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March 12, 20260 citationsOpen Access

Beyond LENA: Open-Source NLP & AI Tools for Audio Data

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IBIoana Buhnila

Key Points

  • The aim is to introduce open-source NLP algorithms and AI tools for processing large audio datasets.
  • Presented automatic speech processing tools for long-form audio data.
  • Highlighted open-source tools like VTC for speaker categorization and ALICE for linguistic unit estimation.
  • Introduced Audio and Multimodal Large Language Models for extracting features from audio.
  • VTC effectively segments audio files into speaker categories.
  • ALICE provides accurate estimations of linguistic units produced by speakers.
  • Open-source tools enhance reproducibility and accessibility in audio data research.

Abstract

This tutorial introduces Natural Language Processing (NLP) algorithms and Artificial Intelligence (AI) tools for processing long-form audio data. As typical projects on speech can have datasets of up to thousands of hours of audio, researchers cannot rely only on manual annotation. Automatic speech processing tools became necessary to work with very large datasets. Moreover, reliance only on proprietary NLP and AI tools can hinder the reproducibility of experiments by a wide research community. Therefore, in this tutorial, we focus on open-source tools such as VTC (Voice Type Classifier) and ALICE (Adult LInguistic unit Count Estimator). VTC helps segment audio files into broad speaker categories, while ALICE estimates the number of linguistic units (e.g. syllables, words) produced by an adult speaker. We also present open-source Audio and Multimodal Large Language Models (LLMs) that can help extract linguistic features from audio data, in a multilingual context.

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Cite This Study

Ioana Buhnila (2026) studied this question.

synapsesocial.com/papers/69b257a296eeacc4fcec669ahttps://doi.org/10.5281/zenodo.18918374
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