wav2letter VS openpose

Compare wav2letter vs openpose and see what are their differences.

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wav2letter openpose
3 36
6,331 29,867
0.2% 1.6%
4.5 5.1
15 days ago 14 days ago
C++ C++
GNU General Public License v3.0 or later GNU General Public License v3.0 or later
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.

wav2letter

Posts with mentions or reviews of wav2letter. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-07-06.
  • How to convert Speech-to-Text with Python?
    2 projects | dev.to | 6 Jul 2022
    Flashlight is a fast, flexible machine learning library written entirely in C++ from the Facebook AI Research Speech team and the creators of Torch and Deep Speech. Flashlight's ASR application (formerly the wav2letter project) provides training and inference capabilities for end-to-end speech recognition systems. This engine is really performant but you will need to compile all the C++ libraries before using it with Python.
  • Open-source massively multilingual speech recognizer
    1 project | /r/opensource | 10 Mar 2022
    Twitter was giving me a 500, so the goods are at https://github.com/flashlight/wav2letter/tree/main/recipes/mling_pl courtesy of the wayback machine
  • Top Transcription APIs and Open Source Libraries in 2022
    2 projects | dev.to | 7 Mar 2022
    Wav2Letter, Facebook AI Research’s Automatic Speech Recognition (ASR)toolkit, is designed for research and developers to use for speech transcription.

openpose

Posts with mentions or reviews of openpose. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2023-11-25.

What are some alternatives?

When comparing wav2letter and openpose you can also consider the following projects:

STT - 🐸STT - The deep learning toolkit for Speech-to-Text. Training and deploying STT models has never been so easy.

mediapipe - Cross-platform, customizable ML solutions for live and streaming media.

DeepSpeech - DeepSpeech is an open source embedded (offline, on-device) speech-to-text engine which can run in real time on devices ranging from a Raspberry Pi 4 to high power GPU servers.

AlphaPose - Real-Time and Accurate Full-Body Multi-Person Pose Estimation&Tracking System

CIDLib - The CIDLib general purpose C++ development environment

detectron2 - Detectron2 is a platform for object detection, segmentation and other visual recognition tasks.

serving - A flexible, high-performance serving system for machine learning models

mmpose - OpenMMLab Pose Estimation Toolbox and Benchmark.

lightweight-human-pose-estimation.pytorch - Fast and accurate human pose estimation in PyTorch. Contains implementation of "Real-time 2D Multi-Person Pose Estimation on CPU: Lightweight OpenPose" paper.

BlazePose-tensorflow - A third-party Tensorflow Implementation for paper "BlazePose: On-device Real-time Body Pose tracking".

MocapNET - We present MocapNET, a real-time method that estimates the 3D human pose directly in the popular Bio Vision Hierarchy (BVH) format, given estimations of the 2D body joints originating from monocular color images. Our contributions include: (a) A novel and compact 2D pose NSRM representation. (b) A human body orientation classifier and an ensemble of orientation-tuned neural networks that regress the 3D human pose by also allowing for the decomposition of the body to an upper and lower kinematic hierarchy. This permits the recovery of the human pose even in the case of significant occlusions. (c) An efficient Inverse Kinematics solver that refines the neural-network-based solution providing 3D human pose estimations that are consistent with the limb sizes of a target person (if known). All the above yield a 33% accuracy improvement on the Human 3.6 Million (H3.6M) dataset compared to the baseline method (MocapNET) while maintaining real-time performance

freemocap - Free Motion Capture for Everyone 💀✨