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Ditemukan 43839 dokumen yang sesuai dengan query
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Vellemen, Paul F.
Boston: Duxbury Press, 1981
510.285 VEL a
Buku Teks SO  Universitas Indonesia Library
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Kennedy, William J.
New York: Marcel Dekker, 1980
519.502 KEN s
Buku Teks SO  Universitas Indonesia Library
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Kohler, Ulrich
Texas: Stata Press, 2009
004 Koh d
Buku Teks  Universitas Indonesia Library
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Nguyen, Hung T.
"This book shows how to compute statistics under such interval and fuzzy uncertainty. The resulting methods are applied to computer science (optimal scheduling of different processors), to information technology (maintaining privacy), to computer engineering (design of computer chips), and to data processing in geosciences, radar imaging, and structural mechanics.
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Berlin: [Springer, ], 2012
e20398151
eBooks  Universitas Indonesia Library
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Jaakko Hollmén, editor
"This book constitutes the refereed proceedings of the 11th International Conference on Intelligent Data Analysis, IDA 2012, held in Helsinki, Finland, in October 2012. The 32 revised full papers presented together with 3 invited papers were carefully reviewed and selected from 88 submissions. All current aspects of intelligent data analysis are addressed, including intelligent support for modeling and analyzing data from complex, dynamical systems. The papers focus on novel applications of IDA techniques to, e.g., networked digital information systems; novel modes of data acquisition and the associated issues; robustness and scalability issues of intelligent data analysis techniques; and visualization and dissemination results.
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Berlin: Springer-Verlag, 2012
e204063789
eBooks  Universitas Indonesia Library
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"Mathematical statistics with applications, second edition, gives an up-to-date introduction to the theory of statistics with a wealth of real-world applications that will help students approach statistical problem solving in a logical manner. The book introduces many modern statistical computational and simulation concepts that are not covered in other texts; such as the Jackknife, bootstrap methods, the EM algorithms, and Markov chain Monte Carlo (MCMC) methods such as the Metropolis algorithm, Metropolis-Hastings algorithm and the Gibbs sampler. Goodness of fit methods are included to identify the probability distribution that characterizes the probabilistic behavior or a given set of data."
London, UK: Academic Press, 2015
e20427217
eBooks  Universitas Indonesia Library
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Chambers, John M.
New York: John Wiley & Sons, 1977
519.4 CHA c
Buku Teks SO  Universitas Indonesia Library
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Grewal, P.S.
New Delhi: Private Limited, 1987
519.5 GRE n
Buku Teks SO  Universitas Indonesia Library
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Aprilia Rahmawati
"Mahasiswa diharapkan untuk dapat menempuh jenjang pendidikan sarjananya dengan baik dan tentunya selesai tepat waktu. Sebagai mahasiswa, mempunyai aktivitas yang cukup banyak di luar rutinitas kuliah sudah menjadi hal yang lazim, misalnya seperti berorganisasi, berkegiatan di luar kampus, belum lagi ada mahasiswa yang sambil bekerja. Dengan banyaknya rutinitas, mahasiswa seringkali menunda belajar atau menyelesaikan tugas yang diberikan oleh dosennya. Inilah yang disebut dengan prokrastinasi akademik. Prokrastinasi akademik pada mahasiswa dapat berdampak pada penurunan prestasi akademiknya. Tujuan penelitian ini adalah untuk mengetahui variabel-variabel yang menjelaskan tingkat prokrastinasi akademik pada mahasiswa. Metode yang digunakan adalah metode Regresi Linier Berganda, sedangkan untuk mengetahui profil mahasiswa yang mempunyai tingkat prokrastinasi akademik yang tinggi menggunakan metode Classification and Regression Tree (CRT), dan juga ingin mengetahui perbedaan antara Regresi Linier Berganda dan Classification and Regression Tree (CRT) berdasarkan urutan variabel-variabel yang signifikan menjelaskan tingkat prokrastinasi akademik pada mahasiswa FMIPA Universitas Indonesia. Variabel yang diduga menjelaskan tingkat prokrastinasi akademik adalah jenis kelamin, tempat tinggal, kondisi fisik, kondisi psikologis, kondisi lingkungan, motivasi belajar, persepsi mahasiswa, dukungan sosial orang tua, dan dukungan sosial teman sebaya. Penelitian ini menggunakan data primer yaitu 660 mahasiswa FMIPA Universitas Indonesia yang diambil dengan cara purposive sampling. Hasil penelitian menunjukkan bahwa variabel-variabel yang secara signifikan menjelaskan tingkat prokrastinasi akademik mahasiswa FMIPA Universitas Indonesia adalah jenis kelamin, kondisi fisik, kondisi psikologis, motivasi belajar, persepsi mahasiswa, dukungan sosial orang tua, dan dukungan sosial teman sebaya. Profil mahasiswa yang memiliki tingkat prokrastinasi akademik yang tinggi yaitu mahasiswa dengan kondisi fisik dan kondisi psikologis yang buruk, serta dukungan sosial orang tua yang rendah. Selain itu, ada perbedaan dalam urutan variabel-variabel yang signifikan antara metode Regresi Linier Berganda dan CRT, namun keduanya memiliki satu kesamaan yaitu variabel tertinggi adalah kondisi fisik.

Students are expected to be able to undertake their undergraduate studies satisfactorily and graduate as scheduled. As a students, it is normal having with numerous activities outside academic routine, such as organizations, off-campus activities, not to mention students who are employed. Consequently, students often delay studying and completing the tasks given by their lecturers. This is called academic procrastination. Academic procrastination may lead to a declining academic achievement. This study aimed to determine variables that affect academic procrastination levels and to find out the profile of students with high levels of academic procrastination. The methods used are Multiple Linear Regression and Classification and Regression Tree (CRT), respectively. Furthermore, this study aims to the difference between Multiple Linear Regression and CRT based on the sequence of significant variables explains the level of academic procrastination of FMIPA students of University of Indonesia. The variables considered to affect the level of academic procrastination include gender, residence, physical conditions, psychological conditions, environmental conditions, learning motivation, student perception, parental support, and peer support. This study used primary data, namely 660 FMIPA students of University of Indonesia obtained through purposive sampling. The results showed that the variables that significantly affect the level of academic procrastination of FMIPA students of University of Indonesia include gender, physical conditions, psychological conditions, learning motivation, student perception, parental support, and peer support. Students who demonstrate a high level of academic procrastination are characterized by poor physical and psychological conditions, as well as low parental support. In addition, there is a significant difference in the sequence of variables between the Multiple Linear Regression method and CRT, but both have one thing in common, that is, the highest variable is physical condition."
Depok: Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Indonesia, 2023
S-pdf
UI - Skripsi Membership  Universitas Indonesia Library
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Heiberger, Richard M.
New York: John Wiley & Sons, 1989
519.502 HEI c
Buku Teks SO  Universitas Indonesia Library
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