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Teknik Peramalan: Materi minggu kesepuluh

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Identification of NONSTATIONARY TIME SERIES Estimation of ARIMA ... Weekly sales of Ultra Shine toothpaste (in units of 1000 tubes) [Bowerman and O'Connell, pg. ... – PowerPoint PPT presentation

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Title: Teknik Peramalan: Materi minggu kesepuluh


1
Teknik Peramalan Materi minggu kesepuluh
  • ? Model ARIMA Box-Jenkins untuk data time series
    yang TIDAK STASIONER
  • ? Identification of NONSTATIONARY TIME SERIES

    ? Estimation of ARIMA model
    ? Diagnostic Check
    of ARIMA model
    ? Forecasting
  • ? Studi Kasus Model ARIMAX (Analisis
    Intervensi, Fungsi Transfer dan Neural Networks)

2
Example Weekly sales of Ultra Shine toothpaste
(in units of 1000 tubes) Bowerman and
OConnell, pg. 478
3
Example IDENTIFICATION step
stationarity and ACF
Dying down extremely slowly
ACF
Nonstationary time series
4
Example IDENTIFICATION step
Difference Wt Yt Yt-1
Wt ? AR(1) or Yt ? ARI(1,1)
Stationary time series
ACF
PACF
Dies down
Cuts off after lag 1
5
Example ESTIMATION and DIAGNOSTIC CHECK step

Yt 3.0232 1.6591 Yt-1 0.6591 Yt-2 at
Estimation and Testing parameter
Diagnostic Check (white noise residual)
6
Example DIAGNOSTIC CHECK step Normality test
of residuals
7
Example FORECASTING step
MINITAB output
8
Comparison ARIMA versus Trend Analysis
ARIMA(1,1,0) MSE 7.647
9
Plot comparison ARIMA versus Trend Analysis
ARIMA(1,1,0) MSE 7.647
Trend Analysis MSE 598.212
Forecast comparison
10
Plot RESIDUAL comparison ARIMA versus Trend
Analysis
ARIMA(1,1,0) MSE 7.647
Trend Analysis MSE 598.212
11
MINITAB command IDENTIFICATION Step
Plot Data ? stationarity data
To make stationarity data
ACF PACF data ? to find tentative
ARIMA model
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