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Granite Timeseries Ttm R2

Developed by ibm-granite
TinyTimeMixers (TTMs) are compact pretrained models for multivariate time-series forecasting open-sourced by IBM Research, starting from 1 million parameters, introducing the concept of 'miniature' pretrained models in time-series forecasting for the first time.
Downloads 217.99k
Release Time : 10/8/2024

Model Overview

TTM is a lightweight predictor, pretrained on public time-series data with various enhancement techniques, offering state-of-the-art zero-shot forecasting capabilities. Competitive multivariate forecasting results can be achieved with just 5% of training data for fine-tuning.

Model Features

Miniature pretrained model
Introduces the concept of 'miniature' pretrained models in time-series forecasting for the first time, starting from 1 million parameters, with lightweight design for low-resource deployment.
Zero-shot forecasting capability
Provides state-of-the-art zero-shot forecasting capability, delivering initial prediction results without training.
Rapid fine-tuning
Achieves competitive multivariate forecasting results with just 5% of training data for fine-tuning, typically completing fine-tuning within minutes.
Multi-resolution support
Supports point forecasting scenarios from minute-level to hour-level resolutions (r2.1 version adds support for daily and weekly resolutions).

Model Capabilities

Multivariate time-series forecasting
Zero-shot forecasting
Few-shot fine-tuning
Channel-independent forecasting
Channel-mixed forecasting
Exogenous variable support
Static categorical feature support
Rolling forecasting

Use Cases

Energy
Electricity demand forecasting
Forecasting future electricity demand changes
Performs excellently on Australian electricity demand datasets
Solar power generation forecasting
Forecasting solar power generation
Transportation
Traffic flow forecasting
Forecasting road or regional traffic flow
Performs well on PEMSD series traffic data
Finance
Bitcoin price forecasting
Forecasting Bitcoin price trends
Public health
COVID-19 data analysis
Analyzing and forecasting COVID-19 related data
Newly supported in r2.1 version
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