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 Generate Data (ARIMA)
						(Time Series)
Generate Data (ARIMA)
						(Time Series)
					
    
    Synopsis
This operator generates a time series from an ARIMA process.Description
The process is defined by auto-regressive terms and moving-average terms, which defíne how strongly previous values of the time series influence the next values. The result of the operator is a single attribute that includes the time series.
Differentiation
 Generate Data
Generate Data
            This operator also generates a new ExampleSet. It offers many different generating functions and can generate ExampleSets with a label attribute.
Output
 arima (Data Table) arima (Data Table)- ExampleSet which has only one attribute that represents the ARIMA time series. 
Parameters
- name_of_new_time_series_attribute
            This parameter sets the name of the new time series attribute which is returned. Range:
- coefficients_of_the_auto-regressive_terms
            This parameter list specifies the coefficients of the auto-regressive terms. Range:
- coefficients_of_the_moving-average_terms
            This parameter list specifies the coefficients of the moving-average terms. Range:
- constant
            This parameters sets a starting point for the ARIMA process. Range:
- standard_deviation_of_the_innovations
            This parameter sets the standard deviation of the innovations. It controls the amount of variation that is added to each new data point. Range:
- length
            This parameter is the final length of the generated time series. It is the number of examples of the new ExampleSet. Range:
- use_local_random_seed
            This parameter indicates if a local random seed should be used. If selected a local seed is used specifically for this operator. Range:
- local_random_seed
            If the use local random seed parameter is checked this parameter determines the local random seed. Range:
Tutorial Processes
Generating a sample ARIMA process
Simple process that generates an ARIMA time series.
