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Chattime 1 7B Chat

Developed by ChengsenWang
ChatTime is a multimodal foundation model that unifies time series and text processing, featuring zero-shot forecasting capabilities and supporting dual-modal input/output for both time series and text.
Downloads 1,621
Release Time : 7/8/2024

Model Overview

ChatTime innovatively models time series as a foreign language, establishing a unified framework for processing time series and text. As an out-of-the-box multimodal time series foundation model, ChatTime possesses zero-shot forecasting capabilities and supports dual-modal input/output for time series and text.

Model Features

Multimodal Processing Capability
Supports dual-modal input and output for time series and text, enabling unified processing of numerical and textual data.
Zero-shot Forecasting
Features zero-shot time series forecasting capabilities, applicable to new tasks without additional training.
Context-guided Forecasting
Can combine textual context information for more accurate time series forecasting.
Time Series QA
Supports question-answering functionality based on time series data, enabling interaction between data and knowledge.

Model Capabilities

Time Series Forecasting
Text Generation
Multimodal Data Processing
Zero-shot Learning
Time Series QA

Use Cases

Time Series Analysis
Traffic Flow Forecasting
Uses historical traffic flow data to forecast future traffic
Can predict traffic flow trends for the next 24 hours
Financial Time Series Analysis
Forecasts and analyzes financial time series data such as stock prices
Provides future price trend predictions
Multimodal Interaction
Time Series QA System
Answers user questions based on time series data
Provides knowledge-based answers related to the data
Context-enhanced Forecasting
Combines textual descriptions for more accurate time series forecasting
More accurate results compared to pure numerical forecasting
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