VolleyVision VS UNINEXT

Compare VolleyVision vs UNINEXT and see what are their differences.

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VolleyVision UNINEXT
2 2
141 1,438
- -
8.7 5.5
24 days ago 9 months ago
Python Python
GNU Affero General Public License v3.0 MIT License
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VolleyVision

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

UNINEXT

Posts with mentions or reviews of UNINEXT. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2023-03-12.
  • [R] Universal Instance Perception as Object Discovery and Retrieval (Video Demo)
    2 projects | /r/MachineLearning | 12 Mar 2023
    Hi, we have uploaded the complete paper (https://github.com/MasterBin-IIAU/UNINEXT/blob/master/assets/UNINEXT_Paper.pdf) to our repo. You can find more details in the paper :) About the first question, the input videos are NOT segmented aforehand and all target masks are predicted by our UNINEXT model. For SOT and VOS, we use target annotations (box or mask) from the first frame as the prompts. This helps UNINEXT to segment corresponding targets in the following frames.

What are some alternatives?

When comparing VolleyVision and UNINEXT you can also consider the following projects:

py-motmetrics - :bar_chart: Benchmark multiple object trackers (MOT) in Python

ailia-models - The collection of pre-trained, state-of-the-art AI models for ailia SDK

multi-object-tracker - Multi-object trackers in Python

gluon-cv - Gluon CV Toolkit

norfair - Lightweight Python library for adding real-time multi-object tracking to any detector.

yolov4-deepsort - Object tracking implemented with YOLOv4, DeepSort, and TensorFlow.

TagMaps - Spatio-Temporal Tag and Photo Location Clustering for generating Tag Maps

unimatch - [TPAMI'23] Unifying Flow, Stereo and Depth Estimation

VNext - Next-generation Video instance recognition framework on top of Detectron2 which supports InstMove (CVPR 2023), SeqFormer(ECCV Oral), and IDOL(ECCV Oral))

UniTrack - [NeurIPS'21] Unified tracking framework with a single appearance model. It supports Single Object Tracking (SOT), Video Object Segmentation (VOS), Multi-Object Tracking (MOT), Multi-Object Tracking and Segmentation (MOTS), Pose Tracking, Video Instance Segmentation (VIS), and class-agnostic MOT (e.g. TAO dataset).