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performing-supply-chain-attack-simulation

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执行命令联网严重 0 · 高危 1mukul975/Anthropic-Cybersecurity-Skills

它会碰到什么

扫了多少4 个文本文件,27 KB
它会碰到什么执行命令联网
命中总数4 处
命中统计严重 0 · 高 1 · 中 1 · 低 0
逐条看命中(1 条严重或高危)
  • scripts/agent.py:146exec-spawn
    proc = subprocess.run(

这一栏是扫描器报的事实,不是结论。命中多不等于有毒(安全工具、规则库、示例脚本本来就会包含危险写法),命中少也不等于干净。它和你手上的凭据、文件、网络有什么关系,需要你自己看。

技能内容

Performing Supply Chain Attack Simulation

Overview

Software supply chain attacks exploit trust in package registries through typosquatting (registering names similar to popular packages), dependency confusion (publishing higher-version public packages matching private names), and compromised package distribution. This skill detects these attack vectors by computing Levenshtein distance between package names and popular PyPI packages, verifying package integrity via SHA-256 hash comparison, scanning for known CVEs with pip-audit, and testing dependency resolution order for confusion vulnerabilities.

When to Use

  • When conducting security assessments that involve performing supply chain attack simulation
  • When following incident response procedures for related security events
  • When performing scheduled security testing or auditing activities
  • When validating security controls through hands-on testing

Prerequisites

  • Python 3.9+ with pip-audit, Levenshtein, requests
  • Access to PyPI JSON API (https://pypi.org/pypi/{package}/json)
  • Network access for package metadata retrieval

> Legal Notice: This skill is for authorized security testing and educational purposes only. Unauthorized use against systems you do not own or have written permission to test is illegal and may violate computer fraud laws.

Key Detection Areas

  1. Typosquatting — compare package names against top PyPI packages using edit distance thresholds
  2. Dependency confusion — check if internal package names exist on public PyPI with higher version numbers
  3. Hash verification — download packages and verify SHA-256 digests match published hashes
  4. Vulnerability scanning — audit installed packages against OSV and PyPA advisory databases
  5. Metadata anomalies — flag packages with suspicious author emails, missing homepages, or very recent first upload dates

Output

JSON report with risk scores per package, detected attack vectors, hash verification results, and CVE findings.

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