108KB
Submit time: 2017-03-01 16:16:03
****************************************************/