Entity VS AgML

Compare Entity vs AgML and see what are their differences.

AgML

AgML is a centralized framework for agricultural machine learning. AgML provides access to public agricultural datasets for common agricultural deep learning tasks, with standard benchmarks and pretrained models, as well the ability to generate synthetic data and annotations. (by Project-AgML)
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Entity AgML
2 1
667 153
2.2% 3.9%
6.9 7.7
5 months ago 2 months ago
Jupyter Notebook Python
GNU General Public License v3.0 or later 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.

Entity

Posts with mentions or reviews of Entity. We have used some of these posts to build our list of alternatives and similar projects.
  • Open-world entity segmentation: eliminates the thing-stuff distinction!
    1 project | /r/u_waynerad | 8 Aug 2021
  • [R] Open-World Entity Segmentation (Better dense image segmentation without labels)
    1 project | /r/MachineLearning | 31 Jul 2021
    Abstract: We introduce a new image segmentation task, termed Entity Segmentation (ES) with the aim to segment all visual entities in an image without considering semantic category labels. It has many practical applications in image manipulation/editing where the segmentation mask quality is typically crucial but category labels are less important. In this setting, all semantically-meaningful segments are equally treated as categoryless entities and there is no thing-stuff distinction. Based on our unified entity representation, we propose a center-based entity segmentation framework with two novel modules to improve mask quality. Experimentally, both our new task and framework demonstrate superior advantages as against existing work. In particular, ES enables the following: (1) merging multiple datasets to form a large training set without the need to resolve label conflicts; (2) any model trained on one dataset can generalize exceptionally well to other datasets with unseen domains. Our code is made publicly available at this https URL.

AgML

Posts with mentions or reviews of AgML. We have used some of these posts to build our list of alternatives and similar projects.

What are some alternatives?

When comparing Entity and AgML you can also consider the following projects:

rankseg - [JMLR 2023] RankSEG: A consistent ranking-based framework for segmentation

gluon-cv - Gluon CV Toolkit

flying-guide-dog - Official implementation of "Flying Guide Dog: Walkable Path Discovery for the Visually Impaired Utilizing Drones and Transformer-based Semantic Segmentation", IEEE ROBIO 2021

ScanRefer - [ECCV 2020] ScanRefer: 3D Object Localization in RGB-D Scans using Natural Language

mask-rcnn - Mask-RCNN training and prediction in MATLAB for Instance Segmentation

cvat - Annotate better with CVAT, the industry-leading data engine for machine learning. Used and trusted by teams at any scale, for data of any scale. [Moved to: https://github.com/cvat-ai/cvat]

InteractiveAnnotation - Interactive Annotation using Segment Anything for fast and accurate segmentation

pytorch-grad-cam - Advanced AI Explainability for computer vision. Support for CNNs, Vision Transformers, Classification, Object detection, Segmentation, Image similarity and more.

Open3D-ML - An extension of Open3D to address 3D Machine Learning tasks

labelme2coco - A lightweight package for converting your labelme annotations into COCO object detection format.