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llm-master — 大模型(LLM)全栈学习路线与中文教程🔥:覆盖 Prompt Engineering、RAG、AI Agent、MCP、微调、模型部署、Transformer、AI 编程与大厂面试,从入门到生产实践。

Chinese LLM curriculum covers prompt engineering, RAG, agents, fine-tuning and deployment.

Steady
Signal score
13
Trajectory
Steady
7-day est. ~18

Why this scored 13

every term, weighted
Velocity+0.7 / 40

Engagement gained per hour since the last capture, against the fastest item on its own source

Acceleration+12.1 / 25

Whether that velocity is itself speeding up, as a per-hour rate

Cross-source spread+0.0 / 25

How many independent communities are talking about the same entity

Recency+6.2 / 10

Decays to zero over 14 days

Saturation penalty6.4 / 30

Subtracted once something is big and old — we rank what's next, not what's peaked

Composite12.6

Weights are hand-tuned, not learned — we're calibrating them against realized trends as history accumulates. On a topic's first sighting there's no previous reading to compare against, so acceleration starts from a neutral prior rather than a measurement, and velocity falls back to engagement over its whole lifetime until a second reading exists. Full methodology

Outlook

low confidence · estimate, not a guarantee

7-day

~18

range 029

14-day

~17

range 032

30-day

~17

range 036

Signal history

7-day window (free)
1262

projected trajectory (estimate, not a guarantee)

Entities

llmmaster
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Drop this in a README or blog post — it updates automatically as the score moves.