我有两个DateTime对象,需要找到它们之间的差值的持续时间,
我有以下代码,但不确定如何继续执行以获得预期的结果,如下所示:
例
11/03/14 09:30:58 11/03/14 09:33:43 elapsed time is 02 minutes and 45 seconds ----------------------------------------------------- 11/03/14 09:30:58 11/03/15 09:30:58 elapsed time is a day ----------------------------------------------------- 11/03/14 09:30:58 11/03/16 09:30:58 elapsed time is two days ----------------------------------------------------- 11/03/14 09:30:58 11/03/16 09:35:58 elapsed time is two days and 05 mintues
码
String dateStart = "11/03/14 09:29:58"; String dateStop = "11/03/14 09:33:43"; Custom date format SimpleDateFormat format = new SimpleDateFormat("yy/MM/dd HH:mm:ss"); Date d1 = null; Date d2 = null; try { d1 = format.parse(dateStart); d2 = format.parse(dateStop); } catch (ParseException e) { e.printStackTrace(); } // Get msec from each, and subtract. long diff = d2.getTime() - d1.getTime(); long diffSeconds = diff / 1000 % 60; long diffMinutes = diff / (60 * 1000) % 60; long diffHours = diff / (60 * 60 * 1000); System.out.println("Time in seconds: " + diffSeconds + " seconds."); System.out.println("Time in minutes: " + diffMinutes + " minutes."); System.out.println("Time in hours: " + diffHours + " hours.");
尝试以下
{ Date dt2 = new DateAndTime().getCurrentDateTime(); long diff = dt2.getTime() - dt1.getTime(); long diffSeconds = diff / 1000 % 60; long diffMinutes = diff / (60 * 1000) % 60; long diffHours = diff / (60 * 60 * 1000); int diffInDays = (int) ((dt2.getTime() - dt1.getTime()) / (1000 * 60 * 60 * 24)); if (diffInDays > 1) { System.err.println("Difference in number of days (2) : " + diffInDays); return false; } else if (diffHours > 24) { System.err.println(">24"); return false; } else if ((diffHours == 24) && (diffMinutes >= 1)) { System.err.println("minutes"); return false; } return true; }
使用Java内置类TimeUnit可以更好地处理日期差转换。它提供了实用的方法来做到这一点:
Date startDate = // Set start date Date endDate = // Set end date long duration = endDate.getTime() - startDate.getTime(); long diffInSeconds = TimeUnit.MILLISECONDS.toSeconds(duration); long diffInMinutes = TimeUnit.MILLISECONDS.toMinutes(duration); long diffInHours = TimeUnit.MILLISECONDS.toHours(duration); long diffInDays = TimeUnit.MILLISECONDS.toDays(duration);
