RuASD / README.md
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metadata
language:
  - ru
tags:
  - audio
  - speech
  - anti-spoofing
  - audio-deepfake-detection
  - tts
task_categories:
  - audio-classification
pretty_name: RuASD
size_categories:
  - 100K<n<1M
license: cc-by-nc-sa-4.0

RuASD: Russian Anti-Spoofing Dataset

RuASD is a public Russian-language speech anti-spoofing dataset designed for developing and benchmarking audio deepfake detection systems. It combines spoofed utterances generated by 37 Russian-capable speech synthesis systems with bona fide recordings curated from multiple heterogeneous Russian speech corpora. In addition to clean audio, the dataset supports robustness-oriented evaluation through reproducible perturbations such as reverberation, additive noise, and codec-based channel degradation.

Models: ESpeech, F5-TTS, VITS, Piper, TeraTTS, MMS TTS, VITS2, GPT-SoVITS, CoquiTTS, XTSS, Fastpitch, RussianFastSpeech, Bark, GradTTS, FishTTS, Pyttsx3, RHVoice, Silero, Fairseq Transformer, SpeechT5, Vosk-TTS, EdgeTTS, VK Cloud, SaluteSpeech, ElevenLabs

Overview

  • Purpose: Benchmark and develop Russian-language anti-spoofing and audio deepfake detection systems, with a focus on robustness to realistic channel and post-processing distortions.
  • Content: Bona fide speech from multiple open Russian speech corpora and synthetic speech generated by 37 Russian-capable TTS and voice-cloning systems.
  • Structure:
    • Audio: .wav files
    • Metadata: JSON with the fields sample_idlabelgroupsubsetaugmentationfilenameaudio_relpathsource_audiometadata_sourcesource_typemos_prednoi_preddis_predcol_predloud_predcerdurationspeakersmodeltranscribetrue_linestranscriptionground_truth, and ops.
Field Description
sample_id Sample ID
label real or fake
group Sample group - raw or augmented
subset source subset name, e.g. OpenSTTGOLOS, or ElevenLabs
augmentation Applied augmentation
filename Audio filename
audio_relpath Relative path to audio
source_audio Original audio for augmented sample
metadata_source Metadata source
source_type Source type - tts, real_speech or augmented_audio
mos_pred Predicted MOS
noi_pred Predicted noisiness
dis_pred Predicted discontinuity
col_pred Predicted coloration
loud_pred Predicted loudness
cer Character error rate
duration Duration in seconds
speakers Speaker info
model specific checkpoint or voice used for generation, e.g. ESpeech-TTS-1_RL-V1xtts-ru-ipa, or ru-RU-DmitryNeural
transcribe Automatic transcription
true_lines Source text
transcription Automatic transcription
ground_truth Reference text
ops Processing operations

Statistics

  • Number of TTS systems: 37
  • Total spoof hours: 691.68
  • Total bona-fide hours: 234.07

Table 4. Antispoofing models on clean data

Model Acc Pr Rec F1 RAUC EER t-DCF
AASIST3 0.769±0.0006 0.683±0.001 0.769±0.0006 0.724±0.001 0.841±0.0006 0.231±0.0006 0.702±0.002
Arena-1B 0.812±0.001 0.736±0.001 0.812±0.001 0.772±0.001 0.887±0.0005 0.188±0.001 0.385±0.001
Arena-500M 0.801±0.001 0.722±0.001 0.801±0.001 0.760±0.001 0.864±0.0005 0.199±0.001 0.655±0.002
Nes2Net 0.689±0.0007 0.589±0.001 0.689±0.0007 0.634±0.0008 0.779±0.0007 0.311±0.0007 0.696±0.001
Res2TCNGaurd 0.627±0.001 0.520±0.001 0.627±0.001 0.569±0.001 0.691±0.001 0.373±0.001 0.918±0.001
ResCapsGuard 0.677±0.001 0.575±0.001 0.677±0.001 0.622±0.001 0.718±0.001 0.323±0.001 0.896±0.001
SLS with XLS-R 0.779±0.001 0.700±0.001 0.779±0.001 0.737±0.001 0.859±0.001 0.221±0.001 0.650±0.001
Wav2Vec 2.0 0.772±0.0006 0.687±0.001 0.772±0.0006 0.727±0.001 0.850±0.0006 0.228±0.0006 0.558±0.002
TCM-ADD 0.857±0.001 0.797±0.001 0.859±0.001 0.827±0.001 0.914±0.0004 0.143±0.001 0.424±0.001
Spectra-0 0.962 0.942 0.962 0.952 0.985 0.038 0.124

Download

Using Datasets

from datasets import load_dataset

ds = load_dataset("MTUCI/RuASD")
print(ds)

Using Datasets with streaming mode

from datasets import load_dataset

ds = load_dataset("MTUCI/RuASD", streaming=True)
small_ds = ds.take(1000)

print(small_ds)

Contact

Citation

@unpublished{ruasd2026,
  author = {},
  title = {},
  year = {}
}

TTS and VC models

Model Link
Espeech Podcaster https://hf.co/ESpeech/ESpeech-TTS-1_podcaster
Espeech RL-V1 https://hf.co/ESpeech/ESpeech-TTS-1_RL-V1
Espeech RL-V2 https://hf.co/ESpeech/ESpeech-TTS-1_RL-V1
Espeech SFT-95k https://hf.co/ESpeech/ESpeech-TTS-1_SFT-95K
Espeech SFT-256k https://hf.co/ESpeech/ESpeech-TTS-1_SFT-256K
F5-TTS checkpoint https://hf.co/Misha24-10/F5-TTS_RUSSIAN
F5-TTS checkpoint https://hf.co/hotstone228/F5-TTS-Russian
VITS checkpoint https://hf.co/joefox/tts_vits_ru_hf
PiperTTS https://github.com/rhasspy/piper
TeraTTS-natasha https://hf.co/TeraTTS/natasha-g2p-vits
TeraTTS-girl_nice https://hf.co/TeraTTS/girl_nice-g2p-vits
TeraTTS-glados https://hf.co/TeraTTS/glados-g2p-vits
TeraTTS-glados2 https://hf.co/TeraTTS/glados2-g2p-vits
MMS https://hf.co/facebook/mms-tts-rus
VITS checkpoint https://hf.co/utrobinmv/tts_ru_free_hf_vits_low_multispeaker
VITS checkpoint https://hf.co/utrobinmv/tts_ru_free_hf_vits_high_multispeaker
VITS2 checkpoint https://hf.co/frappuccino/vits2_ru_natasha
GPT-SoVITS checkpoint https://hf.co/alphacep/vosk-tts-ru-gpt-sovits
CoquiTTS https://hf.co/coqui/XTTS-v2
XTTS checkpoint https://hf.co/NeuroDonu/RU-XTTS-DonuModel
XTTS checkpoint https://hf.co/omogr/xtts-ru-ipa
Fastpitch IPA https://hf.co/bene-ges/tts_ru_ipa_fastpitch_ruslan
Fastpitch BERT g2p https://hf.co/bene-ges/ru_g2p_ipa_bert_large
RussianFastPitch https://github.com/safonovanastya/RussianFastPitch
Bark https://hf.co/suno/bark-small
GradTTS https://github.com/huawei-noah/Speech-Backbones/tree/main/Grad-TTS
FishTTS https://hf.co/fishaudio/fish-speech-1.5
Pyttsx3 https://github.com/nateshmbhat/pyttsx3
RHVoice https://github.com/RHVoice/RHVoice
Silero https://github.com/snakers4/silero-models
Fairseq Transformer https://hf.co/facebook/tts_transformer-ru-cv7_css10
SpeechT5 https://hf.co/voxxer/speecht5_finetuned_commonvoice_ru_translit
Vosk-TTS https://github.com/alphacep/vosk-tts
EdgeTTS https://github.com/rany2/edge-tts
VK Cloud https://cloud.vk.com/
SaluteSpeech https://developers.sber.ru/portal/products/smartspeech
ElevenLabs https://elevenlabs.io/