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MontrealCorpusTools/spanish_mfa

sourceHugging Facecc-by-4.0updated 4mo agoView on Hugging Face
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Model Card for spanish_mfa

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This MFA model is for aligning Spanish speech.

Model Details

Model Description

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  • Developed by: Michael McAuliffe
  • Funded by: N/A
  • Model type: Montreal Forced Aligner model
  • Language(s) (NLP): Spanish
  • License: cc-by-4.0

Uses

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Direct Use

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This model is intended to be used for forced alignment of Spanish speech. Please see https://montreal-forced-aligner.readthedocs.io/en/latest/user_guide/troubleshooting.html for details on common fixes.

Out-of-Scope Use

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This model cannot provide accurate assessments of goodness of pronunciations or provide transcripts as it is trained to be accepting of variation in pronunciation to provide a reasonable alignment for Spanish speech.

Bias, Risks, and Limitations

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This model will perform best on the variety of speech that it was trained on. The speakers in the training data are all adult speakers, so child speech alignment may not be accurate.

Recommendations

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When using this model on a variety that it was not trained on, better results can be attained by adapting the model to the data to be aligned first. See https://montreal-forced-aligner.readthedocs.io/en/latest/userguide/workflows/adaptacoustic_model.html and https://github.com/mmcauliffe/mfa-adaptation for example usage and scripts.

How to Get Started with the Model

Use the code below to get started with the model.

To get started, follow the instructions for installing MFA. To align files using this model, use the mfa align command.

Dictionary Details

Details for spanishlatinamerica_mfa dictionary and G2P model
  • Source: wikipron
  • Orthography: Latin
  • Phone set: MFA
  • Words: 320,402
  • Phones: 40
  • Graphemes: 113
IPA chart
Consonants
MannerLabialLabiodentalDentalAlveolarAlveopalatalPalatalVelarGlottal
Nasalmɱnɲŋ
Stopp bt̪ d̪c ɟk ɡ
Affricateɟʝ
Sibilants zʃ
Fricativef vðç ʝh
Approximantwj
Tapɾ
Trillr
Laterallʎ
Vowels
Oral vowels
FrontNear-FrontCentralNear-BackBack
Closeiu
Close-Mideo
Open-Mid
Opena
Nasal vowels
FrontNear-FrontCentralNear-BackBack
Close
Close-Mid
Open-Mid
Open
Details for spanishspainmfa dictionary and G2P model
  • Source: wikipron
  • Orthography: Latin
  • Phone set: MFA
  • Words: 437,782
  • Phones: 41
  • Graphemes: 82
IPA chart
Consonants
MannerLabialLabiodentalDentalAlveolarAlveopalatalPalatalVelarGlottal
Nasalmɱnɲŋ
Stopp bt̪ d̪c ɟk ɡ
Affricateɟʝ
Sibilants zʃ
Fricativef vθ ðç ʝh
Approximantwj
Tapɾ
Trillr
Laterallʎ
Vowels
Oral vowels
FrontNear-FrontCentralNear-BackBack
Closeiu
Close-Mideo
Open-Mid
Opena
Nasal vowels
FrontNear-FrontCentralNear-BackBack
Close
Close-Mid
Open-Mid
Open

Training Details

Training Data

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Common Voice Spanish
  • Source: https://voice.mozilla.org/en/datasets
  • License: CC-0
  • Dialects: spain, latin america
  • Number of hours: 670.81
  • Number of utterances: 480,819
  • Number of speakers: 22,028
  • Female speakers: 1,198
  • Male speakers: 3,431
  • Unknown speakers: 17,399
GlobalPhone Spanish (Latin American)
  • Source: https://catalogue.elra.info/en-us/repository/browse/ELRA-S0203/
  • License: ELRA
  • Dialects: Latin America
  • Number of hours: 22.12
  • Number of utterances: 6,898
  • Number of speakers: 100
  • Female speakers: 56
  • Male speakers: 44
  • Unknown speakers: 0
Google i18n Chile
  • Source: https://openslr.org/71/
  • License: CC BY-SA 4.0
  • Dialects: latin america
  • Number of hours: 7.15
  • Number of utterances: 4,374
  • Number of speakers: 31
  • Female speakers: 13
  • Male speakers: 18
  • Unknown speakers: 0
Google i18n Columbia
  • Source: https://openslr.org/71/
  • License: CC BY-SA 4.0
  • Dialects: latin america
  • Number of hours: 7.58
  • Number of utterances: 4,903
  • Number of speakers: 33
  • Female speakers: 16
  • Male speakers: 17
  • Unknown speakers: 0
Google i18n Peru
  • Source: https://openslr.org/71/
  • License: CC BY-SA 4.0
  • Dialects: latin america
  • Number of hours: 9.22
  • Number of utterances: 5,447
  • Number of speakers: 38
  • Female speakers: 18
  • Male speakers: 20
  • Unknown speakers: 0
Google i18n Puerto Rico
  • Source: https://openslr.org/71/
  • License: CC BY-SA 4.0
  • Dialects: latin america
  • Number of hours: 1.00
  • Number of utterances: 617
  • Number of speakers: 5
  • Female speakers: 5
  • Male speakers: 0
  • Unknown speakers: 0
Google i18n Venezuela
  • Source: https://openslr.org/71/
  • License: CC BY-SA 4.0
  • Dialects: latin america
  • Number of hours: 4.81
  • Number of utterances: 3,357
  • Number of speakers: 23
  • Female speakers: 11
  • Male speakers: 12
  • Unknown speakers: 0
Multilingual LibriSpeech Spanish
  • Source: https://openslr.org/94/
  • License: CC BY 4.0
  • Dialects: spain
  • Number of hours: 938.30
  • Number of utterances: 225,494
  • Number of speakers: 126
  • Female speakers: 70
  • Male speakers: 56
  • Unknown speakers: 0
Multilingual TEDx Spanish
  • Source: https://www.openslr.org/100/
  • License: CC BY-NC-ND 4.0
  • Dialects: spain, latin america
  • Number of hours: 176.18
  • Number of utterances: 72,504
  • Number of speakers: 1,068
  • Female speakers: 0
  • Male speakers: 0
  • Unknown speakers: 1,068
M-AILABS Spanish
  • Source: https://openslr.org/94/
  • License: M-AILABS License
  • Dialects: spain, latin america
  • Number of hours: 108.57
  • Number of utterances: 59,296
  • Number of speakers: 21
  • Female speakers: 11
  • Male speakers: 10
  • Unknown speakers: 0

Training Procedure

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Preprocessing

Preprocessing include fixes and orthographic standardization to various corpora.

Training Hyperparameters
  • Training regime: Training configuration

Evaluation

<!-- This section describes the evaluation protocols and provides the results. -->

Testing Data, Factors & Metrics

Testing Data

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N/A

Factors

<!-- These are the things the evaluation is disaggregating by, e.g., subpopulations or domains. -->

N/A

Metrics

<!-- These are the evaluation metrics being used, ideally with a description of why. -->

N/A

Results

N/A

Summary

Technical Specifications

Model Architecture and Objective

HMM-GMM model

Software

This model was trained via the Montreal Forced Aligner.

Citation

<!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. -->

BibTeX:

@techreport{mfa_spanish_mfa_acoustic_2026,
	author={McAuliffe, Michael and Sonderegger, Morgan},
	title={Spanish MFA acoustic model v3.3.0},
	address={\url{https://huggingface.co/MontrealCorpusTools/spanish_mfa}},
	year={2026},
	month={Jun},
}

APA:

McAuliffe, M. & Sonderegger, M. (2026). Spanish MFA acoustic model v3.3.0. Available at https://huggingface.co/MontrealCorpusTools/spanish_mfa.

Contact

For questions and issues, please file an issue either for this model at https://huggingface.co/MontrealCorpusTools/spanish_mfa/discussions or for larger MFA issues at https://github.com/MontrealCorpusTools/Montreal-Forced-Aligner/issues.