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Hasil Pencarian

Ditemukan 1530 dokumen yang sesuai dengan query
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Karl Marx
Moscow: Foreign Languages Publishing House, 1952
335 Len t
Buku Teks  Universitas Indonesia Library
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"Buku ini merupakan terjemahan dari karya Maxim Gorky yang berjudul Трое = Troe. Karya ini diterjemahkan ke dalam bahasa Inggris oleh Margaret Wettlin. "
Moscow: Foreign Languages Publishing House, [date of publication not identified]
891.73 GOR t t (1)
Buku Teks SO  Universitas Indonesia Library
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Gregory, Philippa
"As sisters they share an everlasting bond. As queens they can break each other's hearts. "There is only one bond that I trust: between a woman and her sisters. We never take our eyes off each other. In love and in rivalry, we always think of each other." When Katherine of Aragon is brought to the Tudor court as a young bride, the oldest princess, Margaret, takes her measure. With one look, each knows the other for a rival, an ally, a pawn, destined, with Margaret's younger sister Mary, to a sisterhood unique in all the world. The three sisters will become the queens of England, Scotland, and France. United by family loyalties and affections, the three queens find themselves set against each other. Katherine commands an army against Margaret and kills her husband James IV of Scotland. But Margaret's boy becomes heir to the Tudor throne when Katherine loses her son. Mary steals the widowed Margaret's proposed husband, but when Mary is widowed it is her secret marriage for love that is the envy of the others. As they experience betrayals, dangers, loss, and passion, the three sisters find that the only constant in their perilous lives is their special bond, more powerful than any man, even a king."
Waterville, Maine: Thorndike Press, 2016
823.914 GRE t
Buku Teks SO  Universitas Indonesia Library
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Sheth, Jagdish N.
New York: Free Press, 2002
658 SHE r
Buku Teks  Universitas Indonesia Library
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Chekhov, Anton Pavlovich, 1860-1904
"Buku ini merupakan terjemahan dari cerita pendek Anton Chekov yang berjudul Три Года = Tri Goda. Cerpen ini diterjemahkan ke dalam bahasa Inggris oleh Rose Prokofieva."
Moscow: Foreign Languages Publishing House, [date of publication not identified]
891.73 CHE tt (1)
Buku Teks SO  Universitas Indonesia Library
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Wilde, W.H.
Melbourne: Oxford University Press, 1969
828.990 WIL t
Buku Teks SO  Universitas Indonesia Library
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Luo, Guanzhong
Beijing: Foreign Language Press, 2000
SIN 895.13 LUO t
Buku Teks  Universitas Indonesia Library
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O`Casey, Sean
London: Macmillan, 1973
822.912 OCA t
Buku Teks SO  Universitas Indonesia Library
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Nabila Ramadhani
"Corona Virus Disease 2019 (COVID-19) adalah penyakit yang menyerang tubuh manusia melalui virus Severe Acute Respiratory atau SARS-CoV-2. Munculnya wabah COVID-19 menimbulkan setidaknya 16,6 juta penduduk di dunia meninggal dunia serta tidak sedikit dari penderitanya mengidap Community Acquired Pneumonia (CAP). CAP adalah infeksi akut parenkim paru pada orang yang telah mendapatkan infeksi di masyarakat. Menurut World Health Organization (WHO), pneumonia menjadi penyebab utama kematian nomor tiga di negara miskin dan berkembang. Dengan adanya pendeteksian serta diagnosis lebih dini, pengidap CAP akibat terpapar oleh virus COVID-19 ini dapat ditangani lebih cepat sebelum menyebar luas. Oleh karena itu, analisis gambar medis sangat penting dalam upaya pengobatan CAP sedini mungkin. Adanya pengembangan teknologi deep learning dan computer vision dapat membantu dokter dalam melakukan pendeteksian lebih cepat serta akurat. Maka dari itu, penelitian ini mengusulkan model Convolutional Neural Network (CNN) dengan arsitektur ensemble model Xception, InceptionV3, NASNet Large, dan Inception Resnet-V2 dengan menggunakan metode pre-processing Principal Component Analysis (PCA) dalam melakukan pendeteksian COVID-19 tiga kelas pada gambar chest xray. Penggunaan metode PCA pada data pre-processing dapat membantu mengembangkan model yang lebih efisien serta akurat. Para peneliti telah mencoba pemrosesan gambar baik menggunakan gambar rontgen dada dan juga Computerized Tomography (CT scan) khususnya CNN. Penelitian sebelumnya telah membuat model CNN dengan arsitektur ensemble model yang terdiri dari Xception, Inception-V3, NASNet Large, dan Inception Resnet-V2 berbasis ensemble model. Namun, hasil akurasi dalam pendeteksiannya masih belum optimal. Oleh karena itu, penelitian ini mengusulkan penggunaan metode PCA untuk meningkatkan akurasi pendeteksian menjadi 88,95%. Akurasi pendeteksian meningkat sebesar 3,14% dari penelitian sebelumnya.

Corona Virus Disease 2019 (COVID-19) is a disease that attacks the human body through the SARS-CoV-2 virus. The emergence of the COVID-19 outbreak has caused at least 16.6 million people worldwide to die, and many of them suffer from Community Acquired Pneumonia (CAP). CAP is an acute lung parenchyma infection in people who have been infected in the community. According to World Health Organization (WHO), pneumonia is the third leading cause of death in poor and developing countries. With earlier detection and diagnosis, CAP sufferers due to exposure to the COVID-19 virus can be treated more quickly before it spreads widely. Therefore, medical image analysis is crucial in the effort to treat CAP as early as possible. The development of deep learning and computer vision technology can help doctors to perform faster and more accurate detection. Hence, this research proposes a Convolutional Neural Network (CNN) model with ensemble architectures of Xception, InceptionV3, NASNet Large, and Inception Resnet-V2, using Principal Component Analysis (PCA) pre-processing method to perform three-class COVID-19 detection in chest x-ray images. The use of the PCA method in pre-processing data can help develop a more efficient and accurate model. Researchers have tried image processing using both chest X-ray images and also Computerized Tomography (CT scan), especially CNN. Previous research has created a CNN model with an ensemble model architecture consisting of Xception, Inception-V3, NASNet Large, and Inception Resnet-V2 based on the ensemble model. However, the results of the accuracy in the detection are still not optimal. Therefore, this study proposes the use of the PCA method to increase the detection accuracy to 88.95%. Detection accuracy increased by 3.14% from previous studies."
Depok: Fakultas Teknik Universitas Indonesia, 2023
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UI - Skripsi Membership  Universitas Indonesia Library
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