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Complete skill folder anatomy across all cybersecurity skills: - scripts/agent.py: 80-150 line Python agents using real libraries (impacket, boto3, azure-mgmt-*, kubernetes, pefile, yara, scapy, shodan, stix2, etc.) - references/api-reference.md: real API documentation with method signatures - LICENSE: MIT license for all skill folders
2.5 KiB
2.5 KiB
API Reference: Timeline Reconstruction with Plaso Agent
Overview
Wraps Plaso (log2timeline/psort) via subprocess for forensic super-timeline generation, filtering, export, and automated CSV analysis for activity spikes and source distribution.
Dependencies
| Package | Version | Purpose |
|---|---|---|
| csv | stdlib | Timeline CSV parsing |
| subprocess | stdlib | Plaso tool execution |
External Tools Required
| Tool | Purpose |
|---|---|
| log2timeline.py | Forensic timeline generation from disk images |
| psort.py | Timeline filtering, sorting, and export |
Core Functions
run_log2timeline(image_path, storage_file, parsers, filter_file)
Executes log2timeline.py to parse a disk image into a Plaso storage file.
- Parameters:
image_path(str),storage_file(str),parsers(str, optional),filter_file(str, optional) - Timeout: 7200 seconds (2 hours)
- Returns:
dictwith command, returncode, stdout, stderr
run_psort_export(storage_file, output_file, output_format, date_filter)
Exports timeline from Plaso storage to CSV, JSONL, or dynamic format.
- Formats:
l2tcsv,json_line,dynamic - Returns:
dictwith command, returncode, output_file
create_filter_file(filter_path, paths)
Generates a Plaso filter file targeting key forensic artifacts.
- Default paths: winevt, Prefetch, NTUSER.DAT, Chrome, Firefox, MFT, USN Journal, registry
analyze_timeline_csv(csv_path, max_rows)
Statistical analysis of exported timeline: source distribution and hourly activity spikes (>3x average).
- Returns:
dictwithtotal_events,source_counts,spike_hours,avg_events_per_hour
generate_incident_window(storage_file, output_dir, start_date, end_date)
Exports events within a specific date range for focused analysis.
full_pipeline(image_path, output_dir, parsers, start_date, end_date)
End-to-end pipeline: log2timeline -> psort export -> CSV analysis -> incident window -> JSONL export.
Default Parsers
winevtx, prefetch, mft, usnjrnl, lnk, recycle_bin,
chrome_history, firefox_history, winreg
Usage
python agent.py /cases/evidence.dd /cases/timeline/ "2024-01-15 00:00:00" "2024-01-20 23:59:59"
Output Files
| File | Format | Purpose |
|---|---|---|
| evidence.plaso | SQLite | Plaso intermediate storage |
| full_timeline.csv | L2T CSV | Complete super-timeline |
| incident_window.csv | L2T CSV | Filtered incident period |
| timeline.jsonl | JSON Lines | SIEM/Timesketch import |