删除字符串前的空格
Removing blankspace before string
我想使用管道计算某个文件中字符串的出现次数,而不使用 awk 和 sed 命令。
my_file内容:
ls -al
bash
cat datoteka.txt
cat d.txt | sort | less
/bin/bash
我使用的终端命令:
cat $my_file | cut -d ' ' -f 1 | tr '|' '\n' | xargs -r -L1 basename | sort | uniq -c | xargs -r -L1 sh -c 'echo [=11=]'
期望的输出:
bash 2
cat 2
less 1
ls 1
sort 1
In my case, I get:
bash 2
cat 2
ls 1
_sort 1 (not counted )
_less 1 (not counted )
sort 和 less 命令不计算在内,因为这两个字符串前面有白色space(我用 _ 标记)。我应该如何改进我的代码,以删除 "sort" 和 "less" 之前的空白 space?提前致谢!
更新:这是输入文件的第二个更长的示例:
nl /etc/passwd
seq 1 10 | tr "\n" ","
seq 1 10 | tr -d 13579 | tr -s "\n "
seq 1 100 | split -d -a 2 -l10 - blabla-
uname -a | cut -d" " -f1,3
cut -d: -f1 /etc/passwd > fst
cut -d: -f3 /etc/passwd > scnd
ps -e | column
echo -n ABC | wc -m -c
cmp -s dat1.txt dat1.txt ; echo $?
diff dat1 dat2
ps -e | grep firefox
echo dat1 dat2 dat3 | tr " " "\n" | xargs -I {} -p ln -s {}
如您所知,问题中代码的问题在于 cut 语句。这将 cut 替换为 shell while 循环,该循环还包括 basename 命令:
$ tr '|' '\n' <my_file | while read cmd other; do basename "$cmd"; done | sort | uniq -c | xargs -r -L1 sh -c 'echo [=10=]'
bash 2
cat 2
less 1
ls 1
sort 1
交替排序
上面按命令名称的字母顺序对结果进行排序。相反,如果我们想按出现次数的降序排列,则:
tr '|' '\n' <file2 | while read cmd other; do basename "$cmd"; done | sort | uniq -c | xargs -r -L1 sh -c 'echo [=11=]' | sort -snrk2
将此命令应用于问题中的第二个输入示例:
$ tr '|' '\n' <file2 | while read cmd other; do basename "$cmd"; done | sort | uniq -c | xargs -r -L1 sh -c 'echo [=12=]' | sort -snrk2
tr 4
cut 3
seq 3
echo 2
ps 2
cmp 1
column 1
diff 1
grep 1
nl 1
split 1
uname 1
wc 1
xargs 1
while IFS='|' read -ra commands; do
for cmd in "${commands[@]}"; do
set -- $cmd # unquoted to discard irrelevant whitespace
basename
done
done < myfile |
sort |
uniq -c |
while read num cmd; do
echo "$cmd $num"
done
bash 2
cat 2
less 1
ls 1
sort 1
我想使用管道计算某个文件中字符串的出现次数,而不使用 awk 和 sed 命令。
my_file内容:
ls -al
bash
cat datoteka.txt
cat d.txt | sort | less
/bin/bash
我使用的终端命令:
cat $my_file | cut -d ' ' -f 1 | tr '|' '\n' | xargs -r -L1 basename | sort | uniq -c | xargs -r -L1 sh -c 'echo [=11=]'
期望的输出:
bash 2
cat 2
less 1
ls 1
sort 1
In my case, I get:
bash 2
cat 2
ls 1
_sort 1 (not counted )
_less 1 (not counted )
sort 和 less 命令不计算在内,因为这两个字符串前面有白色space(我用 _ 标记)。我应该如何改进我的代码,以删除 "sort" 和 "less" 之前的空白 space?提前致谢!
更新:这是输入文件的第二个更长的示例:
nl /etc/passwd
seq 1 10 | tr "\n" ","
seq 1 10 | tr -d 13579 | tr -s "\n "
seq 1 100 | split -d -a 2 -l10 - blabla-
uname -a | cut -d" " -f1,3
cut -d: -f1 /etc/passwd > fst
cut -d: -f3 /etc/passwd > scnd
ps -e | column
echo -n ABC | wc -m -c
cmp -s dat1.txt dat1.txt ; echo $?
diff dat1 dat2
ps -e | grep firefox
echo dat1 dat2 dat3 | tr " " "\n" | xargs -I {} -p ln -s {}
如您所知,问题中代码的问题在于 cut 语句。这将 cut 替换为 shell while 循环,该循环还包括 basename 命令:
$ tr '|' '\n' <my_file | while read cmd other; do basename "$cmd"; done | sort | uniq -c | xargs -r -L1 sh -c 'echo [=10=]'
bash 2
cat 2
less 1
ls 1
sort 1
交替排序
上面按命令名称的字母顺序对结果进行排序。相反,如果我们想按出现次数的降序排列,则:
tr '|' '\n' <file2 | while read cmd other; do basename "$cmd"; done | sort | uniq -c | xargs -r -L1 sh -c 'echo [=11=]' | sort -snrk2
将此命令应用于问题中的第二个输入示例:
$ tr '|' '\n' <file2 | while read cmd other; do basename "$cmd"; done | sort | uniq -c | xargs -r -L1 sh -c 'echo [=12=]' | sort -snrk2
tr 4
cut 3
seq 3
echo 2
ps 2
cmp 1
column 1
diff 1
grep 1
nl 1
split 1
uname 1
wc 1
xargs 1
while IFS='|' read -ra commands; do
for cmd in "${commands[@]}"; do
set -- $cmd # unquoted to discard irrelevant whitespace
basename
done
done < myfile |
sort |
uniq -c |
while read num cmd; do
echo "$cmd $num"
done
bash 2
cat 2
less 1
ls 1
sort 1