Update README.md with basic, high-level information
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README.md
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annotations_creators:
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- expert-generated
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language:
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license:
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- mit
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multilinguality:
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- monolingual
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dataset_info:
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---
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#
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## Table of Contents
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- [Table of Contents](#table-of-contents)
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### Dataset Summary
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### Supported Tasks and Leaderboards
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### Languages
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## Dataset Structure
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### Data Splits
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## Dataset Creation
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### Curation Rationale
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[More Information Needed]
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### Discussion of Biases
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### Other Known Limitations
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### Citation Information
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### Contributions
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annotations_creators:
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- expert-generated
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language:
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- en
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- de
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- es
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- fr
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- it
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license:
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- mit
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multilinguality:
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- monolingual
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dataset_info:
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- config_name: config
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features:
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- name: audio_id
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dtype: string
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- name: audio
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dtype:
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audio:
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sampling_rate: 16000
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- name: text
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dtype: string
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---
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# MOCKS dataset
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## Table of Contents
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- [Table of Contents](#table-of-contents)
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### Dataset Summary
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Multilingual Open Custom Keyword Spotting Testset (MOCKS) is a comprehensive audio testset for evaluation and benchmarking
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Open-Vocabulary Keyword Spotting (OV-KWS) models. It supports multiple OV-KWS problems:
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both text-based and audio-based keyword spotting, as well as offline and online (streaming) modes.
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It is based on the LibriSpeech and Mozilla Common Voice datasets and contains
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almost 50,000 keywords, with audio data available in English, French, German, Italian, and Spanish.
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The testset was generated using automatically generated alignments used for the extraction of parts of the recordings that were split into keywords and test samples.
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MOCKS contains both positive and negative examples selected based on phonetic transcriptions that are challenging and should allow for in-depth OV-KWS model evaluation.
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Please refer to our [paper]() for further details.
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[More Information Needed - add link to paper]
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### Supported Tasks and Leaderboards
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The MOCKS dataset can be used for Open-Vocabulary Keyword Spotting (OV-KWS) task. It supports two OV-KWS types:
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- Query-by-Text, where keyword is provided by text and needs to be detected on audio stream.
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- Query-by-Example, where keyword is provided with enrollment audio for detection on audio stream.
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It also allows for:
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- offline keyword detection, where test audio is trimed to contrain only keyword of interest.
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- online (streaming) keyword detection, where test audio have past and future context besides keyword of interest.
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### Languages
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The MOCKS incorporates 5 languages:
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- English - primary and largest test set,
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- German,
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- Spanish,
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- French,
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- Italian.
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## Dataset Structure
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### Data Splits
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The MOCKS testset is split by language, source dataset and OV-KWS type. Each split is divided into:
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- positive examples - test examples with true keyword, 5000-8000 keywords in each subset,
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- similar examples - test examples with similar phrases to keyword selected based on phonetic transcription distance,
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- different examples - test examples with completaly different prases.
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Each split also contains subset of whole data to allow faster evaluation.
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## Dataset Creation
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The MOCKS testset was created from LibriSpeech and Mozilla Common Voice (MCV) datasets that are publicly available. To create it:
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- a [MFA](https://mfa-models.readthedocs.io/en/latest/acoustic/index.html) with publicly available models was used to extract word-level alignments,
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- an internally-developed, rule-based grapheme-to-phoneme (G2P) algorithm was used to prepare phonetic transcriptions for each sample.
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The data is stored in a 16-bit, single-channel WAV format. 16kHz sampling rate is used for LibriSpeech based testset
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and 48kHz sampling rate for MCV based testset.
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The offline testset contains additional 0.1 second at the beginning and end of extracted audio sample to mitigate the cut-speech effect.
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The online version contrains additional 1 second or so at the beginning and end of extracted audio sample.
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### Curation Rationale
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[More Information Needed]
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### Discussion of Biases
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The MOCKS testset is speaker gender balanced.
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### Other Known Limitations
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### Citation Information
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```bibtex
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@inproceedings{pudo23_interspeech,
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author={Miko\l{}aj Pudo and Mateusz Wosik and Adam Cie\'slak and Justyna Krzywdziak and Bo\.{z}ena \L{}ukasiak and Artur Janicki},
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title={{MOCKS} 1.0: Multilingual Open Custom Keyword Spotting Testset},
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year={in press.},
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booktitle={Proc. Interspeech 2023},
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}
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```
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### Contributions
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