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Instructor

Structured outputs for LLMs using Pydantic — patches any OpenAI-compatible client to return validated Python objects.

@ai-supply
Instalaciones61k
Valoración★ 4.7
Reseñas20
↗ Repositorio fuente

Instructor

Instructor is the simplest way to get structured, validated outputs from LLMs. It patches openai, anthropic, google-generativeai, and other clients with a single .from_* call, then uses Pydantic models to define the output schema and automatically validates (and retries on failure).

Key Features

  • Pydantic-native — define your output as any Pydantic model; Instructor handles schema generation and parsing
  • Multi-provider — OpenAI, Anthropic, Google Gemini, Ollama, Cohere, Mistral, and more
  • Auto-retry — on validation failure, Instructor feeds the error back to the LLM and retries automatically
  • Streaming — stream partial Pydantic objects as they are generated
  • Hooks — before/after hooks for logging, caching, and metrics
  • Zero prompt engineering — no need to write JSON-formatting instructions in your prompts

Quick Start

pip install instructor
import instructor
from openai import OpenAI
from pydantic import BaseModel

client = instructor.from_openai(OpenAI())

class User(BaseModel):
    name: str
    age: int

user = client.chat.completions.create(
    model="gpt-4o-mini",
    response_model=User,
    messages=[{"role": "user", "content": "Extract: John is 30 years old."}],
)
print(user)  # User(name='John', age=30)

Install via ai-supply

npx ai-supply add instructor-structured-outputs

Curated mirror of the open-source Instructor project (MIT). Install upstream from the repository.

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