给你两个字符串 word1 和 word2 。请你从 word1 开始,通过交替添加字母来合并字符串。如果一个字符串比另一个字符串长,就将多出来的字母追加到合并后字符串的末尾。
返回 合并后的字符串 。
示例 1:
输入: word1 = "abc", word2 = "pqr"
输出: "apbqcr"
解释: 字符串合并情况如下所示:
word1: a b c
word2: p q r
合并后: a p b q c r
示例 2:
输入: word1 = "ab", word2 = "pqrs"
输出: "apbqrs"
解释: 注意,word2 比 word1 长,"rs" 需要追加到合并后字符串的末尾。
word1: a b
word2: p q r s
合并后: a p b q r s
示例 3:
输入: word1 = "abcd", word2 = "pq"
输出: "apbqcd"
解释: 注意,word1 比 word2 长,"cd" 需要追加到合并后字符串的末尾。
word1: a b c d
word2: p q
合并后: a p b q c d
提示:
1 <= word1.length, word2.length <= 100word1和word2由小写英文字母组成
思路1:轮流输入后,多余的拼接在最后
结果:59ms击败60.61%
var mergeAlternately = function(word1, word2) {
let res = []
let i = 0
while(word1.length>i&&word2.length>i){
res.push(word1[i])
res.push(word2[i])
i++
}
let temp = word1.length>word2.length ? word1:word2
return res.join('')+temp.slice(i)
};
思路2:一直轮流输入,但是少的部分通过逻辑取消输入
结果:65ms击败24.95%
var mergeAlternately = function(word1, word2) {
let n = word1.length
let m = word2.length
let i = 0
let res = []
while(i<n|| i<m){
if(i<n){
res.push(word1[i])
}
if(i<m){
res.push(word2[i])
}
i++
}
return res.join('')
};
