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  1. Stackups
  2. AI
  3. Voice & Audio Models
  4. Speech Recognition Tools
  5. LibreASR vs WhisperFusion

LibreASR vs WhisperFusion

OverviewComparisonAlternatives

Overview

LibreASR
LibreASR
Stacks1
Followers3
Votes0
GitHub Stars682
Forks32
WhisperFusion
WhisperFusion
Stacks0
Followers0
Votes0
GitHub Stars1.6K
Forks126

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CLI (Node.js)
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Detailed Comparison

LibreASR
LibreASR
WhisperFusion
WhisperFusion

It is an On-Premises, Streaming Speech Recognition System built with PyTorch and fastai.

It builds upon the capabilities of the WhisperLive and WhisperSpeech by integrating Mistral, a Large Language Model (LLM), on top of the real-time speech-to-text pipeline. Both LLM and Whisper are optimized to run efficiently as TensorRT engines, maximizing performance and real-time processing capabilities.

RNN-T network; Fused language models; Dynamic Bucketing DataLoader; Dynamic Quantization; Tuned language model fusion
Utilizes OpenAI WhisperLive to convert spoken language into text in real-time; Large Language Model Integration; TensorRT optimization
Statistics
GitHub Stars
682
GitHub Stars
1.6K
GitHub Forks
32
GitHub Forks
126
Stacks
1
Stacks
0
Followers
3
Followers
0
Votes
0
Votes
0
Integrations
No integrations available
Docker
Docker
Whisper
Whisper
Mistral 7B
Mistral 7B

What are some alternatives to LibreASR, WhisperFusion?

Speechly

Speechly

It can be used to complement any regular touch user interface with a real time voice user interface. It offers real time feedback for faster and more intuitive experience that enables end user to recover from possible errors quickly and with no interruptions.

Kaldi

Kaldi

It is a state-of-the-art automatic speech recognition toolkit. It is intended for use by speech recognition researchers and professionals.

Deepspeech

Deepspeech

It 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.

Botium Speech Processing

Botium Speech Processing

It is a unified, developer-friendly API to the best available Speech-To-Text and Text-To-Speech services.

wav2letter++

wav2letter++

wav2letter++ is a fast open source speech processing toolkit from the Speech Team at Facebook AI Research. It is written entirely in C++ and uses the ArrayFire tensor library and the flashlight machine learning library for maximum efficiency. Our approach is detailed in this arXiv paper.

SpeechPy

SpeechPy

The purpose of this project is to provide a package for speech processing and feature extraction. This library provides most frequent used speech features including MFCCs and filterbank energies alongside with the log-energy of filterbanks.

Writeout.ai

Writeout.ai

Transcribe and translate audio files using OpenAI's Whisper API. You can upload any audio file, and the application will send it through the OpenAI Whisper API using Laravel's queued jobs. Translation makes use of the new OpenAI Chat API and chunks the generated VTT file into smaller parts to fit them into the prompt context limit.

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