在 Linux 上使用 Bash shell,并给定一个日期时间,我如何确定那天有多少小时?
日期时间与夏令时的某个时区有关,例如满足。
【问题讨论】:
date 命令一样?
Australia/Lord_Howe中的23.5或24.5。
为了完全考虑所有场景,您需要考虑以下几点:
并非每个本地日都有午夜,如果您在其中一天传递日期,date 命令将失败,除非您还传递时间和与 UTC 的偏移量。这主要发生在春季向前的过渡日。例如:
$ TZ=America/Sao_Paulo date -d '2016-10-16'
date: invalid date '2016-10-16'
并非每个 DST 转换都是 1 小时。 America/Lord_Howe 切换 30 分钟。 Bash 只执行整数除法,所以如果你想要小数,你必须使用one of these techniques。
这是一个解释这些问题的函数:
seconds_in_day() {
# Copy input date to local variable
date=$1
# Start with the offset at noon on the given date.
# Noon will almost always exist (except Samoa on 2011-12-30)
offset1=$(date -d "$date 12:00" +%z)
# Next get the offset for midnight. If it doesn't exist, the time will jump back to 23:00 and we'll get a different offset.
offset1=$(date -d "$date 00:00 $offset1" +%z)
# Next get the offset for the next day at midnight. Again, if it doesn't exist, it will jump back an hour.
offset2=$(date -d "$date 00:00 $offset1 + 1 day" +%z)
# Get the unix timestamps for both the current date and the next one, at midnight with their respective offsets.
unixtime1=$(date -d "$date 00:00 $offset1" +%s)
unixtime2=$(date -d "$date 00:00 $offset2 + 1 day" +%s)
# Calculate the difference in seconds and hours. Use awk for decimal math.
seconds=$((unixtime2 - unixtime1))
hours=$(awk -v seconds=$seconds 'BEGIN { print seconds / 3600 }')
# Print the output
echo "$date had $seconds secs in $TZ, or $hours hours."
}
例子:
$ TZ=America/Los_Angeles seconds_in_day 2016-03-12
2016-03-12 had 86400 secs in America/Los_Angeles, or 24 hours.
$ TZ=America/Los_Angeles seconds_in_day 2016-03-13
2016-03-13 had 82800 secs in America/Los_Angeles, or 23 hours.
$ TZ=America/Los_Angeles seconds_in_day 2016-03-14
2016-03-14 had 86400 secs in America/Los_Angeles, or 24 hours.
$ TZ=America/Los_Angeles seconds_in_day 2016-11-05
2016-11-05 had 86400 secs in America/Los_Angeles, or 24 hours.
$ TZ=America/Los_Angeles seconds_in_day 2016-11-06
2016-11-06 had 90000 secs in America/Los_Angeles, or 25 hours.
$ TZ=America/Los_Angeles seconds_in_day 2016-11-07
2016-11-07 had 86400 secs in America/Los_Angeles, or 24 hours.
$ TZ=America/Sao_Paulo seconds_in_day 2016-02-19
2016-02-19 had 86400 secs in America/Sao_Paulo, or 24 hours.
$ TZ=America/Sao_Paulo seconds_in_day 2016-02-20
2016-02-20 had 90000 secs in America/Sao_Paulo, or 25 hours.
$ TZ=America/Sao_Paulo seconds_in_day 2016-02-21
2016-02-21 had 86400 secs in America/Sao_Paulo, or 24 hours.
$ TZ=America/Sao_Paulo seconds_in_day 2016-10-15
2016-10-15 had 86400 secs in America/Sao_Paulo, or 24 hours.
$ TZ=America/Sao_Paulo seconds_in_day 2016-10-16
2016-10-16 had 82800 secs in America/Sao_Paulo, or 23 hours.
$ TZ=America/Sao_Paulo seconds_in_day 2016-10-17
2016-10-17 had 86400 secs in America/Sao_Paulo, or 24 hours.
$ TZ=Australia/Lord_Howe seconds_in_day 2016-04-02
2016-04-02 had 86400 secs in Australia/Lord_Howe, or 24 hours.
$ TZ=Australia/Lord_Howe seconds_in_day 2016-04-03
2016-04-03 had 88200 secs in Australia/Lord_Howe, or 24.5 hours.
$ TZ=Australia/Lord_Howe seconds_in_day 2016-04-04
2016-04-04 had 86400 secs in Australia/Lord_Howe, or 24 hours.
$ TZ=Australia/Lord_Howe seconds_in_day 2016-10-01
2016-10-01 had 86400 secs in Australia/Lord_Howe, or 24 hours.
$ TZ=Australia/Lord_Howe seconds_in_day 2016-10-02
2016-10-02 had 84600 secs in Australia/Lord_Howe, or 23.5 hours.
$ TZ=Australia/Lord_Howe seconds_in_day 2016-10-03
2016-10-03 had 86400 secs in Australia/Lord_Howe, or 24 hours.
【讨论】:
10 月 30 日是英国夏季时间的最后一次更改。我可以通过这种方式从 shell 中获得当天的 25 小时:
t1=$(TZ='Europe/London' date --date='20161030' +%s)
t2=$(TZ='Europe/London' date --date='20161031' +%s)
echo $((($t2 - $t1) / 3600))
我不完全确定这是否适用于每个 bash shell,可能需要稍作调整。
【讨论】: