//题目1:找到数组中出现次数超过一半的元素
//解法:使用另外不到1/2的元素与所求元素进行抵消
//整个数组抵消不同的两个数,则超过1/2的元素还是原来的元素
public class Main {
public static void main(String[] args) throws Exception {
System.out.println(findNum(new int[]{1,2,2,3,4,4,4,4,4}));
}
public static int findNum(int[] input) throws Exception {
int num = input[0];
int count = 1;
for(int i = 1;i<input.length;i++){
if(count == 0){
num = input[i];
count = 1;
continue;
}
if(input[i] == num){
count++;
}else{
count--;
}
}
return num;
}
}
//题目2:找到数组中3个出现次数都超过总数1/4的元素
//解法:与题目1思路基本相同,建立三个num,让这三个num中的数字与另外不到1/4的数字进行抵消
public class Main {
public static void main(String[] args) throws Exception {
System.out.println(findNum(new int[]{1,1,2,2,2,3,3,3,4,4,4}));
}
public static int[] findNum(int[] input) throws Exception {
int num1 = -1;
int num2 = -1;
int num3 = -1;
int count1 = 0;
int count2 = 0;
int count3 = 0;
for(int i = 0;i<input.length;i++){
if(input[i] == num1 && count1!=0){
count1++;
continue;
}else if(input[i] == num2 && count2!=0){
count2++;
continue;
}else if(input[i] == num3 && count3!=0){
count3++;
continue;
}
if(count1 == 0){
num1 = input[i];
count1 = 1;
continue;
}
if(count2 == 0){
num2 = input[i];
count2 = 1;
continue;
}
if(count3 == 0){
num3 = input[i];
count3 = 1;
continue;
}
count1--;
count2--;
count3--;
}
return new int[]{num1,num2,num3};
}
} 
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