爲了計算留存,需要知道多個從時間差,來獲取不同的時間點。 以下代碼在輸入值與當前值,在同一月份時,不會有問題。但是如果是誇月份回溯數據,那麼就會出現較大的問題。
#Date variables for
if [ -n "$1" ]; then
TODAY=`date -d "" +"%Y%m%d"`
base=$(($TODAY-$1))
elif [ -z "${DAYAGO1}" ]; then
base=0
fi
arr=($base $(($base+1)) $(($base+2)) $(($base+8)) $(($base+31)))
dag=(0 1 2 8 31)
for i in {0..4}; do
echo $i
echo ${dag[$i]}
echo ${arr[$i]}
export "DAYAGO${dag[$i]}"=`date -d "${arr[$i]} days ago" +"%Y%m%d"`
done
爲了修正bug,可以參考
http://stackoverflow.com/questions/3385003/shell-script-to-get-difference-in-two-dates
There's a solution that almost works: use the %s date format of GNU date, which prints the number of seconds since 1970-01-01 00:00. These can be subtracted to find the time difference between two dates.
echo $(( ($(date -d 2010-06-01 +%s) - $(date -d 2010-05-15 +%s)) / 86400))But the following displays 0 in some locations:
echo $((($(date -d 2010-03-29 +%s) - $(date -d 2010-03-28 +%s)) / 86400))Because of daylight savings time, there are only 23 hours between those times. You need to add at least one hour (and at most 23) to be safe.
echo $((($(date -d 2010-03-29 +%s) - $(date -d 2010-03-28 +%s) + 43200) / 86400))Or you can tell date to work in a timezone without DST.
echo $((($(date -u -d 2010-03-29 +%s) - $(date -u -d 2010-03-28 +%s)) / 86400))(POSIX says to call the reference timezone is UTC, but it also says not to count leap seconds, so the number of seconds in a day is always exactly 86400 in a GMT+xx timezone.)
最終結果就接近完美了,爲:
#Date variables for
if [ -n "$1" ]; then
TODAY=`date -d "" +"%Y%m%d"`
BACKDAY=$1
base=$((($(date -d $TODAY +%s) - $(date -d $BACKDAY +%s) + 43200) / 86400))
elif [ -z "${DAYAGO1}" ]; then
base=1
fi
arr=($(($base)) $(($base+1)) $(($base+7)) $(($base+30)))
dag=(1 2 8 31)
for i in {0..3}; do
echo ${dag[$i]}
echo ${arr[$i]}
export "DAYAGO${dag[$i]}"=`date -d "${arr[$i]} days ago" +"%Y%m%d"`
done
shell 中的時間計算轉爲秒做相減運算
NOW=`date +"%Y-%m-%d %H:%M:%S"`
Back=$(ls -lt * "$dir"| line | awk '{print $6,$7,$8}') #獲取文件的修改時間
dn=`date -d "$NOW" +%s` #把當前時間轉化爲毫秒時間
db=`date -d "$Back" +%s`
ddif=`expr $dn- $db` #計算2個時間的差
另外一種,換個思路,從前往後推算也是可以的:
day='20120201'
this_day=$day
today='20120311'
i=-1
while [ $t_day != $today ]
do
i=$(($i + 1))
t_day=`date +%Y%0m%0d --date="$day $i day"`
echo $t_day
done