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vwxyzjn/cleanrl

默认分支 master · commit fe8d8a03 · 扫描时间 2026/5/16 04:36:59

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AI 可见性总分
82 /100
健康
品类召回
2 / 2
被推荐时的平均排名 #4.5
规则结果
通过 2 · 警告 0 · 失败 0
客观元数据检查
AI 认识你的名字
3 / 3
直接询问时,AI 是否点名你的仓库
如何阅读这份报告

行动计划告诉你下一步要做什么——按影响力排序、可直接复制粘贴的修改。品类可见性是真正的 GEO 测试:当用户向 AI 提一个不带品牌、本应让 vwxyzjn/cleanrl 浮出水面的问题时,AI 是真的推荐了你,还是推荐了你的竞品?客观检查验证 AI 引擎最先权衡的那些元数据信号。自指检查判断 AI 是否还认识你的名字。

行动计划 — 可复制粘贴的修复

3 条由 gemini-2.5-flash 生成、按优先级排序的修改。修完后请把对应条目标记为完成。

整体方向
  • highreadme#1
    Clarify the project's license in the README

    原因:

    复制粘贴的修复
    Add a section or line in the README, e.g., "## License\nCleanRL is licensed under [Specify License(s) here, e.g., MIT License for code, CC-BY-4.0 for documentation]. Please refer to the LICENSE file for full details."
  • mediumreadme#2
    Emphasize 'learning' and 'quick experimentation' in the README's opening

    原因:

    当前
    CleanRL is a Deep Reinforcement Learning library that provides high-quality single-file implementation with research-friendly features. The implementation is clean and simple, yet we can scale it to run thousands of experiments using AWS Batch. The highlight features of CleanRL are: * 📜 Single-file implementation * Every detail about an algorithm variant is put into a single standalone file. For example, our `ppo_atari.py` only has 340 lines of code but contains all implementation details on how PPO works with Atari games, **so it is a great reference implementation to read for folks who do not wish to read an entire modular library**.
    复制粘贴的修复
    CleanRL is a Deep Reinforcement Learning library that provides high-quality single-file implementations with research-friendly features, **making it ideal for learning, quick prototyping, and robust experimentation.** Its clean and simple design allows for easy understanding and modification, while also scaling to thousands of experiments using AWS Batch. The highlight features of CleanRL are: * 📜 Single-file implementation * Every detail about an algorithm variant is put into a single standalone file. For example, our `ppo_atari.py` only has 340 lines of code but contains all implementation details on how PPO works with Atari games, **serving as an excellent reference for understanding algorithms and a straightforward starting point for new experiments.**
  • lowcomparison#3
    Add a 'Comparison to Alternatives' section in the README

    原因:

    复制粘贴的修复
    Add a new section to the README, e.g., "## Comparison to Alternatives\nCleanRL differentiates itself from modular libraries like Stable Baselines3 or RLlib by offering single-file implementations. This design choice prioritizes readability and educational value, allowing users to grasp an entire algorithm's logic within one script, rather than navigating a complex framework. While other libraries excel in production-grade deployment, CleanRL focuses on providing transparent, easily modifiable, and benchmarked reference implementations for research and learning."

本次扫描解析到的品类 GEO 通道:google/gemini-2.5-flash, deepseek/deepseek-v4-flash

品类可见性 — 真正的 GEO 测试

向 google/gemini-2.5-flash 提出的不带品牌问题。AI 推荐了你,还是推荐了别人?

各模型使用同一组问题 — 切换标签对比回答与排名。

召回
2 / 2
100% 的问题里出现了 vwxyzjn/cleanrl
平均排名
#4.5
越小越好。#1 表示首位推荐。
声量占比
17%
在所有被点名的工具中,你占了多少?
头号对手
RLlib
在 2 个问题中被推荐 2 次
竞品排行
  1. RLlib · 被推荐 2 次
  2. Stable Baselines3 · 被推荐 1 次
  3. Gymnasium · 被推荐 1 次
  4. Keras-RL2 · 被推荐 1 次
  5. Minigrid · 被推荐 1 次
  • 品类问题
    What are some simple Python deep reinforcement learning implementations for quick experimentation?
    你:第 6 位
    AI 推荐顺序:
    1. Stable Baselines3
    2. Gymnasium
    3. Keras-RL2
    4. RLlib
    5. Minigrid
    6. CleanRL ← 你
    查看 AI 完整回答
  • 品类问题
    Seeking robust Python libraries for implementing and benchmarking various deep reinforcement learning algorithms.
    你:第 3 位
    AI 推荐顺序:
    1. Stable Baselines3 (SB3)
    2. RLlib
    3. CleanRL ← 你
    4. Tianshou
    5. Acme
    6. Dopamine
    查看 AI 完整回答

客观检查

针对 AI 引擎最看重的元数据信号的规则审计。

  • Metadata completeness
    pass

  • README presence
    pass

自指检查

当被直接问到你时,AI 是否还知道你的仓库存在?

  • Compared to common alternatives in this category, what is the core differentiator of vwxyzjn/cleanrl?
    pass
    AI 明确点名了 vwxyzjn/cleanrl

    AI 的回答可能信誓旦旦却是错的。请按事实核对:技术栈、目标人群、差异化点是不是和你实际的对得上?

  • If a team adopts vwxyzjn/cleanrl in production, what risks or prerequisites should they evaluate first?
    pass
    AI 明确点名了 vwxyzjn/cleanrl

    AI 的回答可能信誓旦旦却是错的。请按事实核对:技术栈、目标人群、差异化点是不是和你实际的对得上?

  • In one sentence, what problem does the repo vwxyzjn/cleanrl solve, and who is the primary audience?
    pass
    AI 明确点名了 vwxyzjn/cleanrl

    AI 的回答可能信誓旦旦却是错的。请按事实核对:技术栈、目标人群、差异化点是不是和你实际的对得上?

嵌入你的 GEO 徽章

把这个徽章贴进 vwxyzjn/cleanrl 的 README。每次重新扫描都会自动更新,并跳到最新报告——是「我在乎 AI 可发现性」最简单的公开证明。

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订阅 Pro,解锁深度诊断

vwxyzjn/cleanrl — 轻量扫描仍免费;本卡列出 Pro 相对轻量的深度额度。

  • 深度报告每月 10 次
  • 无品牌品类查询5,轻量 2
  • 优先行动项8,轻量 3