Previsão de efeitos adversos de medicamentos

Detalhes bibliográficos
Autor(a) principal: Jéssica Daniela Rocha Namora
Data de Publicação: 2017
Tipo de documento: Dissertação
Idioma: por
Título da fonte: Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)
Texto Completo: https://repositorio-aberto.up.pt/handle/10216/103003
Resumo: Nowadays there are lots of people consuming drugs daily, mainly elderly people. All of these drugs were subjected to a set of clinical trials to assess their efficacy, safety and determine associated adverse reactions. However, clinical trials are performed on an extremely small sample when compared to the target population.The adverse reactions associated with a drug may lead to the emergence of new diseases or, in extreme cases, may lead to the death of the patient. Health professionals take into account the adverse reactions publicly available when they want to prescribe a medicine. This led to the idea of a data mining project that intends to manage the information on the active principles of the drugs and the adverse reactions already known, in order to create a model capable of predicting adverse drug reactions.The first approach to the problem makes use of recommended systems, and verifies the similarities between drugs and adverse effects of already known drug-adverse pairs in order to predict adverse effects not yet known by the model.The second approach to the problem takes advantage of predictive algorithms using the molecular descriptors of the drug's active principle in order to find justifications for the appearance of a given adverse drug reaction.Thus, it may be possible to discover new adverse effects without resorting to clinical trials. The latter practice, in addition to putting the lives of the population at risk, is more costly and time-consuming than the proposed alternative.
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spelling Previsão de efeitos adversos de medicamentosEngenharia electrotécnica, electrónica e informáticaElectrical engineering, Electronic engineering, Information engineeringNowadays there are lots of people consuming drugs daily, mainly elderly people. All of these drugs were subjected to a set of clinical trials to assess their efficacy, safety and determine associated adverse reactions. However, clinical trials are performed on an extremely small sample when compared to the target population.The adverse reactions associated with a drug may lead to the emergence of new diseases or, in extreme cases, may lead to the death of the patient. Health professionals take into account the adverse reactions publicly available when they want to prescribe a medicine. This led to the idea of a data mining project that intends to manage the information on the active principles of the drugs and the adverse reactions already known, in order to create a model capable of predicting adverse drug reactions.The first approach to the problem makes use of recommended systems, and verifies the similarities between drugs and adverse effects of already known drug-adverse pairs in order to predict adverse effects not yet known by the model.The second approach to the problem takes advantage of predictive algorithms using the molecular descriptors of the drug's active principle in order to find justifications for the appearance of a given adverse drug reaction.Thus, it may be possible to discover new adverse effects without resorting to clinical trials. The latter practice, in addition to putting the lives of the population at risk, is more costly and time-consuming than the proposed alternative.2017-02-102017-02-10T00:00:00Zinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/masterThesisapplication/pdfhttps://repositorio-aberto.up.pt/handle/10216/103003TID:201798565porJéssica Daniela Rocha Namorainfo:eu-repo/semantics/openAccessreponame:Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos)instname:Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãoinstacron:RCAAP2023-11-29T14:24:06Zoai:repositorio-aberto.up.pt:10216/103003Portal AgregadorONGhttps://www.rcaap.pt/oai/openaireopendoar:71602024-03-20T00:00:28.202779Repositório Científico de Acesso Aberto de Portugal (Repositórios Cientìficos) - Agência para a Sociedade do Conhecimento (UMIC) - FCT - Sociedade da Informaçãofalse
dc.title.none.fl_str_mv Previsão de efeitos adversos de medicamentos
title Previsão de efeitos adversos de medicamentos
spellingShingle Previsão de efeitos adversos de medicamentos
Jéssica Daniela Rocha Namora
Engenharia electrotécnica, electrónica e informática
Electrical engineering, Electronic engineering, Information engineering
title_short Previsão de efeitos adversos de medicamentos
title_full Previsão de efeitos adversos de medicamentos
title_fullStr Previsão de efeitos adversos de medicamentos
title_full_unstemmed Previsão de efeitos adversos de medicamentos
title_sort Previsão de efeitos adversos de medicamentos
author Jéssica Daniela Rocha Namora
author_facet Jéssica Daniela Rocha Namora
author_role author
dc.contributor.author.fl_str_mv Jéssica Daniela Rocha Namora
dc.subject.por.fl_str_mv Engenharia electrotécnica, electrónica e informática
Electrical engineering, Electronic engineering, Information engineering
topic Engenharia electrotécnica, electrónica e informática
Electrical engineering, Electronic engineering, Information engineering
description Nowadays there are lots of people consuming drugs daily, mainly elderly people. All of these drugs were subjected to a set of clinical trials to assess their efficacy, safety and determine associated adverse reactions. However, clinical trials are performed on an extremely small sample when compared to the target population.The adverse reactions associated with a drug may lead to the emergence of new diseases or, in extreme cases, may lead to the death of the patient. Health professionals take into account the adverse reactions publicly available when they want to prescribe a medicine. This led to the idea of a data mining project that intends to manage the information on the active principles of the drugs and the adverse reactions already known, in order to create a model capable of predicting adverse drug reactions.The first approach to the problem makes use of recommended systems, and verifies the similarities between drugs and adverse effects of already known drug-adverse pairs in order to predict adverse effects not yet known by the model.The second approach to the problem takes advantage of predictive algorithms using the molecular descriptors of the drug's active principle in order to find justifications for the appearance of a given adverse drug reaction.Thus, it may be possible to discover new adverse effects without resorting to clinical trials. The latter practice, in addition to putting the lives of the population at risk, is more costly and time-consuming than the proposed alternative.
publishDate 2017
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