我正在寻找漂亮和干净的方式来查看数组中是否有三个相等的数字.
现在我有这个:
for (int i = 0; i < nr ; i++)
{
if(a[i] == 1){one++;}
else if(a[i] == 2){two++;}
else if(a[i] == 3){three++;}
else if(a[i] == 4){four++;}
else if(a[i] == 5){five++;}
else if(a[i] == 6){six++;}
}
if(one >= 3){
printf("Tre tal finns i ettor, 3p\n");
}else if(two >= 3){
printf("Tre tal finns i tvår, 6p\n");
}else if(three >= 3){
printf("Tre tal finns i treor, 9p\n");
}else if(four >= 3){
printf("Tre tal finns i fyror, 12p\n");
}else if(five >= 3){
printf("Tre tal finns i femmor, 15p\n");
}else if(six >= 3){
printf("Tre tal finns i sexor, 18p\n");
}
其中(整数)是5个元素的数组(包含元素1-6),"nr"是跟踪数组长度的变量.
如果有人有更好的方法来做到这一点,请回复.
int histogram[n]; //variable length array are fine in c99, if using older c - malloc
for (int i = 0; i < n; i++) histogram[i] = 0; //init
for (i = 0; i < nr; i++)
histogram[a[i]]++;
for (i = 0; i < n; i++)
if (histogram[i] >= 3) //found it
//....