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TokenKiller
作者
CodeRanger
· GitHub ↗
· v1.0.1
· MIT-0
311
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当前安装
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版本数
在 OpenClaw 中安装
/install tokenkiller
功能描述
Reduces token usage across multi-skill agent workflows (search, coding, debugging, testing, docs) using budgets, gating, progressive disclosure, and deduped...
安全使用建议
This is an instruction-only policy that appears coherent and low-risk from a supply chain/credential perspective: it asks for nothing sensitive and doesn't install code. Before enabling it, review the SKILL.md to confirm you accept its operational tradeoffs—especially that it will (a) limit reads/outputs, (b) ask at most three clarifying questions then proceed on defaults, and (c) suppress large dumps unless L3 pull scenarios or explicit user request occur. Test it on non-production workflows first to ensure the throttling rules don't cause the agent to take undesired actions or miss important clarifications. If you rely on full logs or exhaustive outputs by default, be aware TokenKiller will suppress those unless explicitly overridden.
功能分析
Type: OpenClaw Skill
Name: tokenkiller
Version: 1.0.1
The 'tokenkiller' skill is a utility designed to optimize token consumption and reduce costs in AI agent workflows through budget management, progressive disclosure (L0-L3 layers), and output constraints. The instructions in SKILL.md and README.md provide structured guidelines for the agent to minimize context usage during search, coding, and debugging tasks without compromising success rates. No malicious behaviors, data exfiltration, or harmful prompt injections were identified; the skill explicitly prioritizes user requests in case of conflict.
能力评估
Purpose & Capability
Name/description (token reduction for multi-skill agents) matches the SKILL.md content: budgets, gating, progressive disclosure, and multi-skill cooperation. No unrelated binaries, env vars, or config paths are requested.
Instruction Scope
Instructions stay within the token-throttling domain (limits on reads, outputs, tool calls, L0-L3 layers). Note: it explicitly instructs the agent to ask at most 3 clarification questions and to proceed on default assumptions thereafter—this is coherent with the goal but could cause the agent to make assumptions rather than prompt the user in some cases.
Install Mechanism
Instruction-only skill with no install spec and no code files to write or execute; lowest-risk install profile.
Credentials
No environment variables, credentials, or config paths are requested. Requirements are proportional to the declared functionality.
Persistence & Privilege
Does not request always-on presence (always:false) and does not modify other skills or system settings. It can be invoked autonomously by the agent (default), which is normal for skills and not flagged alone.
如何使用
- 确保已安装 OpenClaw(本地或 Docker 部署)
- 在对话框中输入安装命令:
/install tokenkiller - 安装完成后,直接呼叫该 Skill 的名称或使用
/tokenkiller触发 - 根据 Skill 的参数说明提供必要输入,即可获得结构化输出
版本历史
v1.0.1
- Introduced a detailed task complexity assessment to set budgets dynamically (simple/medium/complex).
- Added soft warning and extension mechanism when approaching preset budgets, allowing more flexible handling.
- Clarified scenarios for full content (L3) read access and added explicit “L3 pull” decision flow.
- Defined multi-skill agent collaboration and clarified TokenKiller's priority as a constraint layer.
- Added explicit self-check guidelines to minimize high token-consumption behaviors during execution.
- Documentation was translated and expanded to English with new sections and improved structure.
v1.0.0
Initial release. Adds a global token-throttling policy for multi-skill agent workflows (budgets/gating, progressive disclosure, diff-first outputs, and deduped evidence) plus examples.
元数据
常见问题
TokenKiller 是什么?
Reduces token usage across multi-skill agent workflows (search, coding, debugging, testing, docs) using budgets, gating, progressive disclosure, and deduped... 它是一个面向 Claude Code / OpenClaw 的 AI Agent Skill 插件,目前累计下载 311 次。
如何安装 TokenKiller?
在 OpenClaw 或 Claude Code 对话框中运行命令「/install tokenkiller」即可一键安装,无需额外配置。
TokenKiller 是免费的吗?
是的,TokenKiller 完全免费,采用 MIT-0 许可证,可自由下载、安装和使用。
TokenKiller 支持哪些平台?
TokenKiller 跨平台运行,可在任意部署了 OpenClaw / Claude Code 的环境中使用(cross-platform)。
谁开发了 TokenKiller?
由 CodeRanger(@coderangerx)开发并维护,当前版本 v1.0.1。
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