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Showing 1–9 of 9 results for author: Jäschke, R

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  1. arXiv:2608.04543  [pdf, ps, other

    cs.SD cs.IR

    Towards Robust Version Identification in the Wild: A Dataset, Benchmark, and Fine-Tuning Study

    Authors: Simon Hachmeier, R. Oguz Araz, Dmitry Bogdanov, Robert Jäschke, Xavier Serra

    Abstract: Existing datasets for musical version identification (VI) are primarily derived from curated metadata sources such as SecondHandSongs and Discogs, and are therefore dominated by professionally recorded tracks. This leads to a domain mismatch with real-world scenarios, where amateur and user-generated content is prevalent. To address this limitation, we introduce DiVers, a large-scale VI dataset co… ▽ More

    Submitted 5 August, 2026; originally announced August 2026.

    Comments: Accepted to the Proceedings of the 27th International Society for Music Information Retrieval Conference (ISMIR 2026)

  2. arXiv:2501.01333  [pdf, other

    cs.MM cs.IR cs.SI

    On the Robustness of Cover Version Identification Models: A Study Using Cover Versions from YouTube

    Authors: Simon Hachmeier, Robert Jäschke

    Abstract: Recent advances in cover song identification have shown great success. However, models are usually tested on a fixed set of datasets which are relying on the online cover song database SecondHandSongs. It is unclear how well models perform on cover songs on online video platforms, which might exhibit alterations that are not expected. In this paper, we annotate a subset of songs from YouTube sampl… ▽ More

    Submitted 2 January, 2025; originally announced January 2025.

    Comments: accepted for presentation at iConference 2025

  3. arXiv:2412.11851  [pdf, other

    cs.CL cs.MM

    A Benchmark and Robustness Study of In-Context-Learning with Large Language Models in Music Entity Detection

    Authors: Simon Hachmeier, Robert Jäschke

    Abstract: Detecting music entities such as song titles or artist names is a useful application to help use cases like processing music search queries or analyzing music consumption on the web. Recent approaches incorporate smaller language models (SLMs) like BERT and achieve high results. However, further research indicates a high influence of entity exposure during pre-training on the performance of the mo… ▽ More

    Submitted 16 December, 2024; originally announced December 2024.

  4. arXiv:2412.11818  [pdf, other

    cs.MM cs.IR

    Leveraging User-Generated Metadata of Online Videos for Cover Song Identification

    Authors: Simon Hachmeier, Robert Jäschke

    Abstract: YouTube is a rich source of cover songs. Since the platform itself is organized in terms of videos rather than songs, the retrieval of covers is not trivial. The field of cover song identification addresses this problem and provides approaches that usually rely on audio content. However, including the user-generated video metadata available on YouTube promises improved identification results. In t… ▽ More

    Submitted 16 December, 2024; originally announced December 2024.

    Comments: accepted for presentation at NLP for Music and Audio (NLP4MusA) 2024

  5. A Repository for Formal Contexts

    Authors: Tom Hanika, Robert Jäschke

    Abstract: Data is always at the center of the theoretical development and investigation of the applicability of formal concept analysis. It is therefore not surprising that a large number of data sets are repeatedly used in scholarly articles and software tools, acting as de facto standard data sets. However, the distribution of the data sets poses a problem for the sustainable development of the research f… ▽ More

    Submitted 5 April, 2024; originally announced April 2024.

    Comments: 16 pages

  6. "The Michael Jordan of Greatness": Extracting Vossian Antonomasia from Two Decades of the New York Times, 1987-2007

    Authors: Frank Fischer, Robert Jäschke

    Abstract: Vossian Antonomasia is a prolific stylistic device, in use since antiquity. It can compress the introduction or description of a person or another named entity into a terse, poignant formulation and can best be explained by an example: When Norwegian world champion Magnus Carlsen is described as "the Mozart of chess", it is Vossian Antonomasia we are dealing with. The pattern is simple: A source (… ▽ More

    Submitted 18 February, 2019; originally announced February 2019.

    Journal ref: Digital Scholarship in the Humanities (January 2019)

  7. arXiv:1701.03939  [pdf, other

    cs.IR

    Semantic Annotation for Microblog Topics Using Wikipedia Temporal Information

    Authors: Tuan Tran, Nam Khanh Tran, Teka Hadgu Asmelash, Robert Jäschke

    Abstract: Trending topics in microblogs such as Twitter are valuable resources to understand social aspects of real-world events. To enable deep analyses of such trends, semantic annotation is an effective approach; yet the problem of annotating microblog trending topics is largely unexplored by the research community. In this work, we tackle the problem of mapping trending Twitter topics to entities from W… ▽ More

    Submitted 14 January, 2017; originally announced January 2017.

    Comments: Published via ACL to EMNLP 2025

    ACM Class: I.2.7; H.3.1

  8. arXiv:1701.00991  [pdf, other

    cs.IR cs.CL

    World Literature According to Wikipedia: Introduction to a DBpedia-Based Framework

    Authors: Christoph Hube, Frank Fischer, Robert Jäschke, Gerhard Lauer, Mads Rosendahl Thomsen

    Abstract: Among the manifold takes on world literature, it is our goal to contribute to the discussion from a digital point of view by analyzing the representation of world literature in Wikipedia with its millions of articles in hundreds of languages. As a preliminary, we introduce and compare three different approaches to identify writers on Wikipedia using data from DBpedia, a community project with the… ▽ More

    Submitted 4 January, 2017; originally announced January 2017.

    Comments: 33 pages, 6 figures, 6 tables

  9. arXiv:1310.1498  [pdf, ps, other

    cs.IR

    Deeper Into the Folksonomy Graph: FolkRank Adaptations and Extensions for Improved Tag Recommendations

    Authors: Nikolas Landia, Stephan Doerfel, Robert Jäschke, Sarabjot Singh Anand, Andreas Hotho, Nathan Griffiths

    Abstract: The information contained in social tagging systems is often modelled as a graph of connections between users, items and tags. Recommendation algorithms such as FolkRank, have the potential to leverage complex relationships in the data, corresponding to multiple hops in the graph. We present an in-depth analysis and evaluation of graph models for social tagging data and propose novel adaptations a… ▽ More

    Submitted 5 October, 2013; originally announced October 2013.

    ACM Class: H.3.3; H.3.1