1154. 一年中的第几天

2021-12-21  本文已影响0人  MrLiuYS

<p/><div class="image-package"><img src="https://img.haomeiwen.com/i1648392/53085f236a3cdb6d.jpg" contenteditable="false" img-data="{"format":"jpeg","size":168231,"height":900,"width":1600}" class="uploaded-img" style="min-height:200px;min-width:200px;" width="auto" height="auto"/>
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</p><blockquote><p>给你一个字符串 date ,按 YYYY-MM-DD 格式表示一个 现行公元纪年法 日期。请你计算并返回该日期是当年的第几天。

通常情况下,我们认为 1 月 1 日是每年的第 1 天,1 月 2 日是每年的第 2 天,依此类推。每个月的天数与现行公元纪年法(格里高利历)一致。



示例 1:

输入:date = "2019-01-09"
输出:9
示例 2:

输入:date = "2019-02-10"
输出:41
示例 3:

输入:date = "2003-03-01"
输出:60
示例 4:

输入:date = "2004-03-01"
输出:61


提示:

date.length == 10
date[4] == date[7] == '-',其他的 date[i] 都是数字
date 表示的范围从 1900 年 1 月 1 日至 2019 年 12 月 31 日

来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/day-of-the-year
著作权归领扣网络所有。商业转载请联系官方授权,非商业转载请注明出处。</p></blockquote><p>
</p><h1 id="2z43d">题解</h1><div class="image-package"><img src="https://img.haomeiwen.com/i1648392/152b7133604c5956.jpg" contenteditable="false" img-data="{"format":"jpeg","size":25678,"height":386,"width":658}" class="uploaded-img" style="min-height:200px;min-width:200px;" width="auto" height="auto"/>
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</p><h2>Swift</h2><blockquote><p>class Solution {
func dayOfYear(_ date: String) -> Int {
var monthDays = [31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31]

let time = date.split(separator: "-")

let year = Int(time[0])!, month = Int(time[1])!, day = Int(time[2])!

var result = 0

if year % 400 == 0 || (year % 4 == 0 && year % 100 != 0) {
monthDays[1] += 1
}

for m in 0 ..< month - 1 {
result += monthDays[m]
}

return result + day
}
}

//print(Solution().dayOfYear("2019-01-09"))
//
//print(Solution().dayOfYear("2019-02-10"))
//
//print(Solution().dayOfYear("2003-03-01"))

print(Solution().dayOfYear("2012-01-02"))
</p></blockquote><p>
</p><h2>Dart</h2><blockquote><p>class Solution {
int dayOfYear(String date) {
var monthDays = [31, 28, 31, 30, 31, 30, 31, 31, 30, 31, 30, 31];

var time = date.split("-");

var year = int.parse(time[0]),
month = int.parse(time[1]),
day = int.parse(time[2]);

var result = 0;

if ((year % 400 == 0) || (year % 4 == 0 && year % 100 != 0)) {
monthDays[1] += 1;
}

for (var i = 0; i < month - 1; i++) {
result += monthDays[i];
}

return result + day;
}
}

void main() {
print(Solution().dayOfYear("2019-01-09"));

print(Solution().dayOfYear("2019-02-10"));

print(Solution().dayOfYear("2003-03-01"));

print(Solution().dayOfYear("2012-01-02"));
}
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</p><p>
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