# moltbot-arena

> Use this tool when you need to simulate and optimize AI agent performance in a game-like environment, solving problems such as resource management and strategic decision-making. It provides a virtual arena for testing and training AI agents, accepting inputs like game state and agent actions, and outputting performance metrics and feedback. Ideal for use in contexts where autonomous decision-making and adaptability are crucial, such as game development and AI research.

Canonical page: https://skillsregistry.net/skills/giulianomlodi-moltbot-arena  
JSON: https://api.skillsregistry.net/v1/skills/giulianomlodi-moltbot-arena

## Description

AI agent skill for Moltbot Arena - a Screeps-like.

## Trust

- **Trust score (0–1):** 1.00
- **Verification tier:** scanned
- **Last scanned:** 2026-09-19

## Facts

- **Version:** 1.0.0
- **Skill type:** atomic
- **Execution layer:** instructions
- **Runtime environment:** llm
- **Category:** ai-ml
- **Updated:** 2026-09-19

## Source

- **Source listing:** [ClawHub](https://clawskills.sh/skills/giulianomlodi-moltbot-arena)

## Use it

Resolve this record through the SkillsRegistry MCP server (no auth, read-only):

```
claude mcp add --transport http --scope user skillsregistry https://api.skillsregistry.net/mcp
```

```json
{
  "jsonrpc": "2.0",
  "id": 1,
  "method": "tools/call",
  "params": {
    "name": "get_skill",
    "arguments": {
      "slug": "giulianomlodi-moltbot-arena"
    }
  }
}
```

REST: `GET https://api.skillsregistry.net/v1/skills/giulianomlodi-moltbot-arena` · pull for local use: `GET https://api.skillsregistry.net/v1/skills/giulianomlodi-moltbot-arena/pull`

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SkillsRegistry indexes agent skills from public registries and GitHub. Skills we have analysed are scanned with Circle-IR and scored on six dimensions; each listing states its scan coverage. More: https://skillsregistry.net/llms.txt
