Originally posted by Sebastian Kripfganz
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I am running ARDL model with the following two commands. I don't understand why different results are produced.
Code:
clear set seed 1234 set obs 1000 gen y = uniform() gen x1 = rt(5) gen time = _n tsset time local ylist y local xlist x1 local quantile "0.1 0.25 0.5" local nq: word count `quantile' di `nq' local xnum: word count `xlist' di `xnum' tempname opt local maxlags = 10 if ("`maxlags'" != "") { ardl `ylist' `xlist', maxlag(`maxlags') aic ec1 mat `opt' = e(lags) } mat list `opt'
Code:
ARDL(1,1) regression Sample: 11 - 1000 Number of obs = 990 R-squared = 0.5314 Adj R-squared = 0.5300 Log likelihood = -180.88505 Root MSE = 0.2911 ------------------------------------------------------------------------------ D.y | Coef. Std. Err. t P>|t| [95% Conf. Interval] -------------+---------------------------------------------------------------- ADJ | y | L1. | -1.062711 .0318044 -33.41 0.000 -1.125124 -1.000299 -------------+---------------------------------------------------------------- LR | x1 | L1. | .0191763 .0099109 1.93 0.053 -.0002725 .0386252 -------------+---------------------------------------------------------------- SR | x1 | D1. | .0070096 .007535 0.93 0.352 -.0077768 .021796 | _cons | .5206504 .0181471 28.69 0.000 .485039 .5562619 ------------------------------------------------------------------------------ . mat `opt' = e(lags) . } . . mat list `opt' __000000[1,2] y x1 r1 1 1
Code:
ardl y x1, lags(1 1) ec1 // optimal lag equals to `opt' ARDL(1,1) regression Sample: 2 - 1000 Number of obs = 999 R-squared = 0.5334 Adj R-squared = 0.5320 Log likelihood = -186.9914 Root MSE = 0.2924 ------------------------------------------------------------------------------ D.y | Coef. Std. Err. t P>|t| [95% Conf. Interval] -------------+---------------------------------------------------------------- ADJ | y | L1. | -1.066707 .0316454 -33.71 0.000 -1.128807 -1.004608 -------------+---------------------------------------------------------------- LR | x1 | L1. | .0186711 .0098246 1.90 0.058 -.0006082 .0379504 -------------+---------------------------------------------------------------- SR | x1 | D1. | .0084251 .0074896 1.12 0.261 -.0062722 .0231223 | _cons | .5239664 .0181209 28.92 0.000 .4884069 .559526 ------------------------------------------------------------------------------
Which answer is correct?
Bests,
wanhai
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