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Skill evidence / godot-performance-optimization
Skill profile

godot-performance-optimization

Expert blueprint for performance profiling and optimization (frame drops.

What this skill does for you

Expert blueprint for performance profiling and optimization (frame drops, memory leaks, draw calls) using Godot Profiler, object pooling, visibility culling, and bottleneck identification. Use when diagnosing lag, optimizing for target FPS, or reducing memory usage. Keywords profiling, Godot Profiler, bottleneck, object pooling, VisibleOnScreenNotifier, draw calls, MultiMesh.

Quoted from the skill description in the pinned source

Who made it

Publisherthedivergentai
Installs372as of Sep 27, 2026

Use it with Edge

Set up Edge for me: read getedge.cc/SKILL.md and follow it. Then use Edge to load the godot-performance-optimization skill from thedivergentai/gd-agentic-skills.

Paste it into Claude, ChatGPT, Codex or Cursor.

Or read the skill source first.

Security evidence

Security state at 2026-09-30: reviewed. State definitions. This records static evidence for this revision; live load eligibility is checked again.

3 static scans, 0 counted findings. The listed scanners recorded the results shown for this package revision.

ScannerDateResultFindings
Edge static checks2026-09-27Pass0
Cisco skill-scanner2026-09-27Pass0
Semgrep Edge rules2026-09-27Pass0

Static scans check the code, not how well the skill works.

Scanner scope, raw findings and mirrored provider records

Edge static checks (Edge-run): edge-static/1.0.1. Scope: Static patterns for remote execution, credentials with network sends, obfuscation, prompt overrides, hidden Unicode, binaries and persistence. Revision: 4c4d0ff5c4597938cc9257d99d9e35f7692c9c06. Raw findings: . Counted findings: .

Cisco skill-scanner (Edge-run): cisco-skill-scanner/2.1.0. Scope: Local static, YARA, pipeline and behavioral analyzers; no LLM or AI Defense analysis. Revision: 4c4d0ff5c4597938cc9257d99d9e35f7692c9c06. Raw findings: 1. Counted findings: .

Semgrep Edge rules (Edge-run): semgrep/1.178.0+edge-rules.c15016a36fd3+offline-v1. Scope: Six Edge-authored static rules with Semgrep CE; offline execution and metrics disabled. Semgrep-maintained rules excluded. Revision: 4c4d0ff5c4597938cc9257d99d9e35f7692c9c06. Raw findings: . Counted findings: .

Source and licence

Repository
https://github.com/thedivergentai/gd-agentic-skills
Pinned skill file
View source at revision
Revision
4c4d0ff5c4597938cc9257d99d9e35f7692c9c06
Package hash
sha256:b9e42d1e8b33981f021da7ec66363e34ba7a94ed966110473a51c7b79cf5e762
Licence
LGPL-3.0