Certainty Factor Untuk Sistem Pakar Diagnosis Urtikaria Pada Wanita Dewasa. Urtikaria adalah reaksi pada kulit akibat bermacam-macam sebab, sinonim penyakit ini adalah biduran, kaligata, hives, nettle rash. Ditandai oleh edema (bengkak) setempat yang timbul secara mendadak dan menghilang perlahan-lahan berwarna kemerahan dan pucat, meninggi di permukaan kulit, sekitarnya dapat dikelilingi halo (bulatan). Angka kejadian urtikaria cukuplah tinggi sebanyak 15%-20% penduduk pernah mengalami urtikaria dalam kehidupannya dan 25% diantaranya mengalami urtikaria kronik, penyakit ini lebih banyak dijumpai pada perempuan. Pada penerapan ini dibuat sistem pakar menggunakan Certainty Factor. Dengan aplikasi sistem pakar diagnosis urtikaria pada wanita dewasa diharapkan dapat membantu memasyarakatkan pengetahuan dan pengalaman pakar-pakar yang ahli dibidangnya, mengetahui tingkatan penyakit berdasarkan gejala-gejala yang dialami dari penyakit urtikaria, tidak memerlukan biaya, menghemat waktu dalam pengambilan keputusan dan integrasi aplikasi sistem pakar lebih efektif mencakup aplikasi yang lebih luas.
Funds transfer is a series of orders from the sender whose purpose is to move money from the sender to the recipient. The high interbank transaction fees imposed on each bank makes people use an interbank money transfer application, interbank money transfer transactions such as the Flip application are much in demand by the public because there are no administrative fees imposed on users. Opinion of the users of the application is processed using a text mining classification algorithm, namely the Naïve Bayes Algorithm and k-NN, the two algorithms are compared to produce which algorithm has high accuracy in processing the opinion of the flip money transfer application. Based on this matter, researchers conducted a sentiment analysis of the Flip Application, K-Nearest Neighbor (k-NN). After conducting research on sentiment analysis of Flip Applications, the Naïve Bayes classification algorithm has an accuracy of 91.25% and an ROC curve with an AUC value of 0.500. Whereas K-Nearest Neighbor has an accuracy of 85.25% and an ROC curve with an AUC value of 0.937. The Naïve Bayes algorithm can be said to be ”good classification” and the public can make the decision to use the Flip Application.
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