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TSBench

Stream data with DDA:

from dagshub.streaming import DagsHubFilesystem

fs = DagsHubFilesystem(".", repo_url="https://dagshub.com/DagsHub-Datasets/tsbench-dataset")

fs.listdir("s3://odp-tsbench")

Description:

TSBench comprises thousands of benchmark evaluations for time series forecasting methods. It provides various metrics (i.e. measures of accuracy, latency, number of model parameters, ...) of 13 time series forecasting methods across 44 heterogeneous datasets. Time series forecasting methods include both classical and deep learning methods while several hyperparameters settings are evaluated for the deep learning methods.

In addition to the tabular data providing the metrics, TSBench includes the probabilistic forecasts of all evaluated methods for all 44 datasets. While the tabular data is small (about 10 MiB), the forecasts amount to almost 600 GiB of data.

Contact:

TSBench comprises thousands of benchmark evaluations for time series forecasting methods. It provides various metrics (i.e. measures of accuracy, latency, number of model parameters, ...) of 13 time series forecasting methods across 44 heterogeneous datasets. Time series forecasting methods include both classical and deep learning methods while several hyperparameters settings are evaluated for the deep learning methods.

In addition to the tabular data providing the metrics, TSBench includes the probabilistic forecasts of all evaluated methods for all 44 datasets. While the tabular data is small (about 10 MiB), the forecasts amount to almost 600 GiB of data.

Update Frequency:

Not expected to be updated

Managed By:

https://aws.amazon.com

Resources:

  1. resource:
    • Description: TSBench Evaluation Metrics and Probabilistic Forecasts
    • ARN: arn:aws:s3:::odp-tsbench
    • Region: us-east-1
    • Type: S3 Bucket

Tags:

machine learning, deep learning, meta learning, benchmark, time series forecasting

Tutorials:

Tools & Applications:

Publication:

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About

tsbench-dataset is originate from the Registry of Open Data on AWS

Collaborators 5

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