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Timesfm 1.0 200m

Developed by google
A pretrained time series foundation model developed by Google Research, focusing on univariate time series forecasting
Downloads 2,797
Release Time : 5/3/2024

Model Overview

TimesFM is a decoder-only foundation model for time series forecasting tasks, supporting univariate forecasting with up to 512 time points and capable of predicting any length of time horizon

Model Features

Long sequence support
Supports univariate time series forecasting with up to 512 time points
Flexible forecasting horizon
Can predict any length of time horizon without fixed prediction windows
Multi-frequency support
Supports high, medium, and low frequency time series forecasting through categorical values
Continuous input processing
Requires continuous input context and automatically handles padding/truncation

Model Capabilities

Univariate time series forecasting
Point forecasting
Experimental quantile forecasting

Use Cases

Business forecasting
Sales forecasting
Predict sales data for any future time period
Economic indicator forecasting
GDP forecasting
Predict quarterly or annual GDP trends
Resource demand forecasting
Electricity demand forecasting
Predict future electricity consumption patterns
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