Computational model, based on machine learning, to predict the level of success in legal cases
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Fecha
2020-11-30Autor(es)
Auccahuasi, Wilver
Peláez, Brayan
Flores, Pedro
Rurbano, Kitty
Bernardo, Grisi
Bernardo, Madelaine
Sernaque, Fernando
Benites, Nicanor
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ABSTRACT
With the development of information and communication technologies, new
opportunities and applications of many technologies are emerging that before could not be
thought to be used, in this sense artificial intelligence is the technology that has gained
greater strength, accompanied by the development of hardware that makes its execution
possible and of software tools that make its implementation possible. The neural network is
one of the most used techniques in the field of artificial intelligence. This work is based on analyzing possible cases of labor judicial problems, when workers who have suffered an
abuse by employers are faced with. The success of the case according to the model presented,
is based on being able to have the majority of documentation that evidences both the
employment relationship, responsibilities of the employees, documents that support the
payment of remuneration, documents that evidence any fault committed by the employee
between others, a computational model was developed with a graphical user interface to
make its application more practical. The model presents an effectiveness level of 93%,
analyzed with 400 cases between positive and negative. For the training process, 100 cases
corresponding to positive cases and 100 cases corresponding to negative cases were used.
The model is practical in its use and can be scalable to different areas in the legal field.
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Cita bibliográfica
Auccahuasi, W. ...[et al]. (2020). Computational model, based on machine learning, to predict the level of success in legal cases. PalArch’s Journal of Archaeology of Egypt / Egyptology, 17(6), 1775-1781. https://archives.palarch.nl/index.php/jae/article/view/1061
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