PATH中的shell脚本是否可以用来检测输入的选项$1-创新互联
PATH中的shell脚本是否可以用来检测输入的选项$1,相信很多没有经验的人对此束手无策,为此本文总结了问题出现的原因和解决方法,通过这篇文章希望你能解决这个问题。
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#!/bin/sh # inpath - Verifies that a specified program is either valid as is, # or that it can be found in the PATH directory list. in_path() { # Given a command and the PATH, try to find the command. Returns # 0 if found and executable, 1 if not. Note that this temporarily modifies # the IFS (input field separator) but restores it upon completion. cmd=$1 path=$2 retval=1 oldIFS=$IFS IFS=":" for directory in $path do if [ -x $directory/$cmd ] ; then retval=0 # if we're here, we found $cmd in $directory fi done IFS=$oldIFS return $retval } checkForCmdInPath() { var=$1 # The variable slicing notation in the following conditional # needs some explanation: ${var#expr} returns everything after # the match for 'expr' in the variable value (if any), and # ${var%expr} returns everything that doesn't match (in this # case, just the very first character. You can also do this in # Bash with ${var:0:1}, and you could use cut too: cut -c1. if [ "$var" != "" ] ; then if [ "${var%${var#?}}" = "/" ] ; then if [ ! -x $var ] ; then return 1 fi elif ! in_path $var $PATH ; then return 2 fi fi } if [ $# -ne 1 ] ; then echo "Usage: $0 command" >&2 ; exit 1 fi checkForCmdInPath "$1" case $? in 0 ) echo "$1 found in PATH" ;; 1 ) echo "$1 not found or not executable" ;; 2 ) echo "$1 not found in PATH" ;; esac exit 0
这脚本目的是用来检测输入的选项$1是否在PATH中。
这脚本有几个地方值得注意的:
1)它运用了函数嵌套,在checkForCmdInPath里嵌套了in_path函数。
2)if [ "${var%${var#?}}" = "/" ] 这语句中的${var%${var#?}}是显示变量的第一个字符,也可以用${varname:1:1} 或$(echo $var | cut -c1)替代。
3) elif ! in_path $var $PATH ; then 这意思是如果in_path $var $PATH 执行结果不为0的话则
问题:
发现输入 echo , echo_err, /etco_err 都返回正确结果,但输入 /etc/echo_right (存在着执行文件但不在PATH中)却返回found in PATH。我想这脚本还有需要完善的地方。
看完上述内容,你们掌握PATH中的shell脚本是否可以用来检测输入的选项$1的方法了吗?如果还想学到更多技能或想了解更多相关内容,欢迎关注创新互联行业资讯频道,感谢各位的阅读!
名称栏目:PATH中的shell脚本是否可以用来检测输入的选项$1-创新互联
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