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Context loading

Skill DevelopersGlobal/ai-agent-skills/skills/context-loading

AI agent skills for production grade applications

Install
npx -y skills add DevelopersGlobal/ai-agent-skills --skill context-loading

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What its author says it does

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Load minimum necessary context into agent context windows. Prevents token bloat, reduces cost, and improves focus. Only load what the current task needs.

SKILL.md

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Overview

More context is not better context. Irrelevant context dilutes attention, increases cost, and slows inference. This skill enforces disciplined context loading: only the files, docs, and history that the current task requires.

When to Use

  • Before starting any complex agent task
  • When designing system prompts for production agents
  • When context windows are filling up

Process

Step 1: Identify Required Context

  1. List the files/docs the agent needs to read to complete THIS specific task.
  2. For each item, ask: "Can the agent complete the task without this?" If yes, don't include it.
  3. Prioritize: system prompt → task definition → directly relevant code → supporting references.

Verify: Every item in context is directly necessary for the current task.

Step 2: Summarize, Don't Dump

  1. Long conversation history → summarize to key decisions and current state.
  2. Large files → extract only the relevant functions/sections.
  3. Entire docs → extract only the relevant sections.
  4. Previous agent output → extract only the conclusions and next steps.

Verify: No item in context exceeds what's needed from that source.

Step 3: Set Context Budgets

  1. Define token allocation for each context section:
    • System prompt: ≤ 2,000 tokens
    • Task definition: ≤ 500 tokens
    • Code context: ≤ 4,000 tokens
    • Conversation history (summarized): ≤ 1,000 tokens
  2. Stay well within model context limits (leave 30% buffer for output).

Verify: Total prompt fits within 70% of model context limit.

Step 4: Refresh Context for New Tasks

  1. Don't carry over context from a completed task to a new task.
  2. Start each distinct task with a fresh, minimal context.
  3. Re-introduce only what the new task genuinely needs.

Verification

  • Context items limited to task-required items only
  • Long content summarized before inclusion
  • Token budget defined and respected
  • Context window at ≤70% capacity

References

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