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AI-powered academic paper generation SDK

Project description

EasyPaper

EasyPaper is a multi-agent academic paper generation system. It turns a small set of metadata (title, idea, method, data, experiments, references) into a structured LaTeX paper and optionally compiles it into a PDF through a typesetting agent.

EasyPaper can be used in two modes:

  • SDK modepip install -e . and call from Python directly (no server needed)
  • Server modepip install -e ".[server]" and run as a FastAPI service

Features

  • Multi-agent pipeline: planning, writing, review, typesetting, and optional VLM review
  • Python SDK for in-process paper generation (from easypaper import EasyPaper)
  • Optional FastAPI service with health and agent discovery endpoints
  • Streaming progress via generate_stream() (SDK) or SSE (server)
  • CLI scripts for metadata-driven generation and paper assembly demos
  • LaTeX output with citation validation, figure/table injection, and review loop

Requirements

  • Python 3.11+
  • LaTeX toolchain (pdflatex + bibtex) for PDF compilation
  • Poppler — required by pdf2image for PDF-to-image conversion
    • macOS: brew install poppler
    • Ubuntu/Debian: apt install poppler-utils
  • Model API keys configured in YAML (see Config)

Quickstart (SDK mode)

  1. Install core dependencies:
pip install -e .
  1. Copy the example config and fill in your API keys:
cp examples/config.example.yaml configs/dev.yaml
# Edit configs/dev.yaml — replace YOUR_API_KEY with real keys
  1. Set the config path (or create a .env file):
export AGENT_CONFIG_PATH=./configs/dev.yaml
  1. Use from Python:
import asyncio
from easypaper import EasyPaper, PaperMetaData

async def main():
    ep = EasyPaper(config_path="configs/dev.yaml")
    result = await ep.generate(PaperMetaData(
        title="My Paper",
        idea_hypothesis="...",
        method="...",
        data="...",
        experiments="...",
    ))
    print(f"Status: {result.status}, Words: {result.total_word_count}")

asyncio.run(main())
  1. Or use streaming for progress updates:
async for event in ep.generate_stream(metadata):
    print(f"{event.get('phase', '')}: {event.get('message', '')}")

See examples/sdk_demo.py for a complete working example.

Server Mode

To run as a FastAPI service (for external integrations):

  1. Install with server extras:
pip install -e ".[server]"
  1. Start the server:
uvicorn src.main:app --reload --port 8000
  1. Verify health:
curl http://localhost:8000/healthz

Generate a Paper via API

curl -X POST http://localhost:8000/metadata/generate \
  -H "Content-Type: application/json" \
  -d @economist_example/metadata.json

Generate via CLI

python scripts/generate_paper.py --input economist_example/metadata.json

Optional Dependencies

pip install -e ".[dev]"    # pytest, ipython, etc.
pip install -e ".[vlm]"    # Claude VLM review support
pip install -e ".[server]" # FastAPI + uvicorn

Config

The application loads configuration from AGENT_CONFIG_PATH (defaults to ./configs/dev.yaml). You can also set this variable in a .env file at the project root.

See configs/example.yaml for a fully commented configuration template. Each agent entry defines its model and optional agent-specific settings.

Key fields per agent:

  • model_name — LLM model identifier
  • api_key — API key for the model provider
  • base_url — API endpoint URL

Additional top-level sections:

  • skills — skills system toggle and active skill list
  • tools — ReAct tool configuration (citation validation, paper search, etc.)
  • vlm_service — shared VLM provider for visual review (supports OpenAI-compatible and Claude)

Service Endpoints (Server Mode)

  • GET /healthz — health check
  • GET /config — current app config
  • GET /list_agents — list registered agents and endpoints
  • Agent-specific routes are registered under /agent/* and /metadata/*

Repository Layout

.
├── easypaper/          # Thin SDK package (public API)
│   ├── __init__.py     # Re-exports: EasyPaper, PaperMetaData, EventType, ...
│   └── client.py       # EasyPaper class: generate(), generate_stream()
├── src/                # Core implementation (agents, config, skills)
│   ├── main.py         # FastAPI app (server mode entrypoint)
│   ├── agents/         # Agent implementations (metadata, writer, reviewer, ...)
│   ├── config/         # YAML config loading and schema
│   └── skills/         # Skill loader, registry, and router
├── configs/            # YAML configs for agents and models
├── skills/             # Built-in YAML skill definitions (venues, writing, reviewing)
├── scripts/            # CLI utilities and demos
├── examples/           # SDK usage examples
├── plugins/            # Claude Code plugin assets
├── tests/              # Test suite
└── pyproject.toml      # Package metadata (name: easypaper)

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