这是我在日常平凡有时间的时刻做的一些算法上的题目
想看更新请移步这里
题目: Climbing Stairs
形貌
You are climbing a stair case.It takes n steps to reach to the top
Each time you can either climb 1 or 2 steps. In how many distinct
ways can you climb to the top?
Note: Given n will be a positive integer.
解法
这个题目当时拿到的时刻是完整没有思绪的,背面上网查询了一下这个题目,知道了运用
斐波那契数列就可以够解这道题目,`F(0)=1,F(1)=1, F(n)=F(n-1)+F(n-2)(n>=2
,n∈N*)`固然百度功课帮上面也有响应的解法,套路就是
题目为一次能够走一步或两步:
a[1]=1;a[2]=2;
假定i的局限为3~n(n 为楼梯数),关系式为:
a[i]=a[i-1]+a[i-2];
若题目为一次能够走一步或两步或三步:
a[1]=1;a[2]=2;a[3]=4;
假定i的局限为4~n(n为楼梯数),关系式为:
a[i]=a[i-1]+a[i-2]+a[i-3];
然则当初看到这个数列的公式,第一主意是运用递归,然后,因为客栈溢出,失利了
再看看背面的百度功课帮的谁人公式,再遐想一下数列,因而想到了运用数列如许的
构造来处理
/**
* @param {number} n
* @return {number}
*/
var climbStairs = function(n) {
if (isNaN(n)) return -1;
if (n<=0) return -1;
if (n<=2) return n;
if (n>=3) {
var res = [1,2];
for(var i=2;i<n;i++){
res[i] = res[i-1] + res[i-2];
}
return res[n-1];
}
};
题目: Find the odd int
形貌
Given an array, find the int that appears an odd number of times.
There will always be only one integer that appears an odd number
of times.
解法
这是我的解法,写的真的很丑,勿喷哦
function findOdd(A) {
//happy coding!
let indecies = [];
A.forEach(a => {
let idx = A.indexOf(a);
let index = [];
while (idx !== -1) {
index.push(idx);
idx = A.indexOf(a, idx + 1);
}
indecies.push(index);
});
const a = indecies.filter(index => (index.length % 2 !== 0));
return A[a[0][0]];
}
然后是大神的解法,运用的是位运算(说实话,还不是很懂位运算,假如有什么看法,迎接留言)
function findOdd(A) {
//happy coding!
return A.reduce((a, b) => a^b);
}
题目:You’re a square!
形貌
Given an integral number, determine if it's a square number:
isSquare(-1) => false
isSquare( 3) => false
isSquare( 4) => true
isSquare(25) => true
isSquare(26) => false
解法
这道就简朴了
var isSquare = function(n){
return Number.isInteger(Math.sqrt(n));
}
题目:Strings to numbers
形貌
You are given an array of numbers in string form. Your task is to
convert this to an array of numbers.
Your function can only be a maximum of 30 characters long
(not including whitespaces)! I have limited the char count
because there is a very short and easy way to achieve this task.
Here is an example of what your function needs to return:
['1','2','3'] => [1,2,3]
Edge Cases:
1 - If your function comes up against a value that isn't a number
its place in the array must be substituted with NaN.
2 - An empty array must return an empty array.
解法
这道题主假如有一个代码字数限定,只能在30个字符之内,运用了ES6的箭头函数
var convert = a => a.map(n => n*1)
题目:Thinkful – List and Loop Drills: Inverse Slicer
形貌
You're familiar with list slicing in Python and know,
for example, that:
>>> ages = [12, 14, 63, 72, 55, 24]
>>> ages[2:4]
[63, 72]
>>> ages[2:]
[63, 72, 55, 24]
>>> ages[:3]
[12, 14, 63]
write a function inverse_slice() that takes three arguments:
a list items, an integer a and an integer b. The function should
return a new list with the slice specified by items[a:b] excluded
For example:
>>>inverse_slice([12, 14, 63, 72, 55, 24], 2, 4)
[12, 14, 55, 24]
The input will always be a valid list, a and b will always be
different integers equal to or greater than zero, but they may
be zero or be larger than the length of the list.
解法
这道题也相对简朴
function inverseSlice(items, a, b) {
return items.filter((item, index) => !((index >= a) && (index < b)));
}
题目:Get all array elements except those with specified indexes
形貌
Extend the array object with a function to return all elements
of that array, except the ones with the indexes passed in the
parameter.
For example:
var array = ['a', 'b', 'c', 'd', 'e'];
var array2 = array.except([1,3]);
// array2 should contain ['a', 'c', 'e'];
The function should accept both array as parameter but also a
single integer, like this:
var array = ['a', 'b', 'c', 'd', 'e'];
var array2 = array.except(1);
// array2 should contain ['a', 'c', 'd', 'e'];
解法
我的解法
Array.prototype.except = function(keys)
{
if (typeof keys === 'number') {
return this.filter((item, index) => index !== keys);
}
if (Array.isArray(keys)) {
return this.filter((item, index) => !keys.includes(index));
}
return -1;
}
大神的解法
Array.prototype.except = function(keys)
{
if(!Array.isArray(keys)) keys = [keys];
return this.filter((a,i) => !keys.includes(i));
}
题目:Sum of a Sequence [Hard-Core Version]
形貌
The task is simple to explain: simply sum all the numbers from
the first parameter being the beginning to the second parameter
being the upper limit (possibly included), going in steps
expressed by the third parameter:
sequenceSum(2,2,2) === 2
sequenceSum(2,6,2) === 12 // 2 + 4 + 6
sequenceSum(1,5,1) === 15 // 1 + 2 + 3 + 4 + 5
sequenceSum(1,5,3) === 5 // 1 + 4
If it is an impossible sequence (with the beginning being larger
the end and a positive step or the other way around), just
return 0. See the provided test cases for further examples :)
Note: differing from the other base kata, much larger ranges are
going to be tested, so you should hope to get your algo optimized
and to avoid brute-forcing your way through the solution.
解法
这道题有点意义,仔细的人就会发明给出的例子内里能够看出一些等差数列的影子,那末我们
就可以够根据等差数列的方法来解这道题了,等差数列乞降公式:(首项 + 末项)* 项数 / 2
function sequenceSum(begin, end, step){
//your code here
const n = Math.floor((end - begin) / step) + 1;
if (n<0) return 0;
const An = begin + ((n-1) * step);
return n * (begin + An) / 2;
}
注重:这内里我们需请求项数N
和末项An
,至于N
怎样求的,那就要靠本身去发明规律
题目:Array.prototype.size()
形貌
Implement Array.prototype.size() - without .length !
Implement Array.prototype.size(), which should simply return
the length of the array. But do it entirely without using
Array.prototype.length!
Where .length is a property, .size() is a method.
Rules
Because it is quite impossible to disable [].length, and because
filtering for "length" is an iffy proposition at best,
THIS KATA WORKS ON THE HONOUR SYSTEM.
You may cheat. But you may have trouble sleeping. Or $DEITY may
kill a puppy.
You need not support sparse arrays (but you may!). All testing
will be done with dense arrays.
Values will not be undefined. You need only support actual, real
arrays.
Your method needs to be read only. Arguments must be ignored. The
this object must not be modified.
解法
我的解法
Array.prototype.size = function () {
var i = 0;
while (this[i] !== undefined) i++;
return i;
};
大神的解法
Array.prototype.size = function() {
return this.reduce(r => r + 1, 0);
};
在这里看了下大神的解法,让我对reduce函数又有了新的明白
题目:Find the smallest integer in the array
形貌
Find the smallest integer in the array.
Given an array of integers your solution should find the smallest
integer. For example:
Given [34, 15, 88, 2] your solution will return 2
Given [34, -345, -1, 100] your solution will return -345
You can assume, for the purpose of this kata, that the supplied
array will not be empty.
解法
我的解法
function findSmallestInt(args) {
return args.sort((a, b) => {
return a - b;
})[0];
}
大神的解法
function findSmallestInt(args) {
return Math.min(...args);
}
题目:Replace With Alphabet Position
形貌
Welcome. In this kata you are required to, given a string,
replace every letter with its position in the alphabet. If
anything in the text isn't a letter, ignore it and don't
return it. a being 1, b being 2, etc. As an example:
alphabet_position("The sunset sets at twelve o' clock.")
Should return "20 8 5 19 21 14 19 5 20 19 5 20 19 1 20 20 23
5 12 22 5 15 3 12 15 3 11" (As a string.)
解法
我的解法
function alphabetPosition(text) {
let alphabet = {};
let arr = [];
const lowCaseText = text.toLowerCase();
for (let i = 0; i < 26; i++) {
alphabet[(String.fromCharCode((65+i))).toLowerCase()] = (i + 1);
}
for (let j = 0; j < text.length; j++) {
if (alphabet[lowCaseText[j]]) {
arr.push(alphabet[lowCaseText[j]]);
}
}
return arr.join(' ');
}
大神的解法
function alphabetPosition(text) {
var result = "";
for (var i = 0; i < text.length; i++){
var code = text.toUpperCase().charCodeAt(i)
if (code > 64 && code < 91) result += (code - 64) + " ";
}
return result.slice(0, result.length-1);
}
题目:GetSum
形貌
Given two integers, which can be positive and negative, find the
sum of all the numbers between including them too and return it.
If both numbers are equal return a or b.
Note! a and b are not ordered!
Example:
GetSum(1, 0) == 1 // 1 + 0 = 1
GetSum(1, 2) == 3 // 1 + 2 = 3
GetSum(0, 1) == 1 // 0 + 1 = 1
GetSum(1, 1) == 1 // 1 Since both are same
GetSum(-1, 0) == -1 // -1 + 0 = -1
GetSum(-1, 2) == 2 // -1 + 0 + 1 + 2 = 2
解法
依然是等差数列
function GetSum( a,b ) {
//Good luck!
return (a + b) * (Math.abs(b - a) + 1) / 2;
}
题目:Add Two Numbers
形貌
You are given two linked lists representing two non-negative
numbers. The digits are stored in reverse order
and each of their nodes contain a single digit. Add the two
numbers and return it as a linked list.
Input: (2 -> 4 -> 3) + (5 -> 6 -> 4) Output: 7 -> 0 -> 8
解法
javascript linked list structure
linked list 是一种链表构造,用于存储数字类似于:
// 807这个数字的存储构造
var num8 = {
val: 8,
next: null,
}
var num0 = {
val: 0,
next: num8,
}
var num7 = {
val: 7,
next: num0,
}
// 807这个数字就可以够用如许的构造获得
就只是用一个新的linked list来储存相加后的结果
要注重的就是list1跟list2长度能够不一样
别的就是相加后能够比9还大,须要考虑进位的情况
/**
* Definition for singly-linked list.
* function ListNode(val) {
* this.val = val;
* this.next = null;
* }
*/
/**
* @param {ListNode} l1
* @param {ListNode} l2
* @return {ListNode}
*/
var addTwoNumbers = function(l1, l2) {
var list = new ListNode(0); //储存输出的结果,因为list的指针要不断往后移,因而用一个假节点轻易操纵
var result = list; // 运用一个ListNode来储存相加的结果
var sum,carry = 0; // carry用来处理进位
//当 list1, list2 都没有值,而且carry也为0的时候才结束回圈
while(l1 || l2 || carry > 0){
sum = 0;
// list1与list2长度能够差别,分开处理
if(l1!== null){
sum += l1.val;
l1 = l1.next;
}
if(l2!==null){
sum += l2.val;
l2 = l2.next;
}
// 假如之前有进位,carry = 1;没有的话carry = 0
sum += carry;
list.next = new ListNode(sum%10); //相加假如超过9,只能留下个位数放入结果list,十位数的处所进位
carry = parseInt(sum/10);
// list指标向后
list = list.next;
}
// 因为第一个节点为假节点,跳过
return result.next;
}
// The complete code for the List constructor is:
function List() {
List.makeNode = function() {
return {data: null, next: null};
};
this.start = null;
this.end = null;
this.add = function(data) {
if (this.start === null) {
this.start = List.makeNode();
this.end = this.start;
} else { t
this.end.next = List.makeNode();
this.end = this.end.next;
} ;
this.end.data = data;
};
this.delete = function(data) {
var current = this.start;
var previous = this.start;
while (current !== null) {
if (data === current.data) {
if (current === this.start) {
this.start = current.next;
return;
}
if (current === this.end)
this.end = previous;
previous.next = current.next; return;
}
previous = current;
current = current.next;
}
};
this.insertAsFirst = function(d) {
var temp = List.makeNode();
temp.next = this.start;
this.start = temp;
temp.data = d;
};
this.insertAfter = function(t, d) {
var current = this.start;
while (current !== null) {
if (current.data === t) {
var temp = List.makeNode();
temp.data = d;
temp.next = current.next;
if (current === this.end) this.end = temp;
current.next = temp;
return;
}
current = current.next;
}
};
this.item = function(i) {
var current = this.start;
while (current !== null) {
i--;
if (i === 0) return current;
current = current.next;
}
return null;
};
this.each = function(f) {
var current = this.start;
while (current !== null) {
f(current);
current = current.next;
}
};
}
题目:Reverse String
形貌
Write a function that takes a string as input and returns the string reversed.
Example: Given s = "hello", return "olleh".
解法
我的解法
“hello” -> [‘h’,’e’,’l’,’l’,’o’] -> ‘o’+’l’+’l’+’e’+’h’
var reverseString = function(s) {
var result = "";
var ary = s.split("");
for(var i = ary.length-1 ; i >= 0 ; i--){
result = result + ary[i];
}
return result;
};
进阶解法
未交换前 [‘h’,’e’,’l’,’l’,’o’]
第1次交换 [‘h’,’e’,’l’,’l’,’o’] o,h互换 [‘o’,’e’,’l’,’l’,’h’]
第2次交换 [‘o’,’e’,’l’,’l’,’h’] e,l互换 [‘o’,’l’,’l’,’e’,’h’]
var reverseString = function(s) {
var result = "";
var ary = s.split("");
for(var i = 0, max = (ary.length-1)/2 ; i < max ; i++){
var temp = ary[i];
ary[i] = ary[ary.length - 1 - i];
ary[ary.length - 1 - i] = temp;
}
return ary.join("");
};
题目:Valid Anagram
形貌
Given two strings s and t, write a function to determine if t is
an anagram of s.
For example,
s = "anagram", t = "nagaram", return true.
s = "rat", t = "car", return false.
Note:
You may assume the string contains only lowercase alphabets.
Follow up:
What if the inputs contain unicode characters? How would you
adapt your solution to such case?
解法
我的解法
要比较两个字串里面的字元是不是雷同,起首能够判断长度是不是相称,不相称就可以够直接剖断
为false 接下来将从新排序后的字串比较是不是相称。
/**
* @param {string} s
* @param {string} t
* @return {boolean}
*/
var isAnagram = function(s, t) {
if(s.length !== t.length) return false;
var s1 = s.split("").sort().join("");
var t1 = t.split("").sort().join("");
return s1 === t1;
};