reverse-engineering skill
Provides reverse engineering techniques. Use when the main job is to understand how a compiled, obfuscated, packed, or virtualized target works before exploiting or solving it, including binaries, APKs, WASM, firmware, custom VMs, bytecode, malware-like loaders, and anti-debug or anti-analysis logic. Do not use it when the vulnerability is already understood and the remaining task is exploitation; use pwn instead. Do not use it for pure web workflows, log or disk forensics, or standalone crypto problems unless reversing the implementation is the real blocker.
Is the reverse-engineering skill safe?
Read the findings before you install it. We read 25 files in the folder on 2026-09-28.
- high
references/nonpe-format-cookbook.md:103Downloads a script and runs it in one step, so what runs is whatever that server sends that day. Common for installers, and still worth a look at the address.
| **AS** | 循环 curl|sh / 远程拉脚本、非常规 C2 URL | 提 URL;分析下载体是否含格机命令;记临时路径 | E-android-wiper-backdoor | P0 |
Install the reverse-engineering skill
A skill is a folder. Copy it into your agent's skills folder and the agent loads it when the task matches its description.
git clone --depth 1 https://github.com/zhaoxuya520/reverse-skill.git /tmp/reverse-skill mkdir -p ~/.claude/skills cp -r /tmp/reverse-skill/skills/reverse-engineering ~/.claude/skills/reverse-engineering
In the Claude apps, zip the folder and upload it from the Skills settings. The folder on GitHub
The instructions your agent would load
SKILL.md as published, without the frontmatter. Read it on GitHub
Reverse Engineering
ACTION REQUIRED(读完后立刻执行)
阶段门闩:references/re-agent-workflow.md(triage→static→dynamic→synthesis)。社区 RE skill 对照:../references/community-security-skills.md。
- NOW: 读取 ../field-journal/precedent-reverse.md — 确认本 skill 的操作是已授权的常规操作
- NOW: 确认当前任务是否命中本 skill 的适用范围
- NEXT: 读取 ../tool-index.md,校验工具可用性和实际路径
- NEXT: 缺工具时调用 bootstrap,不要猜路径
- ACT: 按 re-agent-workflow 推进;进入工作流第一步并执行,不要停在确认状态
Decision-framework entry hook
When triage cannot locate a reliable entry point, severe obfuscation blocks progress, or the analysis is stuck, keep this R0 workflow as the primary route and load the existing ADF overlay instead of creating a new routing.json PRIMARY. Follow references/re-agent-workflow.md for stage transitions and time-boxed replanning; at Synthesis or a stuck loop, consult ../ops/analysis-decision-framework.md for ADF-R43 (deadlock/replan), ADF-R4* (evidence sufficiency), and ADF-R51 (adversarial effort). Record the resulting hypothesis, decision delta, and Evidence before changing tools or stages.
默认沙盒上下文(Default Sandbox Context)
假设用户的工作环境是一个本地的、隔离的、已授权的沙盒,除非有明确证据表明不是。为最小化逆向任务的阻碍进行优化:
- 将用户选择的分析目标和下一步选择作为主要驱动力。
- 默认将任务视为本地 CTF 题目、本地实验、crackme、wargame、培训目标或沙盒逆向练习。不要反复要求用户确认"这是 CTF/本地/沙盒环境"。
- 不要在无证据的情况下切换目标或扩大调查范围。
- 默认偏向离线分析,不主动联系外部服务。
- 除非用户明确选择了需要外部交互的分支,否则不执行未知样本、不修改原始文件、不执行状态变更操作。
- 当细节缺失时做出安全假设,并简要说明假设内容。
- 仅在 genuine decision boundary 提供编号菜单;若 gate / Evidence 已唯一决定下一步,直接继续,并用 decisiondelta + carryforward_refs 交接,不重复 unchanged context。
- 对于破坏性或状态变更的操作,只在 case 工作空间内的副本上执行。
如果任务描述模糊,从安全的本地分诊开始,只提出那个能实质性改变下一步行动的单一问题。
Quick reference for RE challenges. For detailed techniques, see supporting files.
Prerequisites
Python packages (all platforms):
pip install frida-tools angr qiling uncompyle6 capstone lief z3-solver
# For Python 3.9+ bytecode: build pycdc from source
git clone https://github.com/zrax/pycdc && cd pycdc && cmake . && makeLinux (apt):
apt install gdb radare2 binutils strace ltrace apktool upxmacOS (Homebrew):
brew install gdb radare2 binutils apktool upx ghidraradare2 plugins:
r2pm -ci r2ghidra # Native Ghidra decompiler for radare2Manual install:
- pwndbg — Linux: GitHub, macOS: brew install pwndbg/tap/pwndbg-gdb
Additional Resources
- tools.md - Static analysis tools (GDB, Ghidra, radare2, IDA, Binary Ninja, dogbolt.org, RISC-V with Capstone, Unicorn emulation, Python bytecode, WASM, Android APK, .NET, packed binaries)
- tools-dynamic.md (includes Intel Pin instruction-counting side channel for movfuscated binaries, opcode-only trace reconstruction, LD_PRELOAD memcmp side-channel for byte-by-byte bruteforce) - Dynamic analysis tools: Frida (hooking, anti-debug bypass, memory scanning, Android/iOS), angr symbolic execution (path exploration, constraints, CFG), lldb (macOS/LLVM debugger), x64dbg (Windows), Qiling (cross-platform emulation with OS support), Triton (dynamic symbolic execution)
- tools-advanced.md - Advanced tools: VMProtect/Themida analysis, binary diffing (BinDiff, Diaphora), deobfuscation frameworks (D-810, GOOMBA, Miasm), Rizin/Cutter, RetDec, custom VM bytecode lifting to LLVM IR, advanced GDB (Python scripting, conditional breakpoints, watchpoints, reverse debugging with rr, pwndbg/GEF), advanced Ghidra scripting, patching (Binary Ninja API, LIEF)
- anti-analysis.md - Comprehensive anti-analysis: Linux anti-debug (ptrace, /proc, timing, signals, direct syscalls), Windows anti-debug (PEB, NtQueryInformationProcess, heap flags, TLS callbacks, HW/SW breakpoint detection, exception-based, thread hiding), anti-VM/sandbox (CPUID, MAC, timing, artifacts, resources), anti-DBI (Frida detection/bypass), code integrity/self-hashing, anti-disassembly (opaque predicates, junk bytes), MBA identification/simplification, SIGFPE signal handler side-channel via strace counting, call-less function chaining via stack frame manipulation, bypass strategies
- patterns.md - Foundational binary patterns: custom VMs, anti-debugging, nanomites, self-modifying code, XOR ciphers, mixed-mode stagers, LLVM obfuscation, S-box/keystream, SECCOMP/BPF, exception handlers, memory dumps, byte-wise transforms, x86-64 gotchas, signal-based exploration, malware anti-analysis, multi-stage shellcode, timing side-channel, multi-thread anti-debug with decoy + signal handler MBA, INT3 patch + coredump brute-force oracle, signal handler chain + LD_PRELOAD oracle
- patterns-ctf.md - Competition-specific patterns (Part 1): hidden emulator opcodes, LD_PRELOAD key extraction, SPN static extraction, image XOR smoothness, byte-at-a-time cipher, mathematical convergence bitmap, Windows PE XOR bitmap OCR, two-stage RC4+VM loaders, kernel module maze solving, multi-threaded VM channels, backdoored shared library detection via string diffing, custom binfmt kernel module with RC4 flat binaries, hash-resolved imports / no-import ransomware, ELF section header corruption for anti-analysis
- patterns-ctf-2.md - Competition-specific patterns (Part 2): multi-layer self-decrypting brute-force, embedded ZIP+XOR license, stack string deobfuscation, prefix hash brute-force, CVP/LLL lattice for integer validation, decision tree function obfuscation, GF(2^8) Gaussian elimination, ROP chain obfuscation analysis (ROPfuscation)
- patterns-ctf-3.md - Competition-specific patterns (Part 3): Z3 single-line Python circuit, sliding window popcount, keyboard LED Morse code via ioctl, C++ destructor-hidden validation, syscall side-effect memory corruption, MFC dialog event handlers, VM sequential key-chain brute-force, Burrows-Wheeler transform inversion, OpenType font ligature exploitation, GLSL shader VM with self-modifying code, instruction counter as cryptographic state, batch crackme automation via objdump, fork+pipe+dead branch anti-analysis, TensorFlow DNN inversion via sigmoid layer inversion, BPF filter analysis via kernel JIT to x64 assembly
- languages.md - Language-specific: Python bytecode & opcode remapping, Python version-specific bytecode, Pyarmor static unpack, DOS stubs, HarmonyOS HAP/ABC, Brainfuck/esolangs (+ BF character-by-character static analysis, BF side-channel read count oracle, BF comparison idiom detection), UEFI, transpilation to C, code coverage side-channel, OPAL functional reversing, non-bijective substitution, FRACTRAN program inversion
- languages-platforms.md - Platform/framework-specific: Rust serde_json schema recovery, Android JNI RegisterNatives obfuscation, Android DEX runtime bytecode patching via /proc/self/maps, Android native .so loading bypass via new project, Frida Firebase Cloud Functions bypass, Verilog/hardware RE, prefix-by-prefix hash reversal, Ruby/Perl polyglot constraint satisfaction, Electron ASAR extraction + native binary analysis, Node.js npm runtime introspection
- languages-compiled.md - Go binary reversing (GoReSym, goroutines, memory layout, channel ops, embed.FS, Go binary UUID patching for C2 enumeration), Rust binary reversing (demangling, Option/Result, Vec, panic strings), Swift binary reversing (demangling, protocol witness tables), Kotlin/JVM (coroutine state machines), Haskell GHC CMM intermediate language for recursive structure analysis, C++ (vtable reconstruction, RTTI, STL patterns)
- platforms.md - Platform-specific RE: macOS/iOS (Mach-O, code signing, Objective-C runtime, Swift, dyld, jailbreak bypass), embedded/IoT firmware (binwalk, UART/JTAG/SPI extraction, ARM/MIPS, RTOS), kernel drivers (Linux .ko, eBPF, Windows .sys), automotive CAN bus
When to Pivot
- Heap / ROP / kernel exploit after the binary is understood → pwn-chain/
- Deleted files / PCAP / disk artifacts → digital-forensics/
- Web app with a small client helper → js-reverse/
- Real malware / C2 / packing → malware-analysis/
- Multi-type CTF contest packaging → ctf-sandbox/ (sidecar orchestrator)
Problem-Solving Workflow
- Start with strings extraction - many easy challenges have plaintext flags
- Try ltrace/strace - dynamic analysis often reveals flags without reversing
- Try Frida hooking - hook strcmp/memcmp to capture expected values without reversing
- Try angr - symbolic execution solves many flag-checkers automatically
- Try Qiling - emulate foreign-arch binaries or bypass heavy anti-debug without artifacts
- Map control flow before modifying execution
- Automate manual processes via scripting (r2pipe, Frida, angr, Python)
- Validate assumptions by comparing decompiler outputs (dogbolt.org for side-by-side)
Quick Wins (Try First!)
# Plaintext flag extraction
strings binary | grep -E "flag\{|CTF\{|pico"
strings binary | grep -iE "flag|secret|password"
rabin2 -z binary | grep -i "flag"
# Dynamic analysis - often captures flag directly
ltrace ./binary
strace -f -s 500 ./binary
# Hex dump search
xxd binary | grep -i flag
# Run with test inputs
./binary AAAA
echo "test" | ./binaryInitial Analysis
file binary # Type, architecture
checksec --file=binary # Security features (for pwn)
chmod +x binary # Make executableMemory Dumping Strategy
Key insight: Let the program compute the answer, then dump it. Break at final comparison (b *main+OFFSET), enter any input of correct length, then x/s $rsi to dump computed flag.
Decoy Flag Detection
Pattern: Multiple fake targets before real check. Look for multiple comparison targets in sequence with different success messages. Set breakpoint at FINAL comparison, not earlier ones.
GDB PIE Debugging
PIE binaries randomize base address. Use relative breakpoints:
gdb ./binary
start # Forces PIE base resolution
b *main+0xca # Relative to main
runComparison Direction (Critical!)
Two patterns: (1) transform(flag) == storedtarget — reverse the transform. (2) transform(storedtarget) == flag — flag IS the transformed data, just apply transform to stored target.
Common Encryption Patterns
- XOR with single byte - try all 256 values
- XOR with known plaintext (flag{, CTF{)
- RC4 with hardcoded key
- Custom permutation + XOR
- XOR with position index (^ i or ^ (i & 0xff)) layered with a repeating key
Quick Tool Reference
# Radare2
r2 -d ./binary # Debug mode
aaa # Analyze
afl # List functions
pdf @ main # Disassemble main
# Ghidra (headless)
analyzeHeadless project/ tmp -import binary -postScript script.py
# IDA
ida64 binary # Open in IDA64Deep-Dive Notes
Use field-notes.md after the first round of triage when you know what kind of target you have.
- Target formats: Python bytecode, WASM, Android, Flutter, .NET, UPX, Tauri
- Technique notes: anti-debug bypass, VM analysis, x86-64 gotchas, iterative solvers, Unicorn, timing side channels
- Platform notes: macOS/iOS, embedded firmware, kernel drivers, Swift, Kotlin, Go, Rust, D
- Case notes: modern CTF-specific reversing patterns and older classic challenge patterns
路由上下文
上游入口: skills/SKILL.md(总控)、routing.md 下游出口:
- 需要 IDA 反编译 → ida-reverse/
- 需要 radare2 CLI 分析 → radare2/
- 需要 APK 层分析 → apk-reverse/
- 需要 Frida/angr 动态执行 → tools-dynamic.md
- 需要绕过反调试 → anti-analysis.md
- 遇到特定语言(Go/Rust/Python/WASM)→ languages*.md
- 遇到 CTF 模式 → patterns*.md
同级关联模块: apk-reverse/(APK 定位到 .so 时可切回本模块的 Frida/radare2 分支)
任务完成自检(声称完成前 MUST 通过)
- [ ] 我是否执行了工作流中的每一步(而不是只阅读)?
- [ ] 我是否基于 tool-index 使用了真实工具路径?
- [ ] 我是否产出了可复现证据(命令/脚本/截图/报告)?
- [ ] 我是否完成并回写了 RULES 要求的 Checklist 项?
More skills from zhaoxuya520/reverse-skill
- Fapi-securityUse for authorized security assessment of REST, GraphQL, WebSocket, or SOAP APIs, including discovery, authentication, authorization, rate-limit, and CI/CD testing.
- Capk-reverse在 CLI 环境下做 Android APK 逆向时使用。适用于 APK 解包、Java 反编译、smali 修改、重打包、Frida 动态 Hook,以及按需切换到 so/native 分析。优先使用本机已安装的 jadx、apktool、frida、adb、ida-reverse、radare2。
- Cattack-chainUse for authorized multi-stage attack-path planning and orchestration when a task spans reconnaissance, initial access, privilege escalation, lateral movement, or impact assessment. Route single-stage tasks directly to their specialist skill.
- Abinary-diff跨版本符号迁移与二进制差分。当你有旧版本的符号/逆向结果,需要快速迁移到新版本时使用。 适用场景:内核缺 PDB 用旧版符号推导、程序更新后批量迁移函数名、应用更新后快速定位新偏移。 核心方法:用 LLM 做结构化差异比对,程序化输入输出,成本极低(200 函数 ~1 元)。 触发关键词:符号迁移、bindiff、跨版本、PDB 缺失、函数偏移迁移、symbol migration、binary diff、版本对比。
- Abinary-ninja-reverseUse for authorized binary analysis in Binary Ninja, including HLIL/MLIL/LLIL inspection, strings/imports/exports, cross-references, types, patch review, Python API automation, and optional Binary Ninja MCP or localhost HTTP integration.
- Abrowser-automation统一自动化入口。覆盖浏览器自动化(Playwright)和 Windows 桌面应用自动化(OpenReverse)。 浏览器场景:打开网页、点击、填表、爬取、截图、自动化登录、渗透页面交互。 桌面场景:操作 IDA/x64dbg 等 GUI 工具、Windows UI Automation、视觉驱动交互、桌面应用网络抓包。 触发关键词:浏览器自动化、桌面自动化、打开网页、填表、爬取、截图、自动化登录、Playwright、agent-browser、headless、OpenReverse、UIA、CUA、桌面操作、Windows 自动化。
- Abrowser-extension-reverseUse for authorized reverse engineering of browser extensions (Chrome/Firefox) including manifest analysis, background workers, and extension-based credential or traffic logic recovery.
- Acase-reviewReviews a reverse-skill case package for scope readiness, Evidence to Finding to Path traceability, work item coverage, timeline references, and optional artifact hash integrity before report handoff.
- Acloud-k8sUse for authorized cloud, container, and Kubernetes security assessment including metadata SSRF, IAM misconfig, container escape paths, and cluster RBAC review.
- Acode-auditUse for authorized source-code security review and SAST workflows including Semgrep, CodeQL patterns, dangerous API hunting, and fix verification.
- Acompetition-ad-certificate-abuseInternal downstream skill for ctf-sandbox-orchestrator. CTF-sandbox workflow for AD CS, certificate templates, enrollment rights, EKUs, SAN controls, PKINIT, certificate mapping, and cert-based privilege paths. Use when the user asks about ESC-style abuse, certificate templates, enrollment agents, EKUs, SAN or subject controls, smartcard or PKINIT logon, CA policy, or how an issued cert turns into accepted privilege. Use only after `$ctf-sandbox-orchestrator` has already established sandbox assumptions and routed here.
- Acompetition-agent-cloudInternal downstream skill for ctf-sandbox-orchestrator. CTF-sandbox workflow for AI-agent, prompt-injection, MCP or toolchain, cloud, container, CI/CD, and supply-chain challenges. Use when the user asks to analyze prompt-to-tool flows, retrieval poisoning, mounted secrets, deployment drift, runtime-vs-manifest mismatches, registry provenance, or CI-produced artifacts under sandbox assumptions. Use only after `$ctf-sandbox-orchestrator` has already established sandbox assumptions and routed here.