我有从巨大的日志文件中提取的星期数列表,他们被提取使用语法:
$ date --date="Wed Mar 20 10:19:56 2012" +%W; 12
我想创build一个简单的bash函数,可以将这些星期数转换为date范围。 我想函数应该接受2个参数:$ number和$ year,例如:
$ week() { ......... } $ number=12; year=2012 $ week $number $year "Mon Mar 19 2012" - "Sun Mar 25 2012"
bash中的条件语句和解释
在初始化/ bash脚本中同时执行几个程序
如何阻止getopts将空白或空值或其他选项作为选项值
Linux shell中的pipe道pipe理
如何使用bash将stdout传递给脚本并写入terminal?
DESTDIR和PREFIX的
sed模式命令
删除方括号外的所有数据
使用GNU date :
$ cat weekof.sh function weekof() { local week=$1 year=$2 local week_num_of_Jan_1 week_day_of_Jan_1 local first_Mon local date_fmt="+%a %b %d %Y" local mon sun week_num_of_Jan_1=$(date -d $year-01-01 +%W) week_day_of_Jan_1=$(date -d $year-01-01 +%u) if ((week_num_of_Jan_1)); then first_Mon=$year-01-01 else first_Mon=$year-01-$((01 + (7 - week_day_of_Jan_1 + 1) )) fi mon=$(date -d "$first_Mon +$((week - 1)) week" "$date_fmt") sun=$(date -d "$first_Mon +$((week - 1)) week + 6 day" "$date_fmt") echo ""$mon" - "$sun"" } weekof $1 $2 $ bash weekof.sh 12 2012 "Mon Mar 19 2012" - "Sun Mar 25 2012" $ bash weekof.sh 1 2018 "Mon Jan 01 2018" - "Sun Jan 07 2018" $
如果一周的开始是星期天,则可以使用此版本的weekof:
function weekof() { local week=$1 year=$2 local week_num_of_Jan_1 week_day_of_Jan_1 local first_Sun local date_fmt="+%Y-%m-%d" local sun sat week_num_of_Jan_1=$(date -d $year-01-01 +%U) week_day_of_Jan_1=$(date -d $year-01-01 +%u) if ((week_num_of_Jan_1)); then first_Sun=$year-01-01 else first_Sun=$year-01-$((01 + (7 - week_day_of_Jan_1) )) fi sun=$(date -d "$first_Sun +$((week - 1)) week" "$date_fmt") sat=$(date -d "$first_Sun +$((week - 1)) week + 6 day" "$date_fmt") echo "$sun $sat" }
星期一是ISO周数的第一天:
function week2date () { local year=$1 local week=$2 local dayofweek=$3 date -d "$year-01-01 +$(( $week * 7 + 1 - $(date -d "$year-01-04" +%w ) - 3 )) days -2 days + $dayofweek days" +"%Y-%m-%d" } week2date 2017 35 1 week2date 2017 35 7
输出:
2017-08-28 2017-09-03
如果有人需要它:我发现更短的方式(不知道如果更容易):
function weekof() { local year=$2 local week=`echo $1 | sed 's/^0*//'` # Fixes random bug local dateFormat="+%a %b %d %Y" # Offset is the day of week,so we can calculate back to monday local offset="`date -d "$year/01/01 +$((week - 1)) week" "+%u"`" echo -n "`date -d "$year/01/01 +$((week - 1)) week +$((1 - $offset)) day" "$dateFormat"`" # Monday echo -n " - " echo "`date -d "$year/01/01 +$((week - 1)) week +$((7 - $offset)) day" "$dateFormat"`" # Sunday }
我把这一年的第一天带到了正确的一个星期。 然后,我带上我的工作日,前往星期一和星期天。
版权声明:本文内容由互联网用户自发贡献,该文观点与技术仅代表作者本人。本站仅提供信息存储空间服务,不拥有所有权,不承担相关法律责任。如发现本站有涉嫌侵权/违法违规的内容, 请发送邮件至 [email protected] 举报,一经查实,本站将立刻删除。
