原题链接:小O的数字
#include<stdio.h>
int main()
{
int i,n,k,kk,s,x;
char a0[5][4]={"***","* *","* *","* *","***"};
char a1[5][4]={" *"," *"," *"," *"," *"};
char a2[5][4]={"***"," *","***","* ","***"};
char a3[5][4]={"***"," *","***"," *","***"};
char a4[5][4]={"* *","* *","***"," *"," *"};
char a5[5][4]={"***","* ","***"," *","***"};
char a6[5][4]={"***","* ","***","* *","***"};
char a7[5][4]={"***"," *"," *"," *"," *"};
char a8[5][4]={"***","* *","***","* *","***"};
char a9[5][4]={"***","* *","***"," *","***"};
while(scanf("%d",&n)!=EOF)
{
kk=0,s=n;
while(s!=0)
{
s=s/10;
kk++;
}kk--;
for(i=0;i<5;i++)
{
k=1;
for(x=0;x<kk;x++)
k*=10;
while(k!=0)
{
switch((n/k)%10)
{
case 0:
printf("%s ",a0[i]);
break;
case 1:
printf("%s ",a1[i]);
break;
case 2:
printf("%s ",a2[i]);
break;
case 3:
printf("%s ",a3[i]);
break;
case 4:
printf("%s ",a4[i]);
break;
case 5:
printf("%s ",a5[i]);
break;
case 6:
printf("%s ",a6[i]);
break;
case 7:
printf("%s ",a7[i]);
break;
case 8:
printf("%s ",a8[i]);
break;
case 9:
printf("%s ",a9[i]);
break;
}
k/=10;
}
printf("\n");
}
}
return 0;
}解题思路:
注意事项:
参考代码:
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