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This article details the process of creating the Nottinghamer Korpus deutscher YouTube-Sprache ('The Nottingham German YouTube Language Corpus' - or NottDeuYTSch corpus) and outlines potential research opportunities. The corpus was compiled to analyse the online language produced by young German-speakers and offers significant opportunity for in-depth research across several linguistic fields including lexis, morphology, syntax, orthography, and conversational and discursive analysis. The NottDeuYTSch corpus contains over 33 million words taken from approximately 3 million YouTube comments from videos published between 2008 to 2018 targeted at a young, German-speaking demographic and represent an authentic language snapshot of young German speakers. The corpus was proportionally sampled based on video category and year from a database of 112 popular German-speaking YouTube channels in the DACH region for optimal representativeness and balance and contains a considerable amount of associated metadata for each comment that enable further longitudinal cross-sectional analyses. The NottDeuYTSch corpus is available for analysis as part of the German Reference Corpus (DeReKo).
Die erfolgreiche Wiederverwendung gesprochener Korpora muss fachspezifischen Evaluationskritierien genügen und erfordert daher eine flexible Korpusarchitektur, die durch multirepräsentationale (Verfügbarkeit eines akustischen Signals und einer Transliteration) und multisituationale Daten (Variabilität von Situationen bzw. Aufgaben) gekennzeichnet ist. Diese Kriterien werden in einer Fallstudie zur /eː/-Diphthongisierung polnischer Deutschlerner/-innen angewendet und diskutiert. Die Fallstudie repliziert die Ergebnisse der /eː/-Diphthongisierung bei Bildbenennungen von Nimz (2016). Vor der Wiederverwendung werden weitere fachspezifische Evaluationskriterien überprüft, wie Multisituationalität, Aufnahmequalitäten, Erweiterbarkeit, vorhandene Metadaten und vorhandene Dokumentation. Nach der Replikationsstudie werden die Herausforderungen für eine Umsetzung der Wiederverwendung bezüglich Datenmanagement, Workflows und Data Literacy in Forschungs- und Lehrkontexten diskutiert.
The NottDeuYTSch corpus contains over 33 million words taken from approximately 3 million YouTube comments from videos published between 2008 to 2018 targeted at a young, German-speaking demographic and represents an authentic language snapshot of young German speakers. The corpus was proportionally sampled based on video category and year from a database of 112 popular German-speaking YouTube channels in the DACH region for optimal representativeness and balance and contains a considerable amount of associated metadata for each comment that enable further longitudinal cross-sectional analyses.
In this paper we present an approach to faceted search in large language resource repositories. This kind of search which enables users to browse through the repository by choosing their personal sequence of facets heavily relies on the availability of descriptive metadata for the objects in the repository. This approach therefore informs the collection of a minimal set of metatdata for language resources. The work described in this paper has been funded by the EC within the ESFRI infrastructure project CLARIN.
We present an XML-based metadata standard for the documentation of speech and multimedia corpora that was developed at the Institute for German Language (IDS) in Mannheim, Germany. The IDS is one of the major institutions providing German speech and language corpora to researchers. These corpora stem from many different sources and were previously documented in a rather heterogeneous fashion using a variety of data models and formats. In order to unify the documentation for existing and future corpora, the IDS- internal Archive for Spoken German collaborated with several projects and developed a set of standardised XML metadata schemas. These XML schemas build on existing internal and external documentation schemas (such as IMDI) and take into account the workflow of speech corpus production. In order to minimise redundancy, separate schemas were designed for projects, speakers, recording sessions, and entire corpora. The resulting schemas are tested in ongoing speech and multi-media projects at the IDS and are regularly revised. They are accompanied by element definitions, guidelines, and examples. In addition, a mapping to IMDI will be provided.
The metadata management system for speech corpora “memasysco” has been developed at the Institut für Deutsche Sprache (IDS) and is applied for the first time to document the speech corpus “German Today”. memasysco is based on a data model for the documentation of speech corpora and contains two generic XML schemas that drive data capture, XML native database storage, dynamic publishing, and information retrieval. The development of memasysco’s information architecture was mainly based on the ISLE MetaData Initiative (IMDI) guidelines for publishing metadata of linguistic resources. However, since we also have to support the corpus management process in research projects at the IDS, we need a finer atomic granularity for some documentation components as well as more restrictive categories to ensure data integrity. The XML metadata of different speech corpus projects are centrally validated and natively stored in an Oracle XML database. The extension of the system to the management of annotations of audio and video signals (e.g. orthographic and phonetic transcriptions) is planned for the near future.
Eine reichhaltige Auszeichnung mit Metadaten ist für alle Arten von Korpora für die linguistische Forschung wünschenswert. Für große Korpora (insbesondere Webkorpora) müssen Metadaten automatisch erzeugt werden, wobei die Genauigkeit der Auszeichnung besonders kritisch ist. Wir stellen einen Ansatz zur automatischen Klassifikation nach Themengebiet (Topikdomäne) vor, die auf dem lexikalischen Material in Texten basiert. Dazu überführen wir weniger gut interpretierbare Ergebnisse aus einer so genannten Topikmodellierung mittels eines überwachten Lernverfahrens in eine besser interpretierbare Kategorisierung nach 13 Themengebieten. Gegenüber (automatisch erzeugten) Klassifikationen nach Genre, Textsorte oder Register, die zumeist auf Verteilungen grammatischer Merkmale basieren, erscheint eine solche thematische Klassifikation geeigneter, um zusätzliche Kontrollvariablen für grammatische Variationsstudien bereitzustellen. Wir evaluieren das Verfahren auf Webtexten aus DECOW14 und Zeitungstexten aus DeReKo, für die jeweils getrennte Goldstandard-Datensätze manuell annotiert wurden.
Ph@ttSessionz and Deutsch heute are two large German speech databases. They were created for different purposes: Ph@ttSessionz to test Internet-based recordings and to adapt speech recognizers to the voices of adolescent speakers, Deutsch heute to document regional variation of German. The databases differ in their recording technique, the selection of recording locations and speakers, elicitation mode, and data processing.
In this paper, we outline how the recordings were performed, how the data was processed and annotated, and how the two databases were imported into a single relational database system. We present acoustical measurements on the digit items of both databases. Our results confirm that the elicitation technique affects the speech produced, that f0 is quite comparable despite different recording procedures, and that large speech technology databases with suitable metadata may well be used for the analysis of regional variation of speech.