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token-usage-monitor令牌使用监控

Agent Skill

token-usage-monitor 用于补充效率相关能力,适合在 OpenClaw 中需要让 Agent 承接效率相关任务时使用。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

7,985

周安装

343

GitHub Stars

公开资料未说明

下载量

2,799
OpenClaw

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

2

许可证

MIT-0

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:token-usage-monitor(令牌使用监控)
来源仓库:https://github.com/ttjsndx/token-usage-monitor
安装命令:
openclaw skills install token-usage-monitor
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。该命令会通过 OpenClaw 从第三方来源获取 Skill;本站只展示命令,不托管安装包,也不自动执行。

ClawHubOpenClaw
openclaw skills install token-usage-monitor

简介

监控并显示 AI 模型的令牌使用指标与历史数据。token-usage-monitor 属于效率类 Skill,可作为该场景下的辅助能力补充。

  • 适用于跟踪消耗率、识别高使用时段等效率管理需求。
  • 通过 clawhub 安装,需确认权限范围和网络访问能力。
  • 建议检查是否会触发外部服务调用或产生持久化存储。
  • 结合原始 README 了解告警阈值与数据展示方式。

SKILL.md

name
token-usage-monitor
description
Monitor and display token usage metrics for AI models. Use when you need to track token consumption rates, view historical usage data, or get alerts about high token usage. Ideal for optimizing prompt costs and controlling AI service expenses.

Token Usage Monitor

Overview

This skill provides comprehensive token usage monitoring and reporting capabilities for AI models. It helps you track token consumption in real-time, analyze historical usage patterns, and receive alerts when usage exceeds predefined thresholds. Ideal for optimizing prompt costs, controlling AI service expenses, and ensuring efficient use of model resources.

Core Capabilities

1. Real-Time Token Usage Monitoring

  • Track token consumption per request, per session, and per model
  • Monitor token usage speed (tokens per second/minute)
  • View live usage metrics including prompt tokens, completion tokens, and total tokens

2. Historical Usage Analysis

  • Generate usage reports for specified time periods (daily, weekly, monthly)
  • Analyze usage trends across different models and applications
  • Identify peak usage times and cost drivers

3. Threshold Alerts

  • Set custom token usage thresholds for different models or sessions
  • Receive notifications when usage exceeds defined limits
  • Configure alert channels (chat, email, or system notifications)

4. Cost Estimation

  • Calculate approximate costs based on token usage and model pricing
  • Compare costs across different models and providers
  • Optimize prompts to reduce token usage and costs

Quick Start

Monitor Current Session Usage

# Check current session token usage
python scripts/token_usage_tracker.py --session

Generate Daily Usage Report

# Generate report for today's usage
python scripts/token_usage_tracker.py --report --period day

Set Usage Threshold

# Set threshold of 100,000 tokens per day for GPT-4
python scripts/token_usage_tracker.py --set-threshold --model gpt-4 --limit 100000 --period day

Resources

scripts/

Create only the resource directories this skill actually needs. Delete this section if no resources are required.

scripts/

  • token_usage_tracker.py: Main script for tracking and reporting token usage

Key features: - Tracks token usage per session, model, and time period - Generates daily usage reports with cost estimates - Supports custom usage thresholds and alerts - Provides real-time and historical usage analytics

Usage examples:

  # Track a single usage event
  python scripts/token_usage_tracker.py --track --model doubao-seed --prompt-tokens 100 --completion-tokens 200
  
  # View current session usage
  python scripts/token_usage_tracker.py --session
  
  # Generate daily usage report
  python scripts/token_usage_tracker.py --report --period day
  
  # Set usage threshold (100,000 tokens/day for Doubao)
  python scripts/token_usage_tracker.py --set-threshold --model doubao-seed --limit 100000
  
  # View overall usage summary
  python scripts/token_usage_tracker.py --summary

Note: The script automatically creates and manages a data file at ~/.openclaw/token_usage.json to store usage data.

references/

Documentation and reference material intended to be loaded into context to inform Codex's process and thinking.

Examples from other skills:

  • Product management: communication.md, context_building.md - detailed workflow guides
  • BigQuery: API reference documentation and query examples
  • Finance: Schema documentation, company policies

Appropriate for: In-depth documentation, API references, database schemas, comprehensive guides, or any detailed information that Codex should reference while working.

assets/

Files not intended to be loaded into context, but rather used within the output Codex produces.

Examples from other skills:

  • Brand styling: PowerPoint template files (.pptx), logo files
  • Frontend builder: HTML/React boilerplate project directories
  • Typography: Font files (.ttf, .woff2)

Appropriate for: Templates, boilerplate code, document templates, images, icons, fonts, or any files meant to be copied or used in the final output.


Not every skill requires all three types of resources.

适合场景

01

OpenClaw 用户查找和安装 Skill 时

02

用户想查找某类 Agent Skill 时

03

需要根据任务场景推荐可安装能力包时

04

需要对比不同来源的安装命令和来源信息时

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

OpenClaw

84.03%
按下载量换算2,352

安全审计

VirusTotal

通过

ClawScan

通过

Static analysis

通过

权限和风险

敏感数据

该 Skill 可能接触密钥、Token、环境变量或敏感配置,应进入高风险复核队列,默认不自动发布。

安装前确认

本站仅展示第三方公开信息,不托管安装包,不提供自动安装或运行环境。安装前应自行审查源码、依赖和命令行为。当前只有一个来源,正式发布前建议补源仓库或其他目录站核验。

来源信息

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