Overview
- Skill Key
- alexsjones/llmfit
- Author
- alexsjones
- Source Repo
- openclaw/skills
- Version
- -
- Source Path
- skills/alexsjones/llmfit
- Latest Commit SHA
- 7d6c1fc125fb4741fce3b9ced4b5e44482a8a49d
Detect local hardware (RAM, CPU, GPU/VRAM) and recommend the best-fit local LLM models with optimal quantization, speed estimates, and fit scoring.
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直接复制以下提示词,发送给你的 AI 助手即可完成安装。
请先检查是否已安装 SkillHub 商店,若未安装,请根据 https://skillhub-1388575217.cos.ap-guangzhou.myqcloud.com/install/skillhub.md 安装 SkillHub 商店,然后安装 llmfit-advisor 技能。 若已安装,则直接安装 llmfit-advisor 技能。
# llmfit-advisor
Hardware-aware local LLM advisor. Detects your system specs (RAM, CPU, GPU/VRAM) and recommends models that actually fit, with optimal quantization and speed estimates.
## When to use (trigger phrases)
Use this skill immediately when the user asks any of:
- "what local models can I run?"
- "which LLMs fit my hardware?"
- "recommend a local model"
- "what's the best model for my GPU?"
- "can I run Llama 70B locally?"
- "configure local models"
- "set up Ollama models"
- "what models fit my VRAM?"
- "help me pick a local model for coding"
Also use this skill when:
- The user wants to configure `models.providers.ollama` or `models.providers.lmstudio`
- The user mentions running models locally and you need to know what fits
- A model recommendation is needed and the user has local inference capability (Ollama, vLLM, LM Studio)
## Quick start
### Detect hardware
```bash
llmfit --json system
```
Returns JSON with CPU, RAM, GPU name, VRAM, multi-GPU info, and whether memory is unified (Apple Silicon).
### Get top recommendations
```bash
llmfit recommend --json --limit 5
```
Returns the top 5 models ranked by a composite score (quality, speed, fit, context) with optimal quantization for the detected hardware.
### Filter by use case
```bash
llmfit recommend --json --use-case coding --limit 3
llmfit recommend --json --use-case reasoning --limit 3
llmfit recommend --json --use-case chat --limit 3
```
Valid use cases: `general`, `coding`, `reasoning`, `chat`, `multimodal`, `embedding`.
### Filter by minimum fit level
```bash
llmfit recommend --json --min-fit good --limit 10
```
Valid fit levels (best to worst): `perfect`, `good`, `marginal`.
## Understanding the output
### System JSON
```json
{
"system": {
"cpu_name": "Apple M2 Max",
"cpu_cores": 12,
"total_ram_gb": 32.0,
"available_ram_gb": 24.5,
"has_gpu": true,
"gpu_name": "Apple M2 Max",
"gpu_vram_gb": 32.0,
"gpu_count": 1,
"backend": "Metal",...
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