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  • 1
    Online Resource
    Online Resource
    Institute of Advanced Engineering and Science ; 2017
    In:  Indonesian Journal of Electrical Engineering and Computer Science Vol. 5, No. 1 ( 2017-01-01), p. 206-
    In: Indonesian Journal of Electrical Engineering and Computer Science, Institute of Advanced Engineering and Science, Vol. 5, No. 1 ( 2017-01-01), p. 206-
    Abstract: 〈 p class="Normal1" 〉 Expert system applications were in great demand in various circles since 1950, with a coverage area that was large. Expert System on the organization was aimed at adding value, increasing productivity as well as the area of managerial can make decisions quickly and accurately. Neither with organizations that did business quail, which was very promising, but needed to be alert for the presence of disease in quail healthy, as in the case in birds quail were highly vulnerable to various kinds of diseases caused by viruses or bacteria. the benefits of the expert system that was able to diagnose quickly and accurately to the symptoms of the disease caused was expected to helped the farmers in of anticipation the many losses caused by disease. Required accuracy and the accuracy of the counting in diagnosing the symptoms of the disease in order to summarized the results by using forward chaining method. 〈 /p 〉
    Type of Medium: Online Resource
    ISSN: 2502-4760 , 2502-4752
    URL: Issue
    Language: Unknown
    Publisher: Institute of Advanced Engineering and Science
    Publication Date: 2017
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  • 2
    Online Resource
    Online Resource
    STMIK Triguna Dharma ; 2022
    In:  J-SISKO TECH (Jurnal Teknologi Sistem Informasi dan Sistem Komputer TGD) Vol. 5, No. 2 ( 2022-07-16), p. 118-
    In: J-SISKO TECH (Jurnal Teknologi Sistem Informasi dan Sistem Komputer TGD), STMIK Triguna Dharma, Vol. 5, No. 2 ( 2022-07-16), p. 118-
    Abstract: Ojek online telah merambah dunia transportasi di Indonesia. Terobosan baru yang semakin diminati banyak orang ini, tidak hanya menyediakan transportasi angkutan penumpang saja namun juga melayani jasa kurir untuk pemesanan makanan, jasa pengiriman barang, dokumen, dan berbelanja. Banyaknya pelayanan yang diberikan perusahaan ojek online, semakin banyak pula opini yang dilontarkan masyarakat melalui twitter, mengenai kualitas dari setiap jenis layanan yang diberikan oleh perusahaan ojek online.Opini yang memiliki sentimen tersebut akan dianalisis sehingga dapat diketahui layanan mana yang mendapatkan sentimen positif, negatif, dan netral. Oleh sebab itu, diperlukan sebuah pendekatan yang dapat menganalisis sentimen masyarakat terhadap kualitas dari setiap layanan ojek online.Pada penelitian ini metode yang digunakan yaitu term frequency (tf) dan multinomial naive bayes classifier. Tahapan keseluruhan metode yang digunakan pada penelitian ini adalah preprocessing (cleaning, case folding, tokenisasi, convert negation, stopword removal, stemming, dan normalisasi), perhitungan frekuensi kemunculan kata (tf), dan klasifikasi sentimen. Hasil dari penelitian ini adalah mengklasifikasikan tweet ke dalam sentimen positif, negatif, netral dan mengetahui kualitas dari setiap jenis layanan ojek online. Dengan menggunakan algoritma dan metode ini, akurasi yang didapat adalah sebesar 86,57%. Pendekatan ini diharapkan akan sangat membantu pihak perusahaan ojek online untuk memperbaiki kualitas dari setiap jenis layanan yang ada.
    Type of Medium: Online Resource
    ISSN: 2615-5133 , 2621-8976
    Language: Unknown
    Publisher: STMIK Triguna Dharma
    Publication Date: 2022
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  • 3
    Online Resource
    Online Resource
    Indonesian Digital Technology University ; 2022
    In:  JIKO (Jurnal Informatika dan Komputer) Vol. 6, No. 2 ( 2022-09-19), p. 200-
    In: JIKO (Jurnal Informatika dan Komputer), Indonesian Digital Technology University, Vol. 6, No. 2 ( 2022-09-19), p. 200-
    Type of Medium: Online Resource
    ISSN: 2477-3964 , 2477-4413
    URL: Issue
    Language: Unknown
    Publisher: Indonesian Digital Technology University
    Publication Date: 2022
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  • 4
    Online Resource
    Online Resource
    Institut Teknologi Nasional, Bandung ; 2022
    In:  MIND Journal Vol. 7, No. 1 ( 2022-06-29), p. 51-60
    In: MIND Journal, Institut Teknologi Nasional, Bandung, Vol. 7, No. 1 ( 2022-06-29), p. 51-60
    Abstract: ABSTRAKPenyebab kematian utama saat ini di dunia salah satunya dikarenakan oleh penyakit kanker. Menurut data Globocan 2018, dengan tingkat kematian rerata 17 per 100.000 jiwa dan insiden sebanyak 2,1 per 100.000 jiwa untuk kanker payudara yang menyerang wanita di Indonesia. Hal ini menjadikan Indonesia menempati peringkat ke-23 di Asia dan ke-8 di Asia Tenggara. Seiring perkembangan teknologi, sistem berbantuan komputer telah membantu orang di berbagai bidang misalnya di bidang medis. Penentuan jenis kanker payudara menggunakan mechine learning dapat membantu ahli patologi melakukan pemeriksaan secara lebih konsisten dan efisien. Pada penelitian ini, akan dilakukan komparasi metode Multi Layer Perceptron (MLP) dan Support Vector Machine (SVM) untuk klasifikasi kanker payudara. Adapun hasil yang didapatkan menunjukan bahwa, dalam klasifikasi metode Multi Layer Perceptron (MLP) dengan fungsi aktivasi Logistic dan fungsi optimisasi Adam memberikan nilai accuracy, precision dan recall terbaik dibandingkan Support Vector Machine yaitu sebesar 97.7%.Kata kunci: Multi Layer Perceptron (MLP), Aktivasi Logistic, Optimisasi Adam, Support Vector Machine (SVM), Kanker PayudaraABSTRACTThe leading cause of death today in the world is due to cancer. According to Globocan 2018 data, with an average mortality rate of 17 per 100,000 people and an incidence of 2.1 per 100,000 people for breast cancer that affects women in Indonesia. This makes Indonesia ranked 23rd in Asia and 8th in Southeast Asia. As technology has evolved, computer-aided systems have helped people in various fields such as in the medical field. Determination of the type of breast cancer using mechine learning can help pathologists perform examinations more consistently and efficiently. In this study, a comparison of the Multi Layer Perceptron (MLP) and Support Vector Machine (SVM) methods will be carried out for breast cancer classification. The results obtained showed that, in the classification of multi layer perceptron (MLP) methods with logistic activation function and Adam optimization function provides the best accuracy, precision and recall value compared to Support Vector Machine which is 97.7%.Keywords: Multi Layer Perceptron (MLP), Logistic Activation, Adam Optimization, Support Vector Machine (SVM), Breast Cancer
    Type of Medium: Online Resource
    ISSN: 2528-0902 , 2528-0015
    Language: Unknown
    Publisher: Institut Teknologi Nasional, Bandung
    Publication Date: 2022
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  • 5
    Online Resource
    Online Resource
    Indonesian Society of Applied Science (ISAS) ; 2023
    In:  Journal of Applied Computer Science and Technology Vol. 4, No. 1 ( 2023-06-30), p. 1-6
    In: Journal of Applied Computer Science and Technology, Indonesian Society of Applied Science (ISAS), Vol. 4, No. 1 ( 2023-06-30), p. 1-6
    Abstract: Corn is one of the substitute staple foods in Indonesia after rice. Maize crops grown in Indonesia often experience considerable losses due to maize plant diseases. Generally, plant diseases are initially caused by morphological changes in the leaves. Accurate detection and classification of diseases that appear on the leaves will prevent the widespread spread of the disease. This study will compare classification algorithms, namely Support Vector Machine, K-Nearest Neighbors, and Multilayer Perceptron to find the best algorithm in the classification of leaf disease in corn plants, namely, cercospora leaf spot gray, common rust, and northern leaf blight using the VGG-16 deep learning model used as image feature extraction. The results showed that the Multilayer Perceptron algorithm produced the best values with accuracy, precision, and recall of 97.4% each.
    Type of Medium: Online Resource
    ISSN: 2723-1453
    Language: Unknown
    Publisher: Indonesian Society of Applied Science (ISAS)
    Publication Date: 2023
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  • 6
    Online Resource
    Online Resource
    Universitas Rokania ; 2022
    In:  JOURNAL OF ICT APLICATIONS AND SYSTEM Vol. 1, No. 2 ( 2022-12-12), p. 80-85
    In: JOURNAL OF ICT APLICATIONS AND SYSTEM, Universitas Rokania, Vol. 1, No. 2 ( 2022-12-12), p. 80-85
    Abstract: Currently the Family Computer store already has 3 branches and for sales matters it implements an offline and online system. But at this time the store still uses an offline system in terms of service matters such as: Warranty Claims, Service, and Current Status Checks.For this reason, research was carried out which aims to create a program to provide services online so that users when there are problems can provide easier access.This research was made after passing observations and interviews from local parties. Making this program uses the Android Studio application to create an Android application where almost everyone has an Android cellphone, and uses the Firebase Cloud Messagging feature from Google to provide service access to users so that users can monitor and get the latest information from the program without having to come to the store. or notify the admin at the store
    Type of Medium: Online Resource
    ISSN: 2830-098X , 2830-1404
    URL: Issue
    Language: Unknown
    Publisher: Universitas Rokania
    Publication Date: 2022
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  • 7
    Online Resource
    Online Resource
    Universitas Rokania ; 2023
    In:  JOURNAL OF ICT APLICATIONS AND SYSTEM Vol. 2, No. 1 ( 2023-06-27), p. 25-28
    In: JOURNAL OF ICT APLICATIONS AND SYSTEM, Universitas Rokania, Vol. 2, No. 1 ( 2023-06-27), p. 25-28
    Abstract: Electricity is need main For life people human . Electricity is used man For various type activity human . Electricity plays a big role for life , like For lighting , cooking , and so on . Almost all activity daily use electricity . Almost every home in Indonesia, both in the city nor village Already trellis with electricity . For stream and distribute electricity to each home , office nor distant institutions _ away , then needed Transformer Distribution . Transformer Distribution This own objective use special that is, to lower voltage tall to voltage low , so that the voltage used in accordance with equipment ratings electricity customer or load in general . For help in handle problem damage Transformer distribution , then one is needed branch from Knowledge computer that is System Expert . System Expert is system based computer that uses knowledge , facts , and techniques reasoning in solve problem , which usually is only can completed by one expert in field certain . (Putri, 2020). The method used in research _ This is Certainty Factor. Study This apply certainty factor method For role in diagnose damage to electricity . Based on results discussion on with choose one _ damage namely P1 ( Oil transformer go out from the transformer body ) on the study case obtained decision level accuracy that is as big That's 5.650198%. means system expert certainty factor method can overcome damage and deliver results diagnosis good at damage electricity
    Type of Medium: Online Resource
    ISSN: 2830-098X , 2830-1404
    URL: Issue
    Language: Unknown
    Publisher: Universitas Rokania
    Publication Date: 2023
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  • 8
    Online Resource
    Online Resource
    Pusat Penelitian dan Pengabdian Pada Masyarakat Universitas Respati Yogyakarta ; 2023
    In:  International Conference on Information Science and Technology Innovation (ICoSTEC) Vol. 2, No. 1 ( 2023-03-05), p. 76-81
    In: International Conference on Information Science and Technology Innovation (ICoSTEC), Pusat Penelitian dan Pengabdian Pada Masyarakat Universitas Respati Yogyakarta, Vol. 2, No. 1 ( 2023-03-05), p. 76-81
    Abstract: Kominfo (Ministry of Communication and Information) requires all PSEs (Electronic System Providers) to register themselves so that their access is not blocked, as shown in the case of Paypal and several other PSEs. The blocking case reaps mixed opinions from netizens, especially Twitter social media users. We use the sentiment values obtained from the content of tweets collected through the crawling process and employ the K-Means Clustering to group them into clusters. Finally, we use these clusters as the target in a dataset and classify them using the C4.5 and Naive Bayes algorithms. Of the 1000 netizen tweets studied, we found that 6.5% of netizens supported the blocking action, 75.4% did not care or felt that the blocking action had no effect on them, and 15.4% did not support the blocking by Kominfo. The classification results in this study resulted in a 98.2% accuracy value, a 95% precision value, and a 95.5% recall value.
    Type of Medium: Online Resource
    ISSN: 2985-6914
    URL: Issue
    Language: Unknown
    Publisher: Pusat Penelitian dan Pengabdian Pada Masyarakat Universitas Respati Yogyakarta
    Publication Date: 2023
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  • 9
    Online Resource
    Online Resource
    Pusat Penelitian dan Pengabdian Pada Masyarakat Universitas Respati Yogyakarta ; 2023
    In:  International Conference on Information Science and Technology Innovation (ICoSTEC) Vol. 2, No. 1 ( 2023-03-05), p. 192-197
    In: International Conference on Information Science and Technology Innovation (ICoSTEC), Pusat Penelitian dan Pengabdian Pada Masyarakat Universitas Respati Yogyakarta, Vol. 2, No. 1 ( 2023-03-05), p. 192-197
    Abstract: Text mining is the process of detecting information or something new and researching large information. Text mining can also usually perform an analysis of unstructured text. Social media users in Indonesia, which currently almost reach 200 million users, have resulted in a flood of data. This condition makes text mining a solution to extract knowledge from the flood of data [1] . In exploring knowledge, there are various techniques or methods that can be adopted including the Multinomial Naive Bayesian Clasifier and K-Nearest Neighbor methods. Both of these methods have several phases that are able to explore the potential knowledge of a flood of supervised and unsupervised learning data. It is hoped that the combination of these two methods will help analyze public sentiment or perception towards online motorcycle taxi users in Indonesia [2] .
    Type of Medium: Online Resource
    ISSN: 2985-6914
    URL: Issue
    Language: Unknown
    Publisher: Pusat Penelitian dan Pengabdian Pada Masyarakat Universitas Respati Yogyakarta
    Publication Date: 2023
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  • 10
    Online Resource
    Online Resource
    Bright Publisher ; 2024
    In:  Journal of Applied Data Sciences Vol. 5, No. 2 ( 2024-5-15), p. 357-366
    In: Journal of Applied Data Sciences, Bright Publisher, Vol. 5, No. 2 ( 2024-5-15), p. 357-366
    Type of Medium: Online Resource
    ISSN: 2723-6471
    URL: Issue
    Language: Unknown
    Publisher: Bright Publisher
    Publication Date: 2024
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