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eBooks :: Kembali

Linear regression

Olive, David J; (Springer International Publishing, 2017)

 Abstrak

This text covers both multiple linear regression and some experimental design models. The text uses the response plot to visualize the model and to detect outliers, does not assume that the error distribution has a known parametric distribution, develops prediction intervals that work when the error distribution is unknown, suggests bootstrap hypothesis tests that may be useful for inference after variable selection, and develops prediction regions and large sample theory for the multivariate linear regression model that has m response variables. A relationship between multivariate prediction regions and confidence regions provides a simple way to bootstrap confidence regions. These confidence regions often provide a practical method for testing hypotheses. There is also a chapter on generalized linear models and generalized additive models. There are many R functions to produce response and residual plots, to simulate prediction intervals and hypothesis tests, to detect outliers, and to choose response transformations for multiple linear regression or experimental design models.

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 Metadata

Jenis Koleksi : eBooks
No. Panggil : e20528414
Entri utama-Nama orang :
Subjek :
Penerbitan : Switzerland: Springer International Publishing, 2017
Sumber Pengatalogan: LibUI eng rda
Tipe Konten: text
Tipe Media: computer
Tipe Pembawa: online resource
Deskripsi Fisik: xiv, 494 pages : illustration
Tautan: https://link.springer.com/book/10.1007/978-3-319-55252-1
Lembaga Pemilik:
Lokasi:
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No. Panggil No. Barkod Ketersediaan
e20528414 20-22-00825649 TERSEDIA
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Tidak ada ulasan pada koleksi ini: 20528414
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