mirror of
https://github.com/headroomlabs-ai/headroom.git
synced 2026-08-27 14:17:10 -04:00
383 lines
12 KiB
TOML
383 lines
12 KiB
TOML
[build-system]
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requires = ["maturin>=1.5,<2.0"]
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build-backend = "maturin"
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[project]
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name = "headroom-ai"
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version = "0.9.1"
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description = "The Context Optimization Layer for LLM Applications - Cut costs by 50-90%"
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readme = "README.md"
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license = "Apache-2.0"
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requires-python = ">=3.10"
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authors = [
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{ name = "Headroom Contributors" }
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]
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maintainers = [
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{ name = "Headroom Contributors" }
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]
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keywords = [
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"llm",
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"openai",
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"anthropic",
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"claude",
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"gpt",
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"context",
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"token",
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"optimization",
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"compression",
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"caching",
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"proxy",
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"ai",
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"machine-learning",
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]
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classifiers = [
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"Development Status :: 4 - Beta",
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"Intended Audience :: Developers",
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"License :: OSI Approved :: Apache Software License",
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"Operating System :: OS Independent",
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"Programming Language :: Python :: 3",
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"Programming Language :: Python :: 3.10",
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"Programming Language :: Python :: 3.11",
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"Programming Language :: Python :: 3.12",
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"Topic :: Scientific/Engineering :: Artificial Intelligence",
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"Topic :: Software Development :: Libraries :: Python Modules",
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"Typing :: Typed",
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]
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dependencies = [
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# Core: lightweight compression (SmartCrusher, ContentRouter, CCR, TOIN)
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"tiktoken>=0.5.0", # Tokenizer for all compressors
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"pydantic>=2.0.0", # Config and data models
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"litellm==1.82.3", # Model registry, pricing, and provider support
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"click>=8.1.0", # CLI framework
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"rich>=13.0.0", # Rich terminal output
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"opentelemetry-api>=1.24.0", # Safe no-op OTEL API for instrumentation
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"ast-grep-cli>=0.30.0", # AST-aware code slicing (CodeCompressor); binary wheel
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"tomli>=2.0.0; python_version < '3.11'", # tomllib backport for helper scripts
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]
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[project.optional-dependencies]
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# Proxy server (most common install: pip install headroom-ai[proxy])
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proxy = [
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"fastapi>=0.100.0",
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"uvicorn>=0.23.0",
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"httpx[http2]>=0.24.0",
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"openai>=2.14.0", # OpenAI API format support
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"mcp>=1.0.0", # MCP server (headroom_compress, retrieve, stats)
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"magika>=0.6.0", # ML content detection for ContentRouter
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"zstandard>=0.20.0", # Decompress zstd request bodies (Codex, etc.)
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"websockets>=13.0", # WebSocket proxy for /v1/responses (Codex gpt-5.4+)
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"onnxruntime>=1.16.0", # Kompress ONNX INT8 text compression (no torch needed)
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"transformers>=4.30.0", # Tokenizer only (for Kompress)
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"watchdog>=4.0.0", # File watcher for live code graph reindexing (--code-graph)
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"sqlite-vec>=0.1.6", # Vector index for memory (--memory). Lightweight, no torch.
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]
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# AST-based code compression (tree-sitter)
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code = [
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"tree-sitter-language-pack>=0.10.0",
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]
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# ML-based compression with Kompress (ModernBERT).
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# (The legacy [llmlingua] extra was removed in 0.9.x — no live code path used it.
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# Use [ml] for the supported ML compression dependencies.)
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ml = [
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"torch>=2.0.0",
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"transformers>=4.30.0",
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]
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# Memory system (hierarchical memory with vector search)
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memory = [
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"hnswlib>=0.8.0",
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"sqlite-vec>=0.1.6",
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"sentence-transformers>=2.2.0",
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]
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# Qdrant + Neo4j memory backend helpers
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memory-stack = [
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"mem0ai>=0.1.100",
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"qdrant-client>=1.9.0",
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"neo4j>=5.20.0",
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]
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# Semantic relevance scoring with embeddings.
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# Uses `fastembed` (BAAI/bge-small-en-v1.5 by default — 33M params,
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# 384 dims, ~30 MB int8-quantized ONNX). Same library + model used by
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# the Rust SmartCrusher (`fastembed` crate), giving byte-equal embeddings
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# across the language boundary. Replaced sentence-transformers in
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# Stage 3c.1 — fastembed is faster (~2-3x), smaller (no torch
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# dependency), and outranks all-MiniLM-L6-v2 on MTEB by ~6 points.
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relevance = [
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"fastembed>=0.4.0",
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"numpy>=1.24.0",
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]
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# Image compression (ML-based routing + OCR)
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#
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# OCR backend uses ONNX Runtime regardless of Python version. The
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# rapidocr ecosystem split into two flavors after 1.4.x:
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# * rapidocr-onnxruntime 1.4.x — bundled-ORT package, capped at
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# Python <3.13 by its requires-python metadata. Drop-in for our
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# existing v1 tuple-shaped API call.
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# * rapidocr 3.x — engine-agnostic core, supports Python 3.13+.
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# Returns a RapidOCROutput dataclass (txts, scores, boxes, ...).
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# Needs `onnxruntime` installed separately to use the ORT backend.
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#
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# `headroom/image/compressor.py` adapts both API shapes at runtime via
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# a try/except cascade. See issue #372 for context.
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image = [
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"pillow>=10.0.0",
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"sentencepiece>=0.1.99", # Required by SigLIP tokenizer (SiglipTokenizer)
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# Python 3.6–3.12: keep the proven ORT-bundled package directly.
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# ~15 MB ONNX models auto-downloaded on first use.
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"rapidocr-onnxruntime>=1.4.0,<2; python_version<'3.13'",
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# Python 3.13+: rapidocr-onnxruntime is unavailable (its wheels
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# declare requires-python<3.13). Use the successor `rapidocr` 3.x
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# core + `onnxruntime` engine; same ORT backend, just split into
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# two packages. Total install size and inference speed unchanged.
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"rapidocr>=3.0,<4; python_version>='3.13'",
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"onnxruntime>=1.7,<2; python_version>='3.13'",
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]
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# Report generation
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reports = [
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"jinja2>=3.0.0",
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]
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# OpenTelemetry metrics export
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otel = [
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"opentelemetry-sdk>=1.24.0",
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"opentelemetry-exporter-otlp-proto-http>=1.24.0",
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]
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# any-llm multi-provider backend (requires Python 3.11+)
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anyllm = [
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"any-llm-sdk>=1.0.0; python_version >= '3.11'",
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]
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# LangChain integration
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langchain = [
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"langchain-core>=0.2.0",
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"langchain-openai>=0.1.0",
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]
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# Agno agent framework integration
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agno = [
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"agno>=1.0.0",
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]
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# AWS Strands Agents SDK integration
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strands = [
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"strands-agents>=0.1.0",
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]
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# MCP server for Claude Code integration
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mcp = [
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"mcp>=1.0.0",
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"httpx>=0.24.0",
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]
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# Voice filler detection
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voice = [
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"onnxruntime>=1.16.0",
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"transformers>=4.30.0",
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"torch>=2.0.0",
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]
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# Voice training (includes voice deps + training extras)
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voice-train = [
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"headroom-ai[voice]",
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"datasets>=2.14.0",
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"accelerate>=0.20.0",
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]
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# Evaluation framework
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evals = [
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"datasets>=2.14.0",
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"sentence-transformers>=2.2.0",
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"numpy>=1.24.0",
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"scikit-learn>=1.3.0",
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"anthropic>=0.18.0",
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"openai>=1.0.0",
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]
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# AWS Bedrock backend
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bedrock = [
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"boto3>=1.28.0",
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]
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# HTML content extraction
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html = [
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"trafilatura>=1.6.0",
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]
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# Comprehensive LLM benchmarks
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benchmark = [
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"lm-eval[api]>=0.4.0",
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"openai>=1.0.0",
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"anthropic>=0.18.0",
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]
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# Development dependencies
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dev = [
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"pytest>=7.0.0",
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"pytest-cov>=4.0.0",
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"pytest-asyncio>=0.21.0",
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"ruff>=0.1.0",
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"mypy>=1.0.0",
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"pre-commit>=3.0.0",
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"openai>=1.0.0",
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"anthropic>=0.18.0",
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"litellm==1.82.3",
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"fastapi>=0.100.0",
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"uvicorn>=0.23.0",
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"httpx[http2]>=0.24.0",
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"websockets>=13.0",
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"opentelemetry-sdk>=1.24.0",
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"opentelemetry-exporter-otlp-proto-http>=1.24.0",
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"ollama>=0.4.0",
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"langchain-ollama>=0.2.0",
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"hnswlib>=0.8.0",
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"sqlite-vec>=0.1.6",
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"sentence-transformers>=2.2.0",
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"numpy>=1.24.0",
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]
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# All optional dependencies (everything you need)
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all = [
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"headroom-ai[proxy,code,ml,memory,relevance,image,reports,otel,evals,voice,html,benchmark,mcp]",
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]
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[project.scripts]
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headroom = "headroom.cli:main"
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[project.urls]
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Homepage = "https://github.com/chopratejas/headroom"
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Documentation = "https://github.com/chopratejas/headroom#readme"
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Repository = "https://github.com/chopratejas/headroom"
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Issues = "https://github.com/chopratejas/headroom/issues"
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Changelog = "https://github.com/chopratejas/headroom/blob/main/CHANGELOG.md"
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# Maturin builds a single wheel containing both the Python source under
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# `headroom/` AND the compiled Rust extension `headroom/_core.so` (cdylib
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# from `crates/headroom-py`). One `pip install headroom-ai` ships everything
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# atomically — no separate `headroom-core-py` package, no chicken-and-egg,
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# no PIP_FIND_LINKS plumbing. Phase A0's runtime fail-loud check still
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# exists but only fires if someone forces an sdist install on a platform
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# without a wheel and the rust toolchain isn't available to compile it.
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# Pin the project's package index to public PyPI. Without this, `uv lock`
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# inherits the developer's user-level `~/.config/uv/uv.toml` index
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# setting — including private/internal mirrors like
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# `pypi.netflix.net/simple` — and bakes those URLs into uv.lock, which
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# then breaks CI on every public runner that can't reach the mirror.
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# Declaring the index in pyproject.toml makes the project authoritative
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# regardless of who runs `uv lock`.
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[[tool.uv.index]]
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name = "pypi"
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url = "https://pypi.org/simple/"
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default = true
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[tool.maturin]
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# Where the Python package lives. With `python-source = "."` and the
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# package directory `headroom/` at repo root, maturin includes every file
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# under `headroom/` in the wheel — that picks up the dashboard HTML
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# templates and bundled YAML configs. `LICENSE` and `NOTICE` are listed
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# explicitly because maturin sdists do not get the package-directory
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# treatment wheels do, and PEP 639 auto-discovery emits both files into
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# `License-File:` metadata — PyPI rejects sdists whose declared license
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# files are missing from the tarball with `400 License-File X does not
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# exist in distribution file`.
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include = [
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{ path = "LICENSE", format = "sdist" },
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{ path = "NOTICE", format = "sdist" },
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]
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python-source = "."
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module-name = "headroom._core"
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# The cdylib source lives under `crates/headroom-py`. Maturin invokes
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# `cargo build` with this manifest to produce `_core.cdylib`, then injects
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# the resulting `.so` into the wheel at `headroom/_core.so`.
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manifest-path = "crates/headroom-py/Cargo.toml"
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features = ["extension-module"]
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# Forbid building without the cdylib feature — bare `cargo build` won't
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# produce a usable Python extension. Maturin's default `bindings` is "pyo3"
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# which is correct here (see `crates/headroom-py/src/`).
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bindings = "pyo3"
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[tool.ruff]
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target-version = "py310"
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line-length = 100
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[tool.ruff.lint]
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select = [
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"E", # pycodestyle errors
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"W", # pycodestyle warnings
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"F", # pyflakes
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"I", # isort
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"B", # flake8-bugbear
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"C4", # flake8-comprehensions
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"UP", # pyupgrade
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]
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ignore = [
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"E501", # line too long (handled by formatter)
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"B008", # do not perform function calls in argument defaults
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"B905", # zip without strict parameter
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]
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[tool.ruff.lint.isort]
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known-first-party = ["headroom"]
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[tool.ruff.format]
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quote-style = "double"
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indent-style = "space"
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[tool.mypy]
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python_version = "3.10"
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warn_return_any = true
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warn_unused_configs = true
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disallow_untyped_defs = true
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ignore_missing_imports = true
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# Per-module overrides for modules with dynamic typing patterns
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[[tool.mypy.overrides]]
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module = [
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"headroom.proxy.server",
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"headroom.proxy.cost",
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"headroom.proxy.prometheus_metrics",
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"headroom.proxy.semantic_cache",
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"headroom.proxy.rate_limiter",
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"headroom.proxy.request_logger",
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"headroom.proxy.helpers",
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"headroom.integrations.langchain",
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"headroom.integrations.mcp",
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"headroom.ccr.mcp_server",
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"headroom.relevance.embedding",
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"headroom.reporting.generator",
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]
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disallow_untyped_defs = false
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[[tool.mypy.overrides]]
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module = [
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"headroom.tokenizers.*",
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"headroom.providers.litellm",
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"headroom.providers.google",
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]
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disallow_untyped_defs = false
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warn_return_any = false
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# Handler mixins use self.* from HeadroomProxy via duck typing — mypy can't resolve these
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[[tool.mypy.overrides]]
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module = ["headroom.proxy.handlers.*"]
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disallow_untyped_defs = false
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ignore_errors = true
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# Ignore third-party stubs with syntax errors
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[[tool.mypy.overrides]]
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module = ["mlx.*"]
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ignore_errors = true
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[tool.pytest.ini_options]
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testpaths = ["tests"]
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python_files = ["test_*.py"]
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python_functions = ["test_*"]
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addopts = "-v --tb=short"
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asyncio_mode = "auto"
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markers = [
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"slow: slow tests (model loads, large fixtures)",
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"real_llm: tests that hit real LLM APIs; skipped unless explicitly enabled",
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"live: opt-in multi-turn tests that hit real upstream APIs; require provider keys",
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]
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[tool.coverage.run]
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source = ["headroom"]
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branch = true
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omit = [
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"headroom/cli.py",
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"*/tests/*",
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]
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[tool.coverage.report]
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exclude_lines = [
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"pragma: no cover",
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"def __repr__",
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"raise NotImplementedError",
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"if TYPE_CHECKING:",
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"if __name__ == .__main__.:",
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]
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