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detecting-living-off-the-land-with-lolbas

Detect Living Off the Land Binaries (LOLBins/LOLBAS) abuse including

写文件联网无严重或高危命中mukul975/Anthropic-Cybersecurity-Skills

它会碰到什么

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它会碰到什么写文件联网
命中总数3 处
命中统计严重 0 · 高 0 · 中 1 · 低 1

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

Detecting Living Off the Land with LOLBAS

Overview

Living Off the Land Binaries, Scripts, and Libraries (LOLBAS) are legitimate system utilities abused by attackers to execute malicious actions while evading detection. This skill covers detecting abuse of certutil.exe, regsvr32.exe, mshta.exe, rundll32.exe, msbuild.exe, and other LOLBins using process telemetry from Sysmon and Windows Event Logs, combined with Sigma rule-based detection.

When to Use

  • When investigating security incidents that require detecting living off the land with lolbas
  • When building detection rules or threat hunting queries for this domain
  • When SOC analysts need structured procedures for this analysis type
  • When validating security monitoring coverage for related attack techniques

Prerequisites

  • Sysmon or Windows Security Event Log (Event ID 4688) with command-line logging enabled
  • Sigma rule conversion tool (sigmac or sigma-cli)
  • SIEM platform (Splunk, Elastic, or similar) for log ingestion
  • Python 3.8+ with pySigma library
  • LOLBAS project reference database

Steps

  1. Establish LOLBin Watchlist — Build a prioritized list of monitored binaries (certutil, mshta, regsvr32, rundll32, msbuild, installutil, cmstp, wmic, bitsadmin)
  2. Collect Process Telemetry — Ingest Sysmon Event ID 1 (Process Create) and Windows 4688 events with full command-line capture
  3. Build Sigma Detection Rules — Create Sigma rules matching suspicious command-line arguments, network activity, and parent-child process anomalies for each LOLBin
  4. Analyze Parent-Child Relationships — Flag unexpected parent processes spawning LOLBins (e.g., Excel spawning certutil, Word spawning mshta)
  5. Score and Prioritize Alerts — Apply risk scoring based on argument anomaly, parent process, execution path, and network indicators
  6. Generate Detection Report — Produce a structured report of all LOLBin abuse detections with MITRE ATT&CK mapping

Expected Output

  • JSON report listing detected LOLBin abuse events with severity scores
  • MITRE ATT&CK technique mapping for each detection (T1218, T1105, T1140, T1127)
  • Parent-child process anomaly analysis
  • Sigma rule match details with raw event data

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