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PARROT: An Open Multilingual Radiology Reports Dataset
by
Radhia Ait Chalal
, Saba, Luca
, Cuocolo, Renato
, Herinirina, Nicolas
, Lefevre, Alexandre
, Bastien Le Guellec
, Gatti, Marco
, Natale, Antonio
, Tugba Akinci D Antonoli
, Makowski, Marcus
, Ponsiglione, Andrea
, Divjak, Eugen
, Triantafyllou, Matthaios
, Ojeda, Adriana
, Poreba, Malgorzata
, Andersson, Henrik
, Thibault Agripnidis
, Kitamura, Felipe
, Stanzione, Arnaldo
, Vernuccio, Federica
, Ziegelmayer, Sebastian
, Chavihot, Christelle
, Piccione, Federica
, Meddeb, Aymen
, Yanchapaxi, Liz Toapanta
, Fulek, Michal
, Zhang, Shuhang
, Ferrarotti, Carlos
, Macek, Piotr
, Vassalou, Evangelia
, Hamroun, Aghiles
, Holay, Quentin
, Fanni, Salvatore Claudio
, Park, Yae Won
, Cau, Riccardo
, Gachowska, Martyna
, Adambounou, Kokou
, Wlodarczak, Adrian
, Rosa Alba Pugliesi
, Tsaoulia, Ekaterini
, Prucker, Philipp
, Lindholz, Maximilian
, Krupka, Dominik
, Rotkegel, Jan
, Fossataro, Claudia
, Ahn, Sung Soo
, Kompanowski, Rafal
, Wysocki, Andrzej
, Cavallo, Armando Ugo
, Wlodarczak, Szymon
, Kuchcinski, Gregory
, Blandino, Antonino Andrea
, Klontzas, Michail E
, Kompanowska, Anna
, Wang, Weilang
, Armel Elogne
, Poreba, Rafal
, Urban, Szymon
, Gac, Pawel
, Feno, Has
in
Computed tomography
/ Datasets
/ Differentiation
/ English language
/ Health care
/ Medical imaging
/ Medical personnel
/ Multilingualism
/ Natural language processing
/ Pelvis
/ Radiology
/ Translations
2025
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PARROT: An Open Multilingual Radiology Reports Dataset
by
Radhia Ait Chalal
, Saba, Luca
, Cuocolo, Renato
, Herinirina, Nicolas
, Lefevre, Alexandre
, Bastien Le Guellec
, Gatti, Marco
, Natale, Antonio
, Tugba Akinci D Antonoli
, Makowski, Marcus
, Ponsiglione, Andrea
, Divjak, Eugen
, Triantafyllou, Matthaios
, Ojeda, Adriana
, Poreba, Malgorzata
, Andersson, Henrik
, Thibault Agripnidis
, Kitamura, Felipe
, Stanzione, Arnaldo
, Vernuccio, Federica
, Ziegelmayer, Sebastian
, Chavihot, Christelle
, Piccione, Federica
, Meddeb, Aymen
, Yanchapaxi, Liz Toapanta
, Fulek, Michal
, Zhang, Shuhang
, Ferrarotti, Carlos
, Macek, Piotr
, Vassalou, Evangelia
, Hamroun, Aghiles
, Holay, Quentin
, Fanni, Salvatore Claudio
, Park, Yae Won
, Cau, Riccardo
, Gachowska, Martyna
, Adambounou, Kokou
, Wlodarczak, Adrian
, Rosa Alba Pugliesi
, Tsaoulia, Ekaterini
, Prucker, Philipp
, Lindholz, Maximilian
, Krupka, Dominik
, Rotkegel, Jan
, Fossataro, Claudia
, Ahn, Sung Soo
, Kompanowski, Rafal
, Wysocki, Andrzej
, Cavallo, Armando Ugo
, Wlodarczak, Szymon
, Kuchcinski, Gregory
, Blandino, Antonino Andrea
, Klontzas, Michail E
, Kompanowska, Anna
, Wang, Weilang
, Armel Elogne
, Poreba, Rafal
, Urban, Szymon
, Gac, Pawel
, Feno, Has
in
Computed tomography
/ Datasets
/ Differentiation
/ English language
/ Health care
/ Medical imaging
/ Medical personnel
/ Multilingualism
/ Natural language processing
/ Pelvis
/ Radiology
/ Translations
2025
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PARROT: An Open Multilingual Radiology Reports Dataset
by
Radhia Ait Chalal
, Saba, Luca
, Cuocolo, Renato
, Herinirina, Nicolas
, Lefevre, Alexandre
, Bastien Le Guellec
, Gatti, Marco
, Natale, Antonio
, Tugba Akinci D Antonoli
, Makowski, Marcus
, Ponsiglione, Andrea
, Divjak, Eugen
, Triantafyllou, Matthaios
, Ojeda, Adriana
, Poreba, Malgorzata
, Andersson, Henrik
, Thibault Agripnidis
, Kitamura, Felipe
, Stanzione, Arnaldo
, Vernuccio, Federica
, Ziegelmayer, Sebastian
, Chavihot, Christelle
, Piccione, Federica
, Meddeb, Aymen
, Yanchapaxi, Liz Toapanta
, Fulek, Michal
, Zhang, Shuhang
, Ferrarotti, Carlos
, Macek, Piotr
, Vassalou, Evangelia
, Hamroun, Aghiles
, Holay, Quentin
, Fanni, Salvatore Claudio
, Park, Yae Won
, Cau, Riccardo
, Gachowska, Martyna
, Adambounou, Kokou
, Wlodarczak, Adrian
, Rosa Alba Pugliesi
, Tsaoulia, Ekaterini
, Prucker, Philipp
, Lindholz, Maximilian
, Krupka, Dominik
, Rotkegel, Jan
, Fossataro, Claudia
, Ahn, Sung Soo
, Kompanowski, Rafal
, Wysocki, Andrzej
, Cavallo, Armando Ugo
, Wlodarczak, Szymon
, Kuchcinski, Gregory
, Blandino, Antonino Andrea
, Klontzas, Michail E
, Kompanowska, Anna
, Wang, Weilang
, Armel Elogne
, Poreba, Rafal
, Urban, Szymon
, Gac, Pawel
, Feno, Has
in
Computed tomography
/ Datasets
/ Differentiation
/ English language
/ Health care
/ Medical imaging
/ Medical personnel
/ Multilingualism
/ Natural language processing
/ Pelvis
/ Radiology
/ Translations
2025
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Paper
PARROT: An Open Multilingual Radiology Reports Dataset
2025
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Overview
Rationale and Objectives: To develop and validate PARROT (Polyglottal Annotated Radiology Reports for Open Testing), a large, multicentric, open-access dataset of fictional radiology reports spanning multiple languages for testing natural language processing applications in radiology. Materials and Methods: From May to September 2024, radiologists were invited to contribute fictional radiology reports following their standard reporting practices. Contributors provided at least 20 reports with associated metadata including anatomical region, imaging modality, clinical context, and for non-English reports, English translations. All reports were assigned ICD-10 codes. A human vs. AI report differentiation study was conducted with 154 participants (radiologists, healthcare professionals, and non-healthcare professionals) assessing whether reports were human-authored or AI-generated. Results: The dataset comprises 2,658 radiology reports from 76 authors across 21 countries and 13 languages. Reports cover multiple imaging modalities (CT: 36.1%, MRI: 22.8%, radiography: 19.0%, ultrasound: 16.8%) and anatomical regions, with chest (19.9%), abdomen (18.6%), head (17.3%), and pelvis (14.1%) being most prevalent. In the differentiation study, participants achieved 53.9% accuracy (95% CI: 50.7%-57.1%) in distinguishing between human and AI-generated reports, with radiologists performing significantly better (56.9%, 95% CI: 53.3%-60.6%, p<0.05) than other groups. Conclusion: PARROT represents the largest open multilingual radiology report dataset, enabling development and validation of natural language processing applications across linguistic, geographic, and clinical boundaries without privacy constraints.
Publisher
Cornell University Library, arXiv.org
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