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skills.volces.com1 installs

ai-prompt-optimization

Use when users need to optimize prompts for AI conversations, generate structured templates, create few-shot examples, design chain-of-thought guidance, or diagnose and improve existing prompts. Applicable to prompt optimization for various AI tools such as ChatGPT, Claude, Midjourney, etc.

How do I install this agent skill?

npx skills add https://skills.volces.com --skill ai-prompt-optimization
view source ↗

Is this agent skill safe to install?

No partner audit is available yet. Read the source before installing.

What does this agent skill do?

AI Prompt Optimization

Core Capabilities

When users seek prompt optimization assistance, provide the following services:

  1. Diagnosis & Optimization - Analyze existing prompt issues and provide specific improvement plans
  2. Template Generation - Generate structured prompt templates for different scenarios
  3. Few-Shot Generation - Create example-driven few-shot prompts
  4. Chain-of-Thought Guidance - Design CoT (Chain of Thought) prompts

Usage

1. Diagnosis & Optimization Workflow

When a user provides a prompt for optimization:

Analyze Structure → Identify Issues → Provide Improved Version → Explain Changes

Diagnosis Checklist:

  • Is the role/identity clearly defined?
  • Is the task objective specific and clear?
  • Are output format/style constrained?
  • Is the necessary context/background information provided?
  • Are boundary conditions and exceptions specified?
  • Are there clear success criteria?

2. Template Generation

Generate structured templates based on user scenarios. Core template format:

# Role Definition
You are a [role] in [professional domain], skilled at [core competency].

# Task Description
Please help me [specific task], with the goal of [expected outcome].

# Context Information
- Background: [relevant background]
- Audience: [target users]
- Constraints: [boundary conditions]

# Output Requirements
- Format: [desired format]
- Style: [language style]
- Length: [length requirement]

# Quality Standards
[Key metrics for evaluating output]

3. Few-Shot Example Generation

Generate few-shot examples for complex tasks:

  1. Select Representative Samples - 3-5 examples covering different variants
  2. Format Examples - Input → Output structure
  3. Add Explanations - Explain the rationale for selecting each example

4. Chain-of-Thought Design

Design CoT prompts for tasks requiring reasoning:

Before giving your final answer, please think through the following steps:
1. [Understand the Problem] - ...
2. [Decompose the Problem] - ...
3. [Step-by-Step Reasoning] - ...
4. [Verify the Conclusion] - ...

Scenario Reference

For complete scenario templates and examples, see references/templates.md:

  • Writing assistance prompts
  • Code generation prompts
  • Image generation prompts
  • Data analysis prompts
  • Q&A and consultation prompts

Optimization Principles

  1. Specific > Vague - Clearly specify what is wanted and what is not
  2. Structured > Scattered - Use clear segmentation and markers
  3. Constrained > Free - Appropriate constraints improve output quality
  4. Iterative > One-Shot - Encourage users to continuously optimize based on output

Add the canonical catalog link to the repository README so users can inspect current installs and available audits. The publishing guide covers the complete discovery path.

<a href="https://skillzs.dev/skills/skills.volces.com/ai-prompt-optimization">View ai-prompt-optimization on skillZs</a>