9.Fizz Buzz
Given number n. Print number from 1 to n. But:
when number is divided by 3, print "fizz".
when number is divided by 5, print "buzz".
when number is divided by both 3 and 5, print "fizz buzz".
Example
If n = 15, you should return:
[
"1", "2", "fizz",
"4", "buzz", "fizz",
"7", "8", "fizz",
"buzz", "11", "fizz",
"13", "14", "fizz buzz"
]
Challenge
Can you do it with only one if statement?
看了一些答案使用了多个if,这里给出几种方案给大家参考下
1、建立HashMap,将3,6,9,12,5,10,0(i%15==0)所对应的字符串分别映射,这样一个if(map.containsKey(i%15))即可
public static HashMap<Integer,String> map = new HashMap<>();
static{
map.put(3,"fizz");
map.put(6,"fizz");
map.put(9,"fizz");
map.put(12,"fizz");
map.put(5,"buzz");
map.put(10,"buzz");
map.put(0,"fizz buzz");
}
public List<String> fizzBuzz(int n) {
List<String> ret = new ArrayList<>();
for(int i=1;i<=n;i++){
int key = i%15;
if(map.containsKey(key)){
ret.add(map.get(key));
}else{
ret.add(""+i);
}
}
return ret;
}2、对1进行优化,只映射3,5,8,这里需要一点数学技巧,大家看代码就理解了
public static HashMap<Integer,String> map = new HashMap<>();
static{
map.put(3,"fizz");
map.put(5,"buzz");
map.put(8,"fizz buzz");
}
public List<String> fizzBuzz(int n) {
List<String> ret = new ArrayList<>();
for(int i=1;i<=n;i++){
int key = f(i,3)+f(i,5);
if(map.containsKey(key)){
ret.add(map.get(key));
}else{
ret.add(""+i);
}
}
return ret;
}
private int f(int i,int k){
return (k-i%k)*((k-i%k)/k);
}3、利用&&的截断功能
public List<String> fizzBuzz(int n) {
List<String> ret = new ArrayList<>(n);
for(int i=1;i<=n;i++){
String str = null;
boolean bool1 = i%3==0&&(str="fizz")!=null;
boolean bool2 = i%5==0&&(str="buzz")!=null&& i%3==0&&(str="fizz buzz")!=null;
if(str==null){
ret.add(""+i);
}else {
ret.add(str);
}
}
return ret;
}暂时想到这些,欢迎指正
java
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