我正在写一个厨师的食谱,我使用脚本资源和bash解释器来执行sed命令:
script 'find the lastest version of the major release available' do
interpreter "bash"
code <<-EOH
SUBMGR_REPO=$(ls -1d /net/gutstools.am.lilly.com/guts_dev/distr/redhat/* | egrep `echo as6-u7_64 | sed -r 's/([aw]s[[:digit:]]+).*$/\1-u[[:digit:]]+(_64)?$/'` 2>/dev/null | sort -nr -t/ -k 7.6,7 | awk -F/ '{ print $7 }' | head -1)
echo $SUBMGR_REPO
EOH
end
如果我从终端运行上面的命令,它可以正常工作如下:
[c244728_lx@brainiac-ia-0008 redhat]$ SUBMGR_REPO=$(ls -1d /net/gutstools.am.lilly.com/guts_dev/distr/redhat/* | egrep `echo as6-u7_64 | sed -r 's/([aw]s[[:digit:]]+).*$/\1-u[[:digit:]]+(_64)?$/'` 2>/dev/null | sort -nr -t/ -k 7.6,7 | awk -F/ '{ print $7 }' | head -1)
[c244728_lx@brainiac-ia-0008 redhat]$ echo $SUBMGR_REPO
as6-u8_64
[c244728_lx@brainiac-ia-0008 redhat]$ ls
as5-u10_64 as5-u8_64 as6-u4_64 as6-u5_64.tar as7-u1_64 ws5-u10 ws5-u6_64 ws5-u9 ws6-u2_64 ws6-u5 ws6-u7_64
as5-u11_64 as5-u9_64 as6-u5_64 as6-u6_64 as7-u2_64 ws5-u10_64 ws5-u7 ws5-u9_64 ws6-u3 ws6-u5_64 ws6-u8_64
as5-u5_64 as6-u1_64 as6-u5_64_1 as6-u7_64 krb5-patch ws5-u11 ws5-u7_64 ws6-u1 ws6-u3_64 ws6-u6 ws7-u1_64
as5-u6_64 as6-u2_64 as6-u5_64-GBIP as6-u7_64-GBIP openssl.tar ws5-u11_64 ws5-u8 ws6-u1_64 ws6-u4 ws6-u6_64 ws7-u2_64
as5-u7_64 as6-u3_64 as6-u5_64-kernel-patch as6-u8_64 ruby22_rail41_CHG0053697 ws5-u6 ws5-u8_64 ws6-u2 ws6-u4_64 ws6-u7
[c244728_lx@brainiac-ia-0008 redhat]$
但是在大厨食谱中失败了,它在$ SUBMGR_REPO中给出了空值。请帮我解决这个问题。
感谢。
答案 0 :(得分:1)
你应该考虑重构这一点,但我敢打赌问题是你有一些需要修复的未转义的反斜杠(例如\\1)