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Unique Toolkit

This package provides high-level abstractions and methods on top of unique_sdk to ease application development for the Unique Platform.

The Toolkit is structured along the following domains:

  • unique_toolkit.chat
  • unique_toolkit.content
  • unique_toolkit.embedding
  • unique_toolkit.language_model
  • unique_toolkit.short_term_memory

Each domain comprises a set of schemas (in schemas.py) that are used in functions (in functions.py) which encapsulate the basic functionalities to interact with the platform. The above domains represent the internal structure of the Unique platform.

For the developers we expose interfaces via services classes that correspond directly to a frontend or an entity the user interacts with.

The following services are currently available:

Service Responsibility
ChatService All interactions with the chat interface
KnowledgeBaseService All interaction with the knowledgebase

The services can be directly imported as

from unique_toolkit import ChatService, KnowledgeBaseService

In addition, the unique_toolkit.app module provides functions to initialize apps and dev utilities to interact with the Unique platform.

Changelog

See the CHANGELOG.md file for details on changes and version history.

Domains

App

The unique_toolkit.app module encompasses functions for initializing and securing apps that will interact with the Unique platform.

  • init_logging.py can be used to initalize the logger either with unique dictConfig or an any other dictConfig.
  • init_sdk.py can be used to initialize the sdk using the correct env variables and retrieving the endpoint secret.
  • schemas.py contains the Event schema which can be used to parse and validate the unique.chat.external-module.chosen event.
  • verification.py can be used to verify the endpoint secret and construct the event.

Chat

The unique_toolkit.chat module encompasses all chat related functionality.

  • functions.py comprises the functions to manage and load the chat history and interact with the chat ui, e.g., creating a new assistant message.
  • schemas.py comprises all relevant schemas, e.g., ChatMessage, used in the ChatService.
  • utils.py comprises utility functions to use and convert ChatMessage objects in assistants, e.g., convert_chat_history_to_injectable_string converts the chat history to a string that can be injected into a prompt.

Content

The unique_toolkit.content module encompasses all content related functionality. Content can be any type of textual data that is stored in the Knowledgebase on the Unique platform. During the ingestion of the content, the content is parsed, split in chunks, indexed, and stored in the database.

  • functions.py comprises the functions to manage and load the chat history and interact with the chat ui, e.g., creating a new assistant message.
  • schemas.py comprises all relevant schemas, e.g., Content and ContentChunk, used in the ContentService.
  • utils.py comprise utility functions to manipulate Content and ContentChunk objects, e.g., sort_content_chunks and merge_content_chunks.

Embedding (To be Deprecated)

The unique_toolkit.embedding module encompasses all embedding related functionality. Embeddings are used to represent textual data in a high-dimensional space. The embeddings can be used to calculate the similarity between two texts, for instance.

  • functions.py comprises the functions to embed text and calculate the similarity between two texts.
  • service.py encompasses the EmbeddingService and provides an interface to interact with the embeddings, e.g., embed text and calculate the similarity between two texts.
  • schemas.py comprises all relevant schemas, e.g., Embeddings, used in the EmbeddingService.

Language Model

The unique_toolkit.language_model module encompasses all language model related functionality and information on the different language models deployed through the Unique platform.

  • infos.py comprises the information on all language models deployed through the Unique platform. We recommend to use the LanguageModel class, initialized with the LanguageModelName, e.g., LanguageModel(LanguageModelName.AZURE_GPT_4o_2024_1120) to get the information on the specific language model like the name, version, token limits or retirement date.
  • functions.py comprises the functions to complete and stream complete to chat.
  • schemas.py comprises all relevant schemas, e.g., LanguageModelResponse, used in the LanguageModelService.
  • utils.py comprises utility functions to parse the output of the language model, e.g., convert_string_to_json finds and parses the last json object in a string.

Short Term Memory

The unique_toolkit.short_term_memory module encompasses all short term memory related functionality.

  • functions.py comprises the functions to manage and load the chat history and interact with the chat ui, e.g., creating a new assistant message.
  • schemas.py comprises all relevant schemas, e.g., ShortTermMemory, used in the ShortTermMemoryService.

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