mirror of
https://github.com/ParisNeo/lollms-webui.git
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496 lines
14 KiB
Markdown
496 lines
14 KiB
Markdown
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I'll create a comprehensive guide on how to build a LoLLMs binding.
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# Building a LoLLMs Binding - Developer Guide
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## Introduction
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LoLLMs (Lord of Large Language Models) is a framework for interfacing with various language models. A binding is a connector that allows LoLLMs to interact with a specific model or API.
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## Table of Contents
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1. Basic Structure
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2. Essential Components
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3. Binding Types
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4. Step-by-Step Guide
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5. Advanced Features
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6. Best Practices
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## 1. Basic Structure
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A LoLLMs binding consists of the following files:
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```
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binding_name/
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├── __init__.py
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├── binding.py
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├── config.yaml
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├── logo.png
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└── README.md
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```
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## 2. Essential Components
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### 2.1 Base Class
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All bindings must inherit from `LLMBinding`:
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```python
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from lollms.binding import LLMBinding, LOLLMSConfig, BindingType
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from lollms.paths import LollmsPaths
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from lollms.config import BaseConfig, TypedConfig, ConfigTemplate, InstallOption
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class YourBinding(LLMBinding):
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def __init__(self,
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config: LOLLMSConfig,
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lollms_paths: LollmsPaths = None,
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installation_option:InstallOption=InstallOption.INSTALL_IF_NECESSARY,
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lollmsCom=None) -> None:
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# Your initialization code
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```
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### 2.2 Configuration
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Define your binding's configuration using TypedConfig:
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```python
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binding_config = TypedConfig(
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ConfigTemplate([
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{"name":"api_key","type":"str","value":"", "help":"API key"},
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{"name":"temperature","type":"float","value":0.7, "min":0.0, "max":1.0},
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# Add more configuration parameters
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]),
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BaseConfig(config={})
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)
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```
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## 3. Binding Types
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LoLLMs supports different binding types:
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```python
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class BindingType:
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TEXT = "text" # Text only
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TEXT_IMAGE = "text_image" # Text + image input
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MULTIMODAL = "multimodal" # Multiple input/output modalities
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```
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## 4. Step-by-Step Guide
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### 4.1 Create Basic Structure
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```python
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class YourBinding(LLMBinding):
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def __init__(self, config, lollms_paths=None, installation_option=InstallOption.INSTALL_IF_NECESSARY, lollmsCom=None):
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binding_config = TypedConfig(
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ConfigTemplate([
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# Your config parameters
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]),
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BaseConfig(config={})
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)
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super().__init__(
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Path(__file__).parent,
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lollms_paths,
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config,
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binding_config,
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installation_option,
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supported_file_extensions=[''],
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lollmsCom=lollmsCom
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)
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```
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### 4.2 Implement Required Methods
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```python
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def build_model(self, model_name=None):
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"""Build or initialize the model"""
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super().build_model(model_name)
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# Your model initialization code
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return self
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def generate(self,
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prompt: str,
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n_predict: int = 128,
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callback: Callable[[str], None] = None,
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verbose: bool = False,
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**gpt_params) -> str:
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"""Generate text from prompt"""
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# Your generation code
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def tokenize(self, prompt:str):
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"""Tokenize text"""
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# Your tokenization code
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def detokenize(self, tokens_list:list):
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"""Detokenize tokens"""
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# Your detokenization code
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def list_models(self):
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"""List available models"""
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# Return list of model names
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def get_available_models(self, app:LoLLMsCom=None):
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"""Get detailed model information"""
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# Return list of model details
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```
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### 4.3 Installation Support
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```python
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def install(self):
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"""Install required packages"""
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super().install()
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PackageManager.install_package("your-required-package")
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```
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## 5. Advanced Features
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### 5.1 Image Support
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For bindings that support images:
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```python
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def generate_with_images(self,
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prompt:str,
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images:list=[],
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n_predict: int = 128,
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callback: Callable[[str, int, dict], bool] = None,
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verbose: bool = False,
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**gpt_params):
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"""Generate text from prompt and images"""
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# Your image processing code
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```
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### 5.2 Embedding Support
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For models that support embeddings:
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```python
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def embed(self, text):
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"""Compute text embedding"""
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# Your embedding code
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return embedding_vector
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```
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## 6. Best Practices
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### 6.1 Error Handling
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Always implement proper error handling:
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```python
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def generate(self, prompt, **kwargs):
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try:
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# Your generation code
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except Exception as ex:
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trace_exception(ex)
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self.error(ex)
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return ""
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```
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### 6.2 Configuration Validation
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Validate configuration in settings_updated:
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```python
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def settings_updated(self):
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if not self.binding_config.api_key:
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self.error("API key not set!")
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else:
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self.build_model()
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```
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### 6.3 Documentation
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Always include:
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- README.md with usage instructions
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- Docstrings for methods
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- Configuration parameter descriptions
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- Requirements and dependencies
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### 6.4 Status Updates
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Use provided methods for status updates:
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```python
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self.info("Information message")
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self.warning("Warning message")
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self.error("Error message")
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self.success("Success message")
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```
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## Example config.yaml
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```yaml
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name: YourBinding
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author: Your Name
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version: 1.0.0
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description: Description of your binding
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url: https://github.com/yourusername/your-binding
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license: Apache 2.0
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```
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I'll add a detailed section about callbacks in LoLLMs bindings.
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# Callbacks in LoLLMs Bindings
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## Introduction
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Callbacks are crucial in LoLLMs as they enable streaming text generation, allowing the UI to update in real-time and providing control over the generation process.
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## Callback Types
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```python
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from lollms.types import MSG_OPERATION_TYPE
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class MSG_OPERATION_TYPE(Enum):
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# Conditionning
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MSG_OPERATION_TYPE_ADD_CHUNK = 0 # Add a chunk to the current message
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MSG_OPERATION_TYPE_SET_CONTENT = 1 # sets the content of current message
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MSG_OPERATION_TYPE_SET_CONTENT_INVISIBLE_TO_AI = 2 # sets the content of current message as invisible to ai
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MSG_OPERATION_TYPE_SET_CONTENT_INVISIBLE_TO_USER = 3 # sets the content of current message as invisible to user
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# Informations
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MSG_OPERATION_TYPE_EXCEPTION = 4 # An exception occured
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MSG_OPERATION_TYPE_WARNING = 5 # A warning occured
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MSG_OPERATION_TYPE_INFO = 6 # An information to be shown to user
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# Steps
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MSG_OPERATION_TYPE_STEP = 7 # An instant step (a step that doesn't need time to be executed)
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MSG_OPERATION_TYPE_STEP_START = 8 # A step has started (the text contains an explanation of the step done by he personality)
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MSG_OPERATION_TYPE_STEP_PROGRESS = 9 # The progress value (the text contains a percentage and can be parsed by the reception)
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MSG_OPERATION_TYPE_STEP_END_SUCCESS = 10# A step has been done (the text contains an explanation of the step done by he personality)
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MSG_OPERATION_TYPE_STEP_END_FAILURE = 11# A step has been done (the text contains an explanation of the step done by he personality)
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#Extra
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MSG_OPERATION_TYPE_JSON_INFOS = 12# A JSON output that is useful for summarizing the process of generation used by personalities like chain of thoughts and tree of thooughts
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MSG_OPERATION_TYPE_REF = 13# References (in form of [text](path))
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MSG_OPERATION_TYPE_CODE = 14# A javascript code to execute
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MSG_OPERATION_TYPE_UI = 15# A vue.js component to show (we need to build some and parse the text to show it)
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#Commands
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MSG_OPERATION_TYPE_NEW_MESSAGE = 16# A new message
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MSG_OPERATION_TYPE_FINISHED_MESSAGE = 17# End of current message
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```
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## Implementation Examples
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### 1. Basic Callback Usage
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```python
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def generate(self,
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prompt: str,
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n_predict: int = 128,
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callback: Callable[[str, MSG_OPERATION_TYPE], bool] = None,
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verbose: bool = False,
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**gpt_params) -> str:
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"""
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Generate text with callback support
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Args:
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prompt: Input text
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n_predict: Max tokens to generate
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callback: Function called for each generated chunk
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verbose: Enable verbose output
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"""
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output = ""
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try:
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# Example streaming response
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for chunk in model.stream_generate(prompt):
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if callback is not None:
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# Call callback with chunk and operation type
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# If callback returns False, stop generation
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if not callback(chunk, MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK):
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break
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output += chunk
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except Exception as ex:
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trace_exception(ex)
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self.error(ex)
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return output
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```
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### 2. Advanced Callback Usage
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```python
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def generate_with_images(self,
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prompt:str,
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images:list=[],
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n_predict: int = 128,
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callback: Callable[[str, MSG_OPERATION_TYPE, dict], bool] = None,
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verbose: bool = False,
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**gpt_params):
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"""Generate text with images and advanced callback usage"""
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output = ""
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try:
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# Process response stream
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for chunk in model.stream_response():
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# Add new chunk
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if chunk.type == 'text':
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if callback is not None:
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# Send chunk with metadata
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metadata = {
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'token_count': len(self.tokenize(chunk.text)),
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'finish_reason': chunk.finish_reason
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}
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if not callback(chunk.text,
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MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK,
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metadata):
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break
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output += chunk.text
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# Replace last chunk (e.g., for word corrections)
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elif chunk.type == 'correction':
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if callback is not None:
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if not callback(chunk.text,
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MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_REPLACE_LAST):
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break
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output = output[:-len(chunk.previous)] + chunk.text
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# Add new line
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elif chunk.type == 'newline':
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if callback is not None:
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if not callback("\n",
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MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_NEW_LINE):
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break
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output += "\n"
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except Exception as ex:
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trace_exception(ex)
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self.error(ex)
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return output
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```
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### 3. Callback with Progress Updates
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```python
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def generate(self, prompt: str, n_predict: int = 128, callback=None, **kwargs):
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output = ""
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tokens_generated = 0
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try:
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for chunk in model.stream_generate(prompt):
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tokens_generated += len(self.tokenize(chunk))
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if callback is not None:
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# Include progress information
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metadata = {
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'progress': tokens_generated / n_predict,
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'tokens_generated': tokens_generated,
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'max_tokens': n_predict
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}
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if not callback(chunk,
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MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK,
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metadata):
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break
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output += chunk
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# Check token limit
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if tokens_generated >= n_predict:
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break
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except Exception as ex:
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trace_exception(ex)
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self.error(ex)
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return output
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```
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## Best Practices for Callbacks
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1. **Always Check Callback Return Value**
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```python
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if callback is not None:
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if not callback(chunk, MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK):
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break # Stop generation if callback returns False
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```
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2. **Handle Different Operation Types**
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```python
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# Add new content
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callback(chunk, MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK)
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# Replace last chunk
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callback(corrected_text, MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_REPLACE_LAST)
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# Add new line
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callback("\n", MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_NEW_LINE)
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```
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3. **Include Useful Metadata**
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```python
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metadata = {
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'progress': current_tokens / max_tokens,
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'temperature': temperature,
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'token_count': token_count,
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'finish_reason': finish_reason
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}
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callback(chunk, operation_type, metadata)
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```
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4. **Error Handling in Callbacks**
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```python
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try:
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if callback is not None:
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if not callback(chunk, MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK):
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break
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except Exception as ex:
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self.error(f"Callback error: {ex}")
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# Continue or break based on your needs
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```
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5. **Respect Token Limits**
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```python
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token_count = len(self.tokenize(output))
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if token_count >= n_predict:
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if callback is not None:
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callback("", MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK,
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{'finish_reason': 'length'})
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break
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```
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## Common Use Cases
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1. **Progress Display**
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```python
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def progress_callback(chunk, op_type, metadata=None):
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if metadata and 'progress' in metadata:
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print(f"Progress: {metadata['progress']*100:.2f}%")
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return True
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```
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2. **Token Counting**
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```python
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def token_callback(chunk, op_type, metadata=None):
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if metadata and 'token_count' in metadata:
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print(f"Tokens generated: {metadata['token_count']}")
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return True
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```
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3. **UI Updates**
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```python
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def ui_callback(chunk, op_type, metadata=None):
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if op_type == MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_ADD_CHUNK:
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update_ui_text(chunk)
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elif op_type == MSG_OPERATION_TYPE.MSG_OPERATION_TYPE_NEW_LINE:
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update_ui_newline()
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return True
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```
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Remember that callbacks are essential for:
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- Real-time text streaming
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- Progress monitoring
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- User interaction
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- Generation control
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- UI updates
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Using callbacks effectively makes your binding more interactive and user-friendly.
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## Conclusion
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Building a LoLLMs binding requires:
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1. Implementing the base interface
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2. Proper configuration management
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3. Error handling
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4. Documentation
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5. Following best practices
|
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For more examples, check the official LoLLMs bindings repository.
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||
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|
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Remember to test your binding thoroughly and maintain compatibility with the LoLLMs framework's conventions and interfaces.
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## Support
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For help or questions about binding development:
|
||
|
- Visit the LoLLMs GitHub repository
|
||
|
- Join the community discussion
|
||
|
- Check existing bindings for examples
|
||
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|
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Happy binding development!
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