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Practical Time Series Analysis

You're reading from  Practical Time Series Analysis

Product type Book
Published in Sep 2017
Publisher Packt
ISBN-13 9781788290227
Pages 244 pages
Edition 1st Edition
Languages
Authors (2):
Avishek Pal Avishek Pal
Profile icon Avishek Pal
PKS Prakash PKS Prakash
Profile icon PKS Prakash
View More author details

Introduction to time-series smoothing


Time series data is composed of signals and noise, where signals capture intrinsic dynamics of the process; however, noise represents the unmodeled component of a signal. The intrinsic dynamics of a time series signal can be as simple as the mean of the process or it can be a complex functional form within observations, as represented here:

xt = f(xi) + εt for i=1,2,3, ... t-1

Here, xt is observations and εt is white noise. The f(xi) denotes the functional form; an example of a constant as a functional form is as follows:

xt = μ + εt

Here, the constant value μ in the preceding equation acts as a drift parameter, as shown in the following figure:

Figure 3.1: Example of time series with drift parameter

As εt is white noise, this smoothing-based approach helps separate the intrinsic functional form from random noise by canceling it. The smoothing forecasting methods can be considered as filters that take inputs and separate the trend and noise components, as...

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