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Unknown · depuis Oktober 2023 (Paper/erste DSPy-Version); ursprünglicher Vorläufer DSP Dezember 2022 · 2× · vu le 27 sept. 2026

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Momentum

DSPy (Declarative Self-improving Python) is an open-source framework developed by Stanford NLP for programming language models declaratively instead of manual prompt engineering. Developers define signatures (input/output specifications) and modules in Python; optimizers automatically tune prompts and few-shot examples against a chosen metric. It supports virtually any LLM provider via its LiteLLM integration and is typically installed via pip for self-hosted or custom pipeline use. The foundational paper was published in October 2023, and the project continues to be actively developed under the MIT license.

Historique du momentum
29.06.27.09.

Fonctionnalités

LicenseMIT License
PlatformPython framework/library (pip package 'dspy')
PriceFree, open source (no license fee)
Protocol CompatibilityOpenAI- and Anthropic-compatible HTTP endpoints via LiteLLM, plus MCP compatibility
Release DateOctober 2023 (foundational paper 'DSPy: Compiling Declarative Language Model Calls into Self-Improving Pipelines')
Supported Models/ProvidersAny LLM provider via LiteLLM (incl. OpenAI, Anthropic, Google, Azure, AWS Bedrock, Ollama, local models)

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