CentOS防火墙开启失败怎么解决
时间:2020-03-17 18:17
CentOS防火墙开启失败怎么解决 突然之间发现centos 7 的防火墙无法启动,且firewall-cmd命令运行报错,防火墙启动报错如下: firewall-cmd命令运行报错如下:(推荐学习:Linux视频教程) 究其原因是由于使用了自定义安装的python,并将自己安装的python作为默认python导致(此外,将系统默认的python升级为python3也可能会出现类似问题),因此只需将firewalld和firewall-cmd第一行调用的python改为系统的python即可解决。 我的python链接方式如下: 因此,只需vi打开/usr/sbin/firewalld 和/usr/bin/firewall-cmd,将其中的第一行由#!/usr/bin/python -Es 改为 #!/usr/bin/python2.7 -Es 即可! 本篇文章来自PHP中文网,CentOS使用教程栏目,更多相关教程请关注本栏目! 以上就是CentOS防火墙开启失败怎么解决的详细内容,更多请关注gxlcms其它相关文章!
[root@localhost firewalld]# systemctl start firewalld.service
Job for firewalld.service failed because the control process exited with error code. See "systemctl status firewalld.service" and "journalctl -xe" for details.
[root@localhost firewalld]# systemctl status firewalld.service
● firewalld.service - firewalld - dynamic firewall daemon
Loaded: loaded (/usr/lib/systemd/system/firewalld.service; enabled; vendor preset: enabled)
Active: failed (Result: exit-code) since 三 2020-01-08 10:43:48 CST; 10s ago
Docs: man:firewalld(1)
Process: 29630 ExecStart=/usr/sbin/firewalld --nofork --nopid $FIREWALLD_ARGS (code=exited, status=127)
Main PID: 29630 (code=exited, status=127)[root@localhost yangl]# firewall-cmd
Traceback (most recent call last):
File "/usr/bin/firewall-cmd", line 24, in <module>
from gi.repository import GObject
ImportError: No module named gi.repository[root@localhost yangl]# cd /usr/bin/
[root@localhost bin]# ll python*
lrwxrwxrwx. 1 root root 16 9月 28 2018 python -> /usr/bin/python2
lrwxrwxrwx. 1 root root 39 9月 28 2018 python2 -> /share/soft/python-2.7.15/bin/python2.7
-rwxr-xr-x. 1 root root 7216 7月 13 2018 python2.7 #系统的python
lrwxrwxrwx. 1 root root 9 9月 28 2018 python2_old -> python2.7
lrwxrwxrwx. 1 root root 36 3月 7 2018 python3 -> /share/soft/python-3.6.4/bin/python3
lrwxrwxrwx. 1 root root 7 9月 28 2018 python_old -> python2
