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<dim:field authority="0000-0003-3233-4366" element="contributor" qualifier="advisor" confidence="ACCEPTED" language="es-ES" mdschema="dc">Bellón Núñez-Mera, Carlos</dim:field>
<dim:field authority="c39ac105-d879-4f87-953a-37b8e0104c14" element="contributor" qualifier="author" confidence="UNCERTAIN" language="es-ES" mdschema="dc">Oriol Guerra, Nicolás</dim:field>
<dim:field element="contributor" qualifier="other" language="es_ES" mdschema="dc">Universidad Pontificia Comillas, Facultad de Ciencias Económicas y Empresariales</dim:field>
<dim:field element="date" qualifier="accessioned" language="" mdschema="dc">2021-10-01T11:14:28Z</dim:field>
<dim:field element="date" qualifier="available" language="" mdschema="dc">2021-10-01T11:14:28Z</dim:field>
<dim:field element="date" qualifier="issued" language="es_ES" mdschema="dc">2022</dim:field>
<dim:field element="identifier" qualifier="uri" language="" mdschema="dc">http://hdl.handle.net/11531/62200</dim:field>
<dim:field element="description" language="es_ES" mdschema="dc">Grado en Ingeniería en Tecnologías de Telecomunicación y Grado en Análisis de Negocios/Business Analytics</dim:field>
<dim:field element="description" qualifier="abstract" language="es-ES" mdschema="dc">El objetivo del trabajo es doble. En primer lugar, se muestra una manera de clasificar y organizar todos los datos financieros presentados por PYMEs españolas entre 2008 y 2020. Con esta herramienta se puede organizar balances y cuentas de resultados presentados por empresas en simples tablas anuales para posibles futuros trabajos y estudios.&#13;
El segundo objetivo, es usar la información limpia y clasificada de las PYMEs para desarrollar un modelo de predicción de default. Se toma como base el modelo de Altman y se trata de mejorar sus predicciones con la aplicación de varios modelos adicionales (regresión logística, support vector machines, árboles de decisión, redes neuronales y autoencoders). El resultado final es un modelo de red neuronal que mejora ligeramente los resultados de Altman. Esto sirve como ejemplo de un posible estudio que puede nacer a partir de los datos de PYMEs clasificados mediante el código de Python proporcionado.</dim:field>
<dim:field element="description" qualifier="abstract" language="en-GB" mdschema="dc">This project has two main goals. Firstly, we show a classification method that organizes and cleans financial data presented by Spanish SMEs between 2008 and 2020. This tool provides a way to organize balance sheets and income statements in clear, and easily-interpreted yearly tables. These tables can be utilised for future studies.&#13;
&#13;
The second objective is to use these clean tables to develop an SME default prediction model. We use Altman's model as a baseline to beat and as a comparison benchmark. Several models are applied to the data to try to improve Altman's predictions (logistic regression, support vector machines, decision trees, neural networks, and autoencoders). The final result is a neural network that slightly improves Altman's results. This serves as an example of a possible study that can develop from the SME data classified and cleaned by the provided Python code.</dim:field>
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<dim:field element="rights" language="es_ES" mdschema="dc">Attribution-NonCommercial-NoDerivs 3.0 United States</dim:field>
<dim:field element="rights" qualifier="uri" language="es_ES" mdschema="dc">http://creativecommons.org/licenses/by-nc-nd/3.0/us/</dim:field>
<dim:field element="subject" language="es_ES" mdschema="dc">33 Ciencias tecnológicas</dim:field>
<dim:field element="subject" language="es_ES" mdschema="dc">3325 Tecnología de las telecomunicaciones</dim:field>
<dim:field element="subject" qualifier="other" language="es_ES" mdschema="dc">KBA</dim:field>
<dim:field element="title" language="es_ES" mdschema="dc">Development of a default prediction model for Spanish SMEs based on publicly available information</dim:field>
<dim:field element="type" language="es_ES" mdschema="dc">info:eu-repo/semantics/bachelorThesis</dim:field>
<dim:field element="rights" qualifier="accessRights" language="es_ES" mdschema="dc">info:eu-repo/semantics/closedAccess</dim:field>
<dim:field element="keywords" language="es-ES" mdschema="dc">PYME, Bancarrota, Información pública, Predicción default, Altman, Red neuronal, Python</dim:field>
<dim:field element="keywords" language="en-GB" mdschema="dc">SME, Default prediction, Public information, Neural network, Altman, Python</dim:field>
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