flow-forecast VS Informer2020

Compare flow-forecast vs Informer2020 and see what are their differences.

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flow-forecast Informer2020
13 2
1,912 4,955
3.0% -
9.5 0.6
6 days ago 2 months ago
Python Python
GNU General Public License v3.0 only Apache License 2.0
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
Stars - the number of stars that a project has on GitHub. Growth - month over month growth in stars.
Activity is a relative number indicating how actively a project is being developed. Recent commits have higher weight than older ones.
For example, an activity of 9.0 indicates that a project is amongst the top 10% of the most actively developed projects that we are tracking.

flow-forecast

Posts with mentions or reviews of flow-forecast. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-10-07.

Informer2020

Posts with mentions or reviews of Informer2020. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2021-02-24.

What are some alternatives?

When comparing flow-forecast and Informer2020 you can also consider the following projects:

darts - A python library for user-friendly forecasting and anomaly detection on time series.

pytorch-forecasting - Time series forecasting with PyTorch

tsai - Time series Timeseries Deep Learning Machine Learning Pytorch fastai | State-of-the-art Deep Learning library for Time Series and Sequences in Pytorch / fastai

neural_prophet - NeuralProphet: A simple forecasting package

DeepADoTS - Repository of the paper "A Systematic Evaluation of Deep Anomaly Detection Methods for Time Series".

neuralforecast - Scalable and user friendly neural :brain: forecasting algorithms.

long-range-arena - Long Range Arena for Benchmarking Efficient Transformers

xgboost-survival-embeddings - Improving XGBoost survival analysis with embeddings and debiased estimators

SAITS - The official PyTorch implementation of the paper "SAITS: Self-Attention-based Imputation for Time Series". A fast and state-of-the-art (SOTA) deep-learning neural network model for efficient time-series imputation (impute multivariate incomplete time series containing NaN missing data/values with machine learning). https://arxiv.org/abs/2202.08516

Time-Series-Forecasting-Using-LSTM - Time-Series Forecasting on Stock Prices using LSTM

statsforecast - Lightning ⚡️ fast forecasting with statistical and econometric models.