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Título : | Γ-IRT : an item response theory model for evaluating regression algorithms |
Autor : | MORAES, João Victor Campos |
Palabras clave : | Inteligência artificial; Aprendizagem de máquina |
Fecha de publicación : | 9-mar-2021 |
Editorial : | Universidade Federal de Pernambuco |
Citación : | MORAES, João Victor Campos. Γ-IRT: an item response theory model for evaluating regression algorithms. 2021. Dissertação (Mestrado em Ciência da Computação) – Universidade Federal de Pernambuco, Recife, 2021. |
Resumen : | Item Response Theory (IRT) is used to measure latent abilities of human respondents based on their responses to items with different difficulty levels. Recently, IRT has been applied to algorithm evaluation in Artificial Inteligence (AI), by treating the algorithms as respondents and the AI tasks as items. The most common models in IRT only deal with dichotomous responses (i.e., a response has to be either correct or incorrect). Hence they are not adequate in application contexts where responses are recorded in a continuous scale. In this dissertation we propose the Γ-IRT model, particularly designed for dealing with positive unbounded responses, which we model using a Gamma distribution, parameterised according to respondent ability and item difficulty and discrimination parameters. The proposed parameterisation results in item characteristic curves with more flexible shapes compared to the traditional logistic curves adopted in IRT. We apply the proposed model to assess regression model abilities, where responses are the absolute errors in test instances. This novel application represents an alternative for evaluating regression performance and for identifying regions in a regression dataset that present different levels of difficulty and discrimination. |
URI : | https://repositorio.ufpe.br/handle/123456789/50976 |
Aparece en las colecciones: | Dissertações de Mestrado - Ciência da Computação |
Ficheros en este ítem:
Fichero | Descripción | Tamaño | Formato | |
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DISSERTAÇÃO João Victor Campos Moraes.pdf | 2,77 MB | Adobe PDF | ![]() Visualizar/Abrir |
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