bash – UNIX日期:如何将周数转换为日期范围(Mon-Sun)?
发布时间:2020-12-16 01:19:47 所属栏目:安全 来源:网络整理
导读:我有从大日志文件中提取的周数列表,它们是使用语法提取的: $date --date="Wed Mar 20 10:19:56 2012" +%W;12 我想创建一个简单的bash函数,可以将这些周数转换为日期范围.我想函数应该接受2个参数:$number和$year,例如: $week() { ......... }$number=12;
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我有从大日志文件中提取的周数列表,它们是使用语法提取的:
$date --date="Wed Mar 20 10:19:56 2012" +%W; 12 我想创建一个简单的bash函数,可以将这些周数转换为日期范围.我想函数应该接受2个参数:$number和$year,例如: $week() { ......... }
$number=12; year=2012
$week $number $year
"Mon Mar 19 2012" - "Sun Mar 25 2012"
使用GNU日期:
$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"
$
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