TORRENTE, María, Pedro A SOUSA, Roberto HERNÁNDEZ, Mariola BLANCO, Virginia Calvo Ana COLLAZO, Gracinda R GUERREIRO, Beatriz NÚÑEZ, Joao PIMENTAO, Juan Cristóbal SÁNCHEZ, Manuel CAMPOS, Luca COSTABELLO, Vít NOVÁČEK, Ernestina MENASALVAS, María Esther VIDAL, Mariano PROVENCIO a Virginia CALVO. An Artificial Intelligence-Based Tool for Data Analysis and Prognosis in Cancer Patients: Results from the Clarify Study. CANCERS. SWITZERLAND: MDPI, 2022, roč. 14, č. 16, s. 1-10. ISSN 2072-6694. Dostupné z: https://dx.doi.org/10.3390/cancers14164041.
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Základní údaje
Originální název An Artificial Intelligence-Based Tool for Data Analysis and Prognosis in Cancer Patients: Results from the Clarify Study
Autoři TORRENTE, María, Pedro A SOUSA, Roberto HERNÁNDEZ, Mariola BLANCO, Virginia Calvo Ana COLLAZO, Gracinda R GUERREIRO, Beatriz NÚÑEZ, Joao PIMENTAO, Juan Cristóbal SÁNCHEZ, Manuel CAMPOS, Luca COSTABELLO, Vít NOVÁČEK (203 Česká republika, garant, domácí), Ernestina MENASALVAS, María Esther VIDAL, Mariano PROVENCIO a Virginia CALVO.
Vydání CANCERS, SWITZERLAND, MDPI, 2022, 2072-6694.
Další údaje
Originální jazyk angličtina
Typ výsledku Článek v odborném periodiku
Obor 10201 Computer sciences, information science, bioinformatics
Stát vydavatele Švýcarsko
Utajení není předmětem státního či obchodního tajemství
WWW original online article
Impakt faktor Impact factor: 5.200
Kód RIV RIV/00216224:14330/22:00127570
Organizační jednotka Fakulta informatiky
Doi http://dx.doi.org/10.3390/cancers14164041
UT WoS 000846265900001
Klíčová slova česky artificial intelligence; data integration; cancer patients; patient stratification; precision oncology; decision support system
Klíčová slova anglicky artificial intelligence; data integration; cancer patients; patient stratification; precision oncology; decision support system
Štítky Artificial Intelligence, knowledge graphs, machine learning, medical informatics
Příznaky Mezinárodní význam, Recenzováno
Změnil Změnil: RNDr. Pavel Šmerk, Ph.D., učo 3880. Změněno: 6. 4. 2023 13:36.
Anotace
Background: Artificial intelligence (AI) has contributed substantially in recent years to the resolution of different biomedical problems, including cancer. However, AI tools with significant and widespread impact in oncology remain scarce. The goal of this study is to present an AI-based solution tool for cancer patients data analysis that assists clinicians in identifying the clinical factors associated with poor prognosis, relapse and survival, and to develop a prognostic model that stratifies patients by risk. Materials and Methods: We used clinical data from 5275 patients diagnosed with non-small cell lung cancer, breast cancer, and non-Hodgkin lymphoma at Hospital Universitario Puerta de Hierro-Majadahonda. Accessible clinical parameters measured with a wearable device and quality of life questionnaires data were also collected. Results: Using an AI-tool, data from 5275 cancer patients were analyzed, integrating clinical data, questionnaires data, and data collected from wearable devices. Descriptive analyses were performed in order to explore the patients’ characteristics, survival probabilities were calculated, and a prognostic model identified low and high-risk profile patients. Conclusion: Overall, the reconstruction of the population’s risk profile for the cancer-specific predictive model was achieved and proved useful in clinical practice using artificial intelligence. It has potential application in clinical settings to improve risk stratification, early detection, and surveillance management of cancer patients.
VytisknoutZobrazeno: 23. 6. 2024 11:35