我正在嘗試獲取 UTC 間隔之間的單個日期(“2022-10-10”)和小時(“2022-10-10T09”)。我可以通過以下方式獲得各個日期 -
function getDatesInRange(startDate, endDate) {
const date = new Date(startDate.getTime());
const dates = [];
while (date <= endDate) {
const day = new Date(date).toISOString().split(':')[0].split('T')[0];
dates.push(day);
date.setDate(date.getDate() 1);
}
return dates;
}
console.log(getDatesInRange(new Date('2022-10-10T20:50:59.938Z'), new Date('2022-10-15T23:50:59.938Z')));
因此,上述回報 -["2022-10-10", "2022-10-11", "2022-10-12", "2022-10-13", "2022-10-14", "2022-10-15"]
我還想回傳開始和結束日期的時間,其余的應該是日期。所以我想得到回報——["2022-10-10T20", "2022-10-10T21", "2022-10-10T22", "2022-10-10T23" "2022-10-11", "2022-10-12", "2022-10-13", "2022-10-14", "2022-10-15T00", "2022-10-15T01"]
這是我現在所擁有的 -
function getHoursInRange(startDate, endDate) {
let startDatePlusOne = new Date(startDate);
startDatePlusOne.setDate(startDatePlusOne.getDate() 1);
let endDateMinusOne = new Date(endDate);
endDateMinusOne.setDate(endDateMinusOne.getDate() - 1);
const date = new Date(startDate.getTime());
console.log("Start date :", date);
let dates = getDatesInRange(startDatePlusOne, endDateMinusOne);
console.log("Only days : ", dates);
startDatePlusOne.setHours(0);
while (date < startDatePlusOne) {
const day = new Date(date).toISOString().split(':')[0];
dates.push(day);
date.setHours(date.getHours() 1);
}
endDateMinusOne.setHours(23);
const edate = endDateMinusOne.getTime();
while (edate < endDate) {
const day = new Date(edate).toISOString().split(':')[0];
dates.push(day);
date.setHours(date.getHours() 1);
}
return dates
}
對于這個用例,我得到了不包括開始和結束日期的日子。但是為了獲得每個小時的開始和結束日期,它會以某種方式卡住。不知何故,我覺得有更好的方法來做到這一點。有任何想法嗎 ?
uj5u.com熱心網友回復:
您可以通過一次將時間戳增加 30 分鐘并記下所有非重復的小時字串和日期字串來以更簡單的方式進行操作:
function getDatesInRange(startDate, endDate) {
let h = new Set(), d = new Set(), t = [];
for(let i=startDate.getTime(); i<endDate.getTime(); i =1000*1800) t.push(i);
[...t, endDate.getTime()].forEach(i=>{
let s = new Date(i).toISOString();
[[s.split(':')[0], h], [s.split('T')[0], d]].forEach(([s,r])=>r.add(s));
});
let firstDate = [...d.values()][0], lastDate = [...d.values()].pop();
return d.size===1 ? [...h.values()] : [
...[...h.values()].filter(v=>v.startsWith(firstDate)),
...[...d.values()].filter(v=>v!==firstDate && v!==lastDate),
...[...h.values()].filter(v=>v.startsWith(lastDate))];
}
console.log(getDatesInRange(
new Date('2022-10-10T20:50:59.938Z'), new Date('2022-10-15T23:50:59.938Z')));uj5u.com熱心網友回復:
dateRangeDate構造對應于提供的范圍(包括)的物件陣列。
dayToString接受一個日期并創建一個字串陣列,在指定的 UTC 小時范圍(含)之間的一天中的每個小時都有一個字串。
dateRangeToStrings接受一個日期陣列并根據問題中列出的規則構造一個字串陣列。
const twoDigit = (n) => String(n).padStart(2, '0')
const toISODateString = (date) => `${date.getUTCFullYear()}-${twoDigit(date.getUTCMonth() 1)}-${twoDigit(date.getUTCDate())}`
const dateRange = (start, end, curr = new Date(start)) => {
const dates = []
while (curr <= end) {
dates.push(new Date(Date.UTC(curr.getUTCFullYear(), curr.getUTCMonth(), curr.getUTCDate())))
curr.setUTCDate(curr.getUTCDate() 1)
}
return dates
}
const dayToString = (date, startUTCHour = 0, endUTCHour = 23) =>
Object.keys([...Array(24)])
.slice(startUTCHour, endUTCHour 1)
.map((h)=>`${toISODateString(date)}T${twoDigit(h)}`)
const dateRangeToStrings = (arr, startUTCHour, endUTCHour) => {
const beginning = dayToString(arr[0], startUTCHour)
const middle = arr.slice(1, -1).map(toISODateString)
const end = dayToString(arr[arr.length - 1], 0, endUTCHour)
return beginning.concat(middle, end)
}
const getDatesInRange = (start, end) =>
dateRangeToStrings(dateRange(start, end),
start.getUTCHours(),
end.getUTCHours())
console.log(getDatesInRange(new Date('2022-10-10T20:50:59.938Z'),
new Date('2022-10-15T23:50:59.938Z')))轉載請註明出處,本文鏈接:https://www.uj5u.com/houduan/526477.html