awesome-TS-anomaly-detection VS MLflow

Compare awesome-TS-anomaly-detection vs MLflow and see what are their differences.

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awesome-TS-anomaly-detection MLflow
72 57
2,822 17,379
- 1.8%
0.0 9.9
3 months ago 5 days ago
Python
- 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.

awesome-TS-anomaly-detection

Posts with mentions or reviews of awesome-TS-anomaly-detection. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2020-12-31.

MLflow

Posts with mentions or reviews of MLflow. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2024-04-23.

What are some alternatives?

When comparing awesome-TS-anomaly-detection and MLflow you can also consider the following projects:

Awesome-Geospatial - Long list of geospatial tools and resources

clearml - ClearML - Auto-Magical CI/CD to streamline your AI workload. Experiment Management, Data Management, Pipeline, Orchestration, Scheduling & Serving in one MLOps/LLMOps solution

openHistorian - The Open Source Time-Series Data Historian

Sacred - Sacred is a tool to help you configure, organize, log and reproduce experiments developed at IDSIA.

awesome-metric-learning - 😎 A curated list of awesome practical Metric Learning and its applications

zenml - ZenML 🙏: Build portable, production-ready MLOps pipelines. https://zenml.io.

Netdata - The open-source observability platform everyone needs

guildai - Experiment tracking, ML developer tools

NAB - The Numenta Anomaly Benchmark

dvc - 🦉 ML Experiments and Data Management with Git

A3 - Inspired by recent advances in coverage-guided analysis of neural networks, we propose a novel anomaly detection method. We show that the hidden activation values contain information useful to distinguish between normal and anomalous samples. Our approach combines three neural networks in a purely data-driven end-to-end model. Based on the activation values in the target network, the alarm network decides if the given sample is normal. Thanks to the anomaly network, our method even works in strict semi-supervised settings. Strong anomaly detection results are achieved on common data sets surpassing current baseline methods. Our semi-supervised anomaly detection method allows to inspect large amounts of data for anomalies across various applications.

tensorflow - An Open Source Machine Learning Framework for Everyone