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* add tools to chat completion request * use templates for generating system prompts * Moved ToolPromptFormat and jinja templates to llama_models.llama3.api * <WIP> memory changes - inlined AgenticSystemInstanceConfig so API feels more ergonomic - renamed it to AgentConfig, AgentInstance -> Agent - added a MemoryConfig and `memory` parameter - added `attachments` to input and `output_attachments` to the response - some naming changes * InterleavedTextAttachment -> InterleavedTextMedia, introduce memory tool * flesh out memory banks API * agentic loop has a RAG implementation * faiss provider implementation * memory client works * re-work tool definitions, fix FastAPI issues, fix tool regressions * fix agentic_system utils * basic RAG seems to work * small bug fixes for inline attachments * Refactor custom tool execution utilities * Bug fix, show memory retrieval steps in EventLogger * No need for api_key for Remote providers * add special unicode character ↵ to showcase newlines in model prompt templates * remove api.endpoints imports * combine datatypes.py and endpoints.py into api.py * Attachment / add TTL api * split batch_inference from inference * minor import fixes * use a single impl for ChatFormat.decode_assistant_mesage * use interleaved_text_media_as_str() utilityt * Fix api.datatypes imports * Add blobfile for tiktoken * Add ToolPromptFormat to ChatFormat.encode_message so that tools are encoded properly * templates take optional --format={json,function_tag} * Rag Updates * Add `api build` subcommand -- WIP * fix * build + run image seems to work * <WIP> adapters * bunch more work to make adapters work * api build works for conda now * ollama remote adapter works * Several smaller fixes to make adapters work Also, reorganized the pattern of __init__ inside providers so configuration can stay lightweight * llama distribution -> llama stack + containers (WIP) * All the new CLI for api + stack work * Make Fireworks and Together into the Adapter format * Some quick fixes to the CLI behavior to make it consistent * Updated README phew * Update cli_reference.md * llama_toolchain/distribution -> llama_toolchain/core * Add termcolor * update paths * Add a log just for consistency * chmod +x scripts * Fix api dependencies not getting added to configuration * missing import lol * Delete utils.py; move to agentic system * Support downloading of URLs for attachments for code interpreter * Simplify and generalize `llama api build` yay * Update `llama stack configure` to be very simple also * Fix stack start * Allow building an "adhoc" distribution * Remote `llama api []` subcommands * Fixes to llama stack commands and update docs * Update documentation again and add error messages to llama stack start * llama stack start -> llama stack run * Change name of build for less confusion * Add pyopenapi fork to the repository, update RFC assets * Remove conflicting annotation * Added a "--raw" option for model template printing --------- Co-authored-by: Hardik Shah <hjshah@fb.com> Co-authored-by: Ashwin Bharambe <ashwin@meta.com> Co-authored-by: Dalton Flanagan <6599399+dltn@users.noreply.github.com>
69 lines
2.5 KiB
Python
69 lines
2.5 KiB
Python
# Copyright (c) Meta Platforms, Inc. and affiliates.
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# All rights reserved.
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#
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# This source code is licensed under the terms described in the LICENSE file in
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# the root directory of this source tree.
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from functools import lru_cache
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from typing import List, Optional
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from .datatypes import * # noqa: F403
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@lru_cache()
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def available_distribution_specs() -> List[DistributionSpec]:
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return [
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DistributionSpec(
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distribution_id="local",
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description="Use code from `llama_toolchain` itself to serve all llama stack APIs",
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providers={
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Api.inference: "meta-reference",
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Api.memory: "meta-reference-faiss",
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Api.safety: "meta-reference",
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Api.agentic_system: "meta-reference",
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},
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),
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DistributionSpec(
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distribution_id="remote",
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description="Point to remote services for all llama stack APIs",
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providers={x: "remote" for x in Api},
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),
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DistributionSpec(
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distribution_id="local-ollama",
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description="Like local, but use ollama for running LLM inference",
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providers={
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Api.inference: remote_provider_id("ollama"),
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Api.safety: "meta-reference",
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Api.agentic_system: "meta-reference",
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Api.memory: "meta-reference-faiss",
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},
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),
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DistributionSpec(
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distribution_id="local-plus-fireworks-inference",
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description="Use Fireworks.ai for running LLM inference",
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providers={
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Api.inference: remote_provider_id("fireworks"),
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Api.safety: "meta-reference",
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Api.agentic_system: "meta-reference",
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Api.memory: "meta-reference-faiss",
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},
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),
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DistributionSpec(
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distribution_id="local-plus-together-inference",
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description="Use Together.ai for running LLM inference",
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providers={
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Api.inference: remote_provider_id("together"),
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Api.safety: "meta-reference",
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Api.agentic_system: "meta-reference",
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Api.memory: "meta-reference-faiss",
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},
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),
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]
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@lru_cache()
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def resolve_distribution_spec(distribution_id: str) -> Optional[DistributionSpec]:
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for spec in available_distribution_specs():
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if spec.distribution_id == distribution_id:
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return spec
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return None
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