下面第8行和第9行让我感到困惑:
#!/bin/bash a=foo b=6 c=a d="\e[33m" # opening ansi color code for yellow text e="\e[0m" # ending ansi code f=$d printf "1. foo\n" printf "2. $a\n" printf "3. %s\n" "$a" printf "4. %s\n" "${!c}" printf "5. %${b}s\n" "$a" printf "6. $d%s$e\n" "$a" # will be yellow printf "7. $f%s$e\n" "$a" # will be yellow printf '8. %s%s%s\n' "$d" "$a" "$e" # :( printf "9. %s%s%s\n" "$f" "$a" "$e" # :(
是否可以使用%s扩展颜色变量并查看颜色开关?
输出:
1. foo 2. foo 3. foo 4. foo 5. foo 6. foo 7. foo 8. \e[33mfoo\e[0m 9. \e[33mfoo\e[0m
注意:6.和7.确实是黄色的
编辑
printf "10. %b%s%b\n" "$f" "$a" "$e" # :)
……终于!这是执行它的命令,感谢Josh!
