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shadowsocks-libev/README.md
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Rename the project to shadowsocks-c while retaining ss-* commands, the embedding ABI, and legacy library/package lookup compatibility.

Replace libev with bundled libuv for IOCP/kqueue event backends, expand asynchronous runtime DNS coverage, and add actionlint/Ruff with strict clang-tidy failure handling. Validate native platforms, static builds, packaging, interoperability, sanitizers, and canonical/legacy consumers.

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# shadowsocks-c
[![Build Status](https://travis-ci.com/shadowsocks/shadowsocks-libev.svg?branch=master)](https://travis-ci.com/shadowsocks/shadowsocks-libev) [![Snap Status](https://snapcraft.io/shadowsocks-libev/badge.svg)](https://snapcraft.io/shadowsocks-libev)
## Intro
[shadowsocks-c](https://shadowsocks.org) is a lightweight secured SOCKS5
proxy for embedded devices and low-end boxes.
It is a port of [Shadowsocks](https://github.com/shadowsocks/shadowsocks)
created by [@clowwindy](https://github.com/clowwindy), and maintained by
[@madeye](https://github.com/madeye) and [@linusyang](https://github.com/linusyang).
Current version: 3.3.6 | [Changelog](debian/changelog)
## Features
shadowsocks-c is written in pure C and depends on [libuv](https://libuv.org/). It's designed
to be a lightweight implementation of shadowsocks protocol, in order to keep the resource usage as low as possible.
For a full list of feature comparison between different versions of shadowsocks,
refer to the [Wiki page](https://github.com/shadowsocks/shadowsocks/wiki/Feature-Comparison-across-Different-Versions).
The project is now **shadowsocks-c**. Commands (`ss-local`, `ss-server`, etc.)
and the `shadowsocks.h` API remain compatible. New builds produce
`libshadowsocks-c` with CMake/pkg-config package `shadowsocks-c`; legacy library
filenames and package lookup names remain available as compatibility aliases.
Existing configuration paths, distro package names and service names are retained.
Repository links below still point to the current GitHub repository.
## Quick Start
Snap is the recommended way to install the latest binaries.
### Install snap core
https://snapcraft.io/core
### Install from snapcraft.io
Stable channel:
```bash
sudo snap install shadowsocks-libev
```
Edge channel:
```bash
sudo snap install shadowsocks-libev --edge
```
## Installation
### Distribution-specific guide
- [Debian & Ubuntu](#debian--ubuntu)
+ [Install from repository](#install-from-repository-not-recommended)
+ [Build deb package from source](#build-deb-package-from-source)
+ [Configure and start the service](#configure-and-start-the-service)
- [Fedora & RHEL](#fedora--rhel)
+ [Build from source with centos](#build-from-source-with-centos)
- [Archlinux & Manjaro](#archlinux--manjaro)
- [NixOS](#nixos)
- [Nix](#nix)
- [Directly build and install on UNIX-like system](#linux)
- [FreeBSD](#freebsd)
+ [Install](#install)
+ [Configuration](#configuration)
+ [Run](#run)
+ [Run as client](#run-as-client)
- [OpenWRT](#openwrt)
- [macOS](#macos)
- [Windows (MinGW)](#windows-mingw)
- [Docker](#docker)
* * *
### Build from source (CMake)
The default build uses pinned sources included in this repository. It needs a
C11 compiler, CMake 3.20+, and Make or Ninja. No Git submodules, dependency
package installations, or network access are needed for configuration/build.
Python is used only by integration tests; documentation generation is optional.
```sh
cmake -S . -B build -DCMAKE_BUILD_TYPE=Release
cmake --build build --parallel
ctest --test-dir build -L 'unit|vendor' --output-on-failure
cmake --install build --prefix /your/install/prefix
```
Programs are in `build/bin/`. Bundled binaries link to platform runtime
libraries; they do not require separately installed third-party libraries.
For a smaller build, use `-DSS_MINIMAL=ON`. It excludes PCRE2 regex, plugin
subprocesses, the manager, and legacy stream ciphers. Minimal ACLs support
IPv4/IPv6 CIDRs, `full:example.com` for exact domains, and
`suffix:example.com` for the apex and subdomains. Literal matches ignore ASCII
case and respect label boundaries. Unsupported regex rules are rejected.
Distribution packages can use `-DSS_DEPENDENCY_MODE=system -DWITH_STATIC=OFF`
with libuv, c-ares, libsodium, Mbed TLS 3.x, and PCRE2 development packages.
Use `-DCMAKE_PREFIX_PATH=/opt/homebrew/opt/mbedtls@3` when needed on macOS.
| Option | Default | Purpose |
|---|---|---|
| `SS_DEPENDENCY_MODE` | `bundled` | `bundled` sources or `system` libraries |
| `WITH_STATIC` | `ON` | Link dependency archives; system mode also supports shared dependencies |
| `SS_BUILD_EXECUTABLES` | `ON` | Command-line tools |
| `SS_BUILD_STATIC_LIBRARY` | `ON` | Static embedding library with installed dependency archives |
| `SS_BUILD_SHARED_LIBRARY` | `ON` | Shared embedding library |
| `SS_MINIMAL` | `OFF` | Disable regex, plugins, manager, and legacy stream ciphers |
| `SS_ENABLE_REGEX` / `SS_ENABLE_PLUGINS` / `SS_ENABLE_LEGACY` | `ON` | Individual compatibility features |
| `WITH_DOC_MAN` / `WITH_DOC_HTML` | `OFF` | Generate documentation (requires asciidoc; man pages also need xmlto) |
| `SS_INSTALL_TOOLS` | `OFF` | Install platform shell helpers |
| `ENABLE_SANITIZERS` | `OFF` | AddressSanitizer and UndefinedBehaviorSanitizer |
| `ENABLE_CONNMARKTOS` / `ENABLE_NFTABLES` | `OFF` | Optional Linux firewall integrations |
CMake consumers can use `find_package(shadowsocks-c CONFIG REQUIRED)` and
link `shadowsocks::static`, `shadowsocks::shared`, or `shadowsocks::shadowsocks`
(which prefers the shared library when installed). A pkg-config file is also
installed. Dependency provenance and update instructions are in
[third_party/README.md](third_party/README.md); modernization progress and
validation limits are tracked in [docs/modernization.md](docs/modernization.md).
### Debian & Ubuntu
#### Distribution packages
Package availability and versions depend on the distribution release; packaged
versions can differ from this source branch.
```bash
sudo apt update
sudo apt install shadowsocks-libev
```
#### Build deb package from source
Install the build dependencies listed in `debian/control`, then build the
packages from this checkout:
```bash
dpkg-buildpackage -b -us -uc
```
Debian packaging explicitly uses system libraries. For a bundled build without
library development packages, use the [CMake instructions](#build-from-source-cmake).
#### Configure and start the service
```
# Edit the configuration file
sudo vim /etc/shadowsocks-libev/config.json
# Edit the default configuration for debian
sudo vim /etc/default/shadowsocks-libev
# Start the service
sudo /etc/init.d/shadowsocks-libev start # for sysvinit, or
sudo systemctl start shadowsocks-libev # for systemd
```
### Fedora & RHEL
Use the bundled CMake build above with a C11 compiler, CMake 3.20+ and Make
or Ninja. Older distribution toolchains may need upgrading. Autotools, gettext
and separately installed crypto/event/DNS development libraries are not required
for bundled mode.
### Archlinux & Manjaro
```bash
sudo pacman -S shadowsocks-libev
```
Please refer to downstream [PKGBUILD](https://github.com/archlinux/svntogit-community/blob/packages/shadowsocks-libev/trunk/PKGBUILD)
script for extra modifications and distribution-specific bugs.
### NixOS
```bash
nix-env -iA nixos.shadowsocks-libev
```
### Nix
```bash
nix-env -iA nixpkgs.shadowsocks-libev
```
### Linux
The default bundled build needs only a C11 compiler, CMake 3.20+ and Make
or Ninja. For example, on Debian/Ubuntu:
```bash
sudo apt-get install --no-install-recommends build-essential cmake
cmake -S . -B build
cmake --build build --parallel
ctest --test-dir build -L 'unit|vendor' --output-on-failure
sudo cmake --install build
```
Distribution packagers can install `libpcre2-dev libuv1-dev libc-ares-dev
libmbedtls-dev libsodium-dev` and select `-DSS_DEPENDENCY_MODE=system
-DWITH_STATIC=OFF`. Documentation additionally needs asciidoc and xmlto.
### FreeBSD
#### Install
Shadowsocks-libev is available in FreeBSD Ports Collection. You can install it in either way, `pkg` or `ports`.
**pkg (recommended)**
```bash
pkg install shadowsocks-libev
```
**ports**
```bash
cd /usr/ports/net/shadowsocks-libev
make install
```
#### Configuration
Edit your `config.json` file. By default, it's located in `/usr/local/etc/shadowsocks-libev`.
To enable shadowsocks-libev, add the following rc variable to your `/etc/rc.conf` file:
```
shadowsocks_libev_enable="YES"
```
#### Run
Start the Shadowsocks server:
```bash
service shadowsocks_libev start
```
#### Run as client
By default, shadowsocks-libev is running as a server in FreeBSD. If you would like to start shadowsocks-libev in client mode, you can modify the rc script (`/usr/local/etc/rc.d/shadowsocks_libev`) manually.
```
# modify the following line from "ss-server" to "ss-local"
command="/usr/local/bin/ss-local"
```
Note that is simply a workaround, each time you upgrade the port your changes will be overwritten by the new version.
### OpenWRT
The OpenWRT project is maintained here:
[openwrt-shadowsocks](https://github.com/shadowsocks/openwrt-shadowsocks).
### macOS
Use the bundled CMake instructions above with Xcode Command Line Tools and
CMake. The bundled executables require no Homebrew runtime libraries.
For system mode, use Mbed TLS 3 and point `CMAKE_PREFIX_PATH` at its prefix.
### Windows (MinGW)
In an MSYS2 UCRT64 shell, install the toolchain and build native Windows programs:
```bash
pacman -S --needed mingw-w64-ucrt-x86_64-gcc mingw-w64-ucrt-x86_64-cmake mingw-w64-ucrt-x86_64-ninja
cmake -S . -B build -G Ninja
cmake --build build --parallel
ctest --test-dir build -L 'unit|vendor' --output-on-failure
```
Unix hosts with Zig installed can cross-compile without a separate MinGW SDK:
```bash
cmake -S . -B build-windows -DCMAKE_TOOLCHAIN_FILE=cmake/toolchains/zig-windows.cmake
cmake --build build-windows --parallel
```
Cross-compilation does not run Windows tests. The portability workflow runs
native UCRT64 tests and TCP/UDP relay checks on Windows. Bundled mode is required
with a bundled libuv IOCP backend. MSVC remains a
separate, unsupported milestone; configuration reports this explicitly.
The historical Autotools scripts in `docker/mingw` are superseded by this build.
### Docker
As you expect, simply pull the image and run.
```
docker pull shadowsocks/shadowsocks-libev
docker run -e PASSWORD=<password> -p<server-port>:8388 -p<server-port>:8388/udp -d shadowsocks/shadowsocks-libev
```
More information about the image can be found [here](docker/alpine/README.md).
## Usage
For a detailed and complete list of all supported arguments,
you may refer to the man pages of the applications, respectively.
ss-[local|redir|server|tunnel|manager]
-s <server_host> Host name or IP address of your remote server.
-p <server_port> Port number of your remote server.
-l <local_port> Port number of your local server.
-k <password> Password of your remote server.
-m <encrypt_method> Encrypt method:
2022-blake3-aes-128-gcm,
2022-blake3-aes-256-gcm,
2022-blake3-chacha20-poly1305,
rc4-md5,
aes-128-gcm, aes-192-gcm, aes-256-gcm,
aes-128-cfb, aes-192-cfb, aes-256-cfb,
aes-128-ctr, aes-192-ctr, aes-256-ctr,
camellia-128-cfb, camellia-192-cfb,
camellia-256-cfb, bf-cfb,
chacha20-ietf-poly1305,
xchacha20-ietf-poly1305,
salsa20, chacha20 and chacha20-ietf.
The default cipher is chacha20-ietf-poly1305.
The 2022-blake3-* ciphers implement
Shadowsocks 2022 (SIP022) and are the
recommended choice. They take a
base64-encoded pre-shared key of exactly
the cipher's key size via -k, not a
password: generate one with
`openssl rand -base64 32` (or 16 for
2022-blake3-aes-128-gcm).
[--server-url <ss_url>] Take the server address, port, cipher,
password and SIP003 plugin from a single
ss:// URL (SIP002 or the legacy form).
ss-local only. Options given later on the
command line override the URL's values.
[-a <user>] Run as another user.
[-f <pid_file>] The file path to store pid.
[-t <timeout>] Socket timeout in seconds.
[-c <config_file>] The path to config file.
[-n <number>] Max number of open files.
[-i <interface>] Network interface to bind.
(not available in redir mode)
[-b <local_address>] Local address to bind.
For servers: Specify the local address to use
while this server is making outbound
connections to remote servers on behalf of the
clients.
For clients: Specify the local address to use
while this client is making outbound
connections to the server.
[-u] Enable UDP relay.
(TPROXY is required in redir mode)
[-U] Enable UDP relay and disable TCP relay.
(not available in local mode)
[-T] Use tproxy instead of redirect. (for tcp)
(only available in redir mode)
[-L <addr>:<port>] Destination server address and port
for local port forwarding.
(only available in tunnel mode)
[-6] Resolve hostname to IPv6 address first.
[-d <addr>] Name servers for internal DNS resolver.
(only available in server mode)
[--reuse-port] Enable port reuse.
[--fast-open] Enable TCP fast open.
with Linux kernel > 3.7.0.
(only available in local and server mode)
[--acl <acl_file>] Path to ACL (Access Control List).
(only available in local and server mode)
[--manager-address <addr>] UNIX domain socket address.
(only available in server and manager mode)
[--mtu <MTU>] MTU of your network interface.
[--mptcp] Enable Multipath TCP on MPTCP Kernel.
[--no-delay] Enable TCP_NODELAY.
[--executable <path>] Path to the executable of ss-server.
(only available in manager mode)
[-D <path>] Path to the working directory of ss-manager.
(only available in manager mode)
[--key <key_in_base64>] Key of your remote server.
[--plugin <name>] Enable SIP003 plugin. (Experimental)
[--plugin-opts <options>] Set SIP003 plugin options. (Experimental)
[-v] Verbose mode.
## Helper Scripts
### ss-setup
`ss-setup` is an interactive TUI (text user interface) tool for setting up shadowsocks-libev server and client configurations. It uses `whiptail` or `dialog` for the menu interface.
It is installed automatically by `make install` and can also be run directly from `scripts/ss-setup.sh`.
**Prerequisites:** `whiptail` or `dialog`, `openssl` (optional, for password generation)
#### Server setup (with systemd service)
Run as root for full functionality (config + systemd service installation):
```bash
sudo ss-setup
```
This launches an interactive menu that walks you through:
1. Choosing a config instance name
2. Setting the listen address and port (manual or random high port)
3. Selecting an AEAD cipher (chacha20-ietf-poly1305, aes-256-gcm, etc.)
4. Generating or entering a password
5. Configuring timeout, network mode (TCP/UDP), and TCP Fast Open
6. Optionally selecting a SIP003 plugin
7. Installing and starting a systemd service
The config is saved to `/etc/shadowsocks-libev/<name>.json` and a systemd template service `shadowsocks-libev-server@<name>.service` is created.
At the end, it displays a `ss://` URI you can import into clients.
#### Client config generation
Select "Generate ss-local client config" from the main menu. The wizard prompts for the remote server address, port, cipher, password, and local SOCKS5 port, then writes a JSON config:
```bash
# Run without root to generate config in the current directory
ss-setup
# Select: client -> fill in server details -> save
# Then start the client
ss-local -c ~/ss-client.json
```
#### Config-only mode (non-root)
When run without root, `ss-setup` skips service installation and plugin management, but still generates config files in the current directory:
```bash
ss-setup
# Config saved to ./config.json (in current directory)
# Start manually:
ss-server -c ./config.json
```
#### Service management
From the main menu, select "Manage running services" to start, stop, restart, enable/disable, or view logs for any configured instance:
```
sudo ss-setup
# Select: service -> pick instance -> start/stop/restart/logs
```
#### Plugin installation
Select "Install a SIP003 plugin" from the main menu (requires root). Supports automatic download of:
- simple-obfs (build from source or package manager)
- v2ray-plugin (GitHub release)
- xray-plugin (GitHub release)
- kcptun (GitHub release)
- Custom plugin binary
### ss-nat
`ss-nat` is a helper script that sets up iptables NAT rules for `ss-redir` to provide transparent TCP/UDP redirection. Enable `-DSS_INSTALL_TOOLS=ON` to install it on Linux.
**Prerequisites:** Linux with `iptables`, `ipset`, and optionally TPROXY kernel module for UDP
#### Basic usage (TCP redirect)
```bash
# Start ss-redir first
ss-redir -s YOUR_SERVER_IP -p 8388 -l 1080 -k PASSWORD -m chacha20-ietf-poly1305 -u
# Set up NAT rules to redirect TCP traffic through ss-redir
sudo ss-nat -s YOUR_SERVER_IP -l 1080
```
#### Enable UDP relay with TPROXY
```bash
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -u
```
#### Apply rules to OUTPUT chain (proxy the local machine itself)
```bash
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -u -o
```
#### Use separate TCP/UDP servers
```bash
sudo ss-nat -s TCP_SERVER_IP -l 1080 -S UDP_SERVER_IP -L 1080 -U
```
#### Bypass specific WAN IPs
```bash
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -b "1.2.3.4 5.6.7.8"
```
#### Use a bypass IP list file
```bash
# Create a file with one IP/CIDR per line
echo "1.2.3.0/24" > /etc/ss-bypass.list
echo "5.6.7.0/24" >> /etc/ss-bypass.list
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -i /etc/ss-bypass.list
```
#### LAN access control
```bash
# Whitelist mode: only proxy traffic from these LAN IPs
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -a "w192.168.1.10 192.168.1.20"
# Blacklist mode: proxy all LAN traffic except these IPs
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -a "b192.168.1.100"
```
#### Flush all rules
```bash
sudo ss-nat -f
```
#### Complete example: transparent proxy gateway
Set up a Linux box as a transparent proxy gateway for the entire LAN:
```bash
# 1. Start ss-redir with UDP relay
ss-redir -s YOUR_SERVER_IP -p 8388 -l 1080 -k PASSWORD \
-m chacha20-ietf-poly1305 -u -f /var/run/ss-redir.pid
# 2. Set up NAT rules (TCP + UDP, apply to local OUTPUT too)
sudo ss-nat -s YOUR_SERVER_IP -l 1080 -u -o -I eth0
# 3. Point other devices' default gateway to this machine's LAN IP
# and set their DNS to a public resolver (e.g., 1.1.1.1 or 8.8.8.8)
# To tear down:
sudo ss-nat -f
```
## Transparent proxy (manual iptables)
The latest shadowsocks-libev has provided a *redir* mode. You can configure your Linux-based box or router to proxy all TCP traffic transparently, which is handy if you use an OpenWRT-powered router.
Note: For most use cases, [`ss-nat`](#ss-nat) above is simpler than writing iptables rules manually.
# Create new chain
iptables -t nat -N SHADOWSOCKS
iptables -t mangle -N SHADOWSOCKS
# Ignore your shadowsocks server's addresses
# It's very IMPORTANT, just be careful.
iptables -t nat -A SHADOWSOCKS -d 123.123.123.123 -j RETURN
# Ignore LANs and any other addresses you'd like to bypass the proxy
# See Wikipedia and RFC5735 for full list of reserved networks.
# See ashi009/bestroutetb for a highly optimized CHN route list.
iptables -t nat -A SHADOWSOCKS -d 0.0.0.0/8 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 10.0.0.0/8 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 127.0.0.0/8 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 169.254.0.0/16 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 172.16.0.0/12 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 192.168.0.0/16 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 224.0.0.0/4 -j RETURN
iptables -t nat -A SHADOWSOCKS -d 240.0.0.0/4 -j RETURN
# Anything else should be redirected to shadowsocks's local port
iptables -t nat -A SHADOWSOCKS -p tcp -j REDIRECT --to-ports 12345
# Add any UDP rules
ip route add local default dev lo table 100
ip rule add fwmark 1 lookup 100
iptables -t mangle -A SHADOWSOCKS -p udp --dport 53 -j TPROXY --on-port 12345 --tproxy-mark 0x01/0x01
# Apply the rules
iptables -t nat -A PREROUTING -p tcp -j SHADOWSOCKS
iptables -t mangle -A PREROUTING -j SHADOWSOCKS
# Start the shadowsocks-redir
ss-redir -u -c /etc/config/shadowsocks.json -f /var/run/shadowsocks.pid
## Transparent proxy (pure tproxy)
Executing this script on the linux host can proxy all outgoing traffic of this machine (except the traffic sent to the reserved address). Other hosts under the same LAN can also change their default gateway to the ip of this linux host (at the same time change the dns server to 1.1.1.1 or 8.8.8.8, etc.) to proxy their outgoing traffic.
> Of course, the ipv6 proxy is similar, just change `iptables` to `ip6tables`, `ip` to `ip -6`, `127.0.0.1` to `::1`, and other details.
```shell
#!/bin/bash
start_ssredir() {
# please modify MyIP, MyPort, etc.
(ss-redir -s MyIP -p MyPort -m MyMethod -k MyPasswd -b 127.0.0.1 -l 60080 --no-delay -u -T -v </dev/null &>>/var/log/ss-redir.log &)
}
stop_ssredir() {
kill -9 $(pidof ss-redir) &>/dev/null
}
start_iptables() {
##################### SSREDIR #####################
iptables -t mangle -N SSREDIR
# connection-mark -> packet-mark
iptables -t mangle -A SSREDIR -j CONNMARK --restore-mark
iptables -t mangle -A SSREDIR -m mark --mark 0x2333 -j RETURN
# please modify MyIP, MyPort, etc.
# ignore traffic sent to ss-server
iptables -t mangle -A SSREDIR -p tcp -d MyIP --dport MyPort -j RETURN
iptables -t mangle -A SSREDIR -p udp -d MyIP --dport MyPort -j RETURN
# ignore traffic sent to reserved addresses
iptables -t mangle -A SSREDIR -d 0.0.0.0/8 -j RETURN
iptables -t mangle -A SSREDIR -d 10.0.0.0/8 -j RETURN
iptables -t mangle -A SSREDIR -d 100.64.0.0/10 -j RETURN
iptables -t mangle -A SSREDIR -d 127.0.0.0/8 -j RETURN
iptables -t mangle -A SSREDIR -d 169.254.0.0/16 -j RETURN
iptables -t mangle -A SSREDIR -d 172.16.0.0/12 -j RETURN
iptables -t mangle -A SSREDIR -d 192.0.0.0/24 -j RETURN
iptables -t mangle -A SSREDIR -d 192.0.2.0/24 -j RETURN
iptables -t mangle -A SSREDIR -d 192.88.99.0/24 -j RETURN
iptables -t mangle -A SSREDIR -d 192.168.0.0/16 -j RETURN
iptables -t mangle -A SSREDIR -d 198.18.0.0/15 -j RETURN
iptables -t mangle -A SSREDIR -d 198.51.100.0/24 -j RETURN
iptables -t mangle -A SSREDIR -d 203.0.113.0/24 -j RETURN
iptables -t mangle -A SSREDIR -d 224.0.0.0/4 -j RETURN
iptables -t mangle -A SSREDIR -d 240.0.0.0/4 -j RETURN
iptables -t mangle -A SSREDIR -d 255.255.255.255/32 -j RETURN
# mark the first packet of the connection
iptables -t mangle -A SSREDIR -p tcp --syn -j MARK --set-mark 0x2333
iptables -t mangle -A SSREDIR -p udp -m conntrack --ctstate NEW -j MARK --set-mark 0x2333
# packet-mark -> connection-mark
iptables -t mangle -A SSREDIR -j CONNMARK --save-mark
##################### OUTPUT #####################
# proxy the outgoing traffic from this machine
iptables -t mangle -A OUTPUT -p tcp -m addrtype --src-type LOCAL ! --dst-type LOCAL -j SSREDIR
iptables -t mangle -A OUTPUT -p udp -m addrtype --src-type LOCAL ! --dst-type LOCAL -j SSREDIR
##################### PREROUTING #####################
# proxy traffic passing through this machine (other->other)
iptables -t mangle -A PREROUTING -p tcp -m addrtype ! --src-type LOCAL ! --dst-type LOCAL -j SSREDIR
iptables -t mangle -A PREROUTING -p udp -m addrtype ! --src-type LOCAL ! --dst-type LOCAL -j SSREDIR
# hand over the marked package to TPROXY for processing
iptables -t mangle -A PREROUTING -p tcp -m mark --mark 0x2333 -j TPROXY --on-ip 127.0.0.1 --on-port 60080
iptables -t mangle -A PREROUTING -p udp -m mark --mark 0x2333 -j TPROXY --on-ip 127.0.0.1 --on-port 60080
}
stop_iptables() {
##################### PREROUTING #####################
iptables -t mangle -D PREROUTING -p tcp -m mark --mark 0x2333 -j TPROXY --on-ip 127.0.0.1 --on-port 60080 &>/dev/null
iptables -t mangle -D PREROUTING -p udp -m mark --mark 0x2333 -j TPROXY --on-ip 127.0.0.1 --on-port 60080 &>/dev/null
iptables -t mangle -D PREROUTING -p tcp -m addrtype ! --src-type LOCAL ! --dst-type LOCAL -j SSREDIR &>/dev/null
iptables -t mangle -D PREROUTING -p udp -m addrtype ! --src-type LOCAL ! --dst-type LOCAL -j SSREDIR &>/dev/null
##################### OUTPUT #####################
iptables -t mangle -D OUTPUT -p tcp -m addrtype --src-type LOCAL ! --dst-type LOCAL -j SSREDIR &>/dev/null
iptables -t mangle -D OUTPUT -p udp -m addrtype --src-type LOCAL ! --dst-type LOCAL -j SSREDIR &>/dev/null
##################### SSREDIR #####################
iptables -t mangle -F SSREDIR &>/dev/null
iptables -t mangle -X SSREDIR &>/dev/null
}
start_iproute2() {
ip route add local default dev lo table 100
ip rule add fwmark 0x2333 table 100
}
stop_iproute2() {
ip rule del table 100 &>/dev/null
ip route flush table 100 &>/dev/null
}
start_resolvconf() {
# or nameserver 8.8.8.8, etc.
echo "nameserver 1.1.1.1" >/etc/resolv.conf
}
stop_resolvconf() {
echo "nameserver 114.114.114.114" >/etc/resolv.conf
}
start() {
echo "start ..."
start_ssredir
start_iptables
start_iproute2
start_resolvconf
echo "start end"
}
stop() {
echo "stop ..."
stop_resolvconf
stop_iproute2
stop_iptables
stop_ssredir
echo "stop end"
}
restart() {
stop
sleep 1
start
}
main() {
if [ $# -eq 0 ]; then
echo "usage: $0 start|stop|restart ..."
return 1
fi
for funcname in "$@"; do
if [ "$(type -t $funcname)" != 'function' ]; then
echo "'$funcname' not a shell function"
return 1
fi
done
for funcname in "$@"; do
$funcname
done
return 0
}
main "$@"
```
## Security Tips
For any public server, to avoid users accessing localhost of your server, please add `--acl acl/server_block_local.acl` to the command line.
Although shadowsocks-libev can handle thousands of concurrent connections nicely, we still recommend
setting up your server's firewall rules to limit connections from each user:
# Up to 32 connections are enough for normal usage
iptables -A INPUT -p tcp --syn --dport ${SHADOWSOCKS_PORT} -m connlimit --connlimit-above 32 -j REJECT --reject-with tcp-reset
## License
```
Copyright: 2013-2015, Clow Windy <clowwindy42@gmail.com>
2013-2018, Max Lv <max.c.lv@gmail.com>
2014, Linus Yang <linusyang@gmail.com>
This program is free software: you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation, either version 3 of the License, or
(at your option) any later version.
This program is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.
You should have received a copy of the GNU General Public License
along with this program. If not, see <http://www.gnu.org/licenses/>.
```