Persona: Manjarrés Riesco, Ángeles
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0000-0001-5441-3642
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Manjarrés Riesco
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Ángeles
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Publicación Using LSTM to Identify Help Needs in Primary School Scratch Students(MDPI, 2023-11-30) Imbernón Cuadrado, Luis Eduardo; Manjarrés Riesco, Ángeles; Paz López, Félix de lafirst-in-class distance calculation method for block-based programming languages has been used in a Long Short-Term Memory (LSTM) model, with the aim of identifying when a primary school student needs help while he/she carries out Scratch exercises. This model has been trained twice: the first time taking into account the gender of the students, and the second time excluding it. The accuracy of the model that includes gender is 99.2%, while that of the model that excludes gender is 91.1%. We conclude that taking into account gender in training this model can lead to overfitting, due to the under-representation of girls among the students participating in the experiences, making the model less able to identify when a student needs help. We also conclude that avoiding gender bias is a major challenge in research on educational systems for learning computational thinking skills, and that it necessarily involves effective and motivating gender-sensitive instructional design.