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x-algo-engagementx 算法参与度

Agent Skill

x-algo-engagement 用于处理 GitHub 仓库、Issue、Pull Request 和代码协作信息,适合在 Codex、Claude、Cursor、Gemini CLI 中需要围绕仓库状态、代码变更或协作事项进行整理时使用。可结合来源仓库、安装命令和原始 README 继续核验具体用法。安装前建议确认权限范围、维护状态,以及是否会触发联网、命令执行或文件读写。

总安装

367

周安装

15

GitHub Stars

10

下载量

118
CodexClaudeCursorGemini CLI

安装说明

本站只整理中文说明和来源信息,不托管安装包,也不代用户安装。

GitHub

来源数

3

许可证

MIT

最后核验

2026-05-01

来源状态

来源可访问

安装方式

通过对话安装

复制提示词发给支持本地命令或 Skills 的 AI 助手,先确认命令和权限,再让它执行。

请帮我安装这个 Agent Skill:x-algo-engagement(x 算法参与度)
来源仓库:https://github.com/cloudai-x/x-algo-skills
仓库路径:skills/x-algo-engagement
安装命令:
npx skills add https://github.com/cloudai-x/x-algo-skills --skill x-algo-engagement
安装前请先检查当前环境是否支持对应 CLI,并向我确认将要执行的命令、安装目录、联网范围和文件读写权限;确认后再执行。

命令行安装

复制命令到本机终端执行。不同来源提供的安装方式可能略有差异;本站展示可直接复制的安装命令,安装前请核对来源页面。

skills.shnpx skills
npx skills add https://github.com/cloudai-x/x-algo-skills --skill x-algo-engagement

简介

用于处理 GitHub 仓库、Issue 和 Pull Request 协作信息。

  • 适合围绕代码变更或协作事项进行整理。
  • 可结合来源仓库和原始 README 核验具体用法。
  • 安装命令:npx skills add https://github.com/cloudai-x/x-algo-skills --skill x-algo-engagement。
  • 安装前建议确认是否会触发联网或文件读写。

SKILL.md

X Algorithm Engagement Signals

The X recommendation algorithm tracks 18 engagement action types plus 1 continuous metric. These are predicted by the Phoenix ML model and used to calculate weighted scores.

PhoenixScores Struct

Defined in home-mixer/candidate_pipeline/candidate.rs:

pub struct PhoenixScores {
    // Positive engagement signals
    pub favorite_score: Option<f64>,
    pub reply_score: Option<f64>,
    pub retweet_score: Option<f64>,
    pub quote_score: Option<f64>,
    pub share_score: Option<f64>,
    pub share_via_dm_score: Option<f64>,
    pub share_via_copy_link_score: Option<f64>,
    pub follow_author_score: Option<f64>,

    // Engagement metrics
    pub photo_expand_score: Option<f64>,
    pub click_score: Option<f64>,
    pub profile_click_score: Option<f64>,
    pub vqv_score: Option<f64>,              // Video Quality View
    pub dwell_score: Option<f64>,
    pub quoted_click_score: Option<f64>,

    // Negative signals
    pub not_interested_score: Option<f64>,
    pub block_author_score: Option<f64>,
    pub mute_author_score: Option<f64>,
    pub report_score: Option<f64>,

    // Continuous actions
    pub dwell_time: Option<f64>,
}

Action Types by Category

Positive Engagement (High Value)

ActionProto NameDescription
FavoriteServerTweetFavUser likes the post
ReplyServerTweetReplyUser replies to the post
RetweetServerTweetRetweetUser reposts without comment
QuoteServerTweetQuoteUser reposts with their own comment
Follow AuthorClientTweetFollowAuthorUser follows the post's author

Sharing Actions

ActionProto NameDescription
ShareClientTweetShareGeneric share action
Share via DMClientTweetClickSendViaDirectMessageUser shares via direct message
Share via Copy LinkClientTweetShareViaCopyLinkUser copies link to share externally

Engagement Metrics

ActionProto NameDescription
Photo ExpandClientTweetPhotoExpandUser expands photo to view
ClickClientTweetClickUser clicks on the post
Profile ClickClientTweetClickProfileUser clicks author's profile
VQVClientTweetVideoQualityViewVideo Quality View - user watches video for meaningful duration
DwellClientTweetRecapDwelledUser dwells (pauses) on the post
Quoted ClickClientQuotedTweetClickUser clicks on a quoted post

Negative Signals

ActionProto NameDescription
Not InterestedClientTweetNotInterestedInUser marks as not interested
Block AuthorClientTweetBlockAuthorUser blocks the author
Mute AuthorClientTweetMuteAuthorUser mutes the author
ReportClientTweetReportUser reports the post

Continuous Actions

ActionProto NameDescription
Dwell TimeDwellTimeContinuous value: seconds spent viewing post

How Scores Are Obtained

The PhoenixScorer (home-mixer/scorers/phoenix_scorer.rs) calls the Phoenix prediction service:

  1. Input: User history + candidate posts
  2. Output: Log probabilities for each action type per candidate
  3. Conversion: probability = exp(log_prob)
fn extract_phoenix_scores(&self, p: &ActionPredictions) -> PhoenixScores {
    PhoenixScores {
        favorite_score: p.get(ActionName::ServerTweetFav),
        reply_score: p.get(ActionName::ServerTweetReply),
        retweet_score: p.get(ActionName::ServerTweetRetweet),
        // ... maps each action to its probability
    }
}

Signal Interpretation

  • Scores are probabilities (0.0 to 1.0): P(user takes action | user sees post)
  • Higher = more likely: A favorite_score of 0.15 means 15% predicted chance of like
  • Negative signals have negative weights: High report_score reduces overall ranking
  • VQV requires minimum video duration: Only applies to videos > MIN_VIDEO_DURATION_MS

Related Skills

  • /x-algo-scoring - How these signals are combined into a weighted score
  • /x-algo-ml - How Phoenix model predicts these probabilities

适合场景

01

用户想查找某类 Agent Skill 时

02

需要根据任务场景推荐可安装能力包时

03

需要对比不同来源的安装命令和来源信息时

04

需要参考平台分布和安装热度时

能力概览

能力 1

按任务关键词查找相关 Skills

能力 2

展示可复制的安装命令

能力 3

保留来源站点、仓库和原始说明,方便继续核验

能力 4

补充不同宿主或平台的使用分布数据

能力 5

展示第三方安全扫描或审计结果

安装后应在对应宿主中按原始 README 的触发条件使用;具体调用方式请以来源页面和 README 为准。

平台分布

Claude Code

28.87%
按下载量换算34

windsurf

22.34%
按下载量换算26

OpenCode

18.5%
按下载量换算22

Cursor

13.34%
按下载量换算16

Codex

7.52%
按下载量换算9

Antigravity

3.48%
按下载量换算4

安全审计

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可疑

权限和风险

权限需确认

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安装前确认

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来源信息

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