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Chronos T5 Base

Developed by autogluon
Chronos is a family of pre-trained time series forecasting models based on language model architectures, which transform time series into token sequences for training through quantization and scaling.
Downloads 82.42k
Release Time : 5/14/2024

Model Overview

Chronos-T5 is a time series forecasting model based on the T5 architecture. It converts time series data into token sequences and trains using cross-entropy loss to generate probabilistic forecasts.

Model Features

Probabilistic Forecasting
Generates future trajectories through multiple sampling, providing predictive distributions rather than single-point forecasts.
Large-scale Pretraining
Pretrained on extensive public time series data and synthetic data, ensuring broad applicability.
Efficient Architecture
Utilizes an improved T5 architecture with an optimized vocabulary size of 4096 tokens, resulting in fewer parameters.
Easy to Use
Provides a simple Python interface, enabling forecasting tasks with just a few lines of code.

Model Capabilities

Time Series Forecasting
Probabilistic Forecasting
Multi-step Forecasting
Uncertainty Quantification

Use Cases

Business Forecasting
Sales Forecasting
Predicts future product sales to assist inventory management decisions.
Generates forecasts with confidence intervals
Foot Traffic Forecasting
Predicts changes in visitor numbers at locations like malls and airports.
Supports multi-step forecasting and uncertainty quantification
Economics & Finance
Stock Price Prediction
Analyzes historical stock price data to predict future trends.
Note: Financial markets exhibit high volatility
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