The steadystate file changed the values for the following parameters:
constebeta
ccs
cinvs
crdpi
The derivatives of jacobian and steady-state will be computed numerically
(re-set options_.analytic_derivation_mode= -2)
==== Identification analysis ====
Testing prior mean
WARNING !!!
The rank of H (model) is deficient!
constepinf is not identified in the model!
[dJ/d(constepinf)=0 for all tau elements in the model solution!]
constebeta is not identified in the model!
[dJ/d(constebeta)=0 for all tau elements in the model solution!]
ctrend is not identified in the model!
[dJ/d(ctrend)=0 for all tau elements in the model solution!]
WARNING !!!
The rank of J (moments) is deficient!
constepinf is not identified by J moments!
[dJ/d(constepinf)=0 for all J moments!]
constebeta is not identified by J moments!
[dJ/d(constebeta)=0 for all J moments!]
ctrend is not identified by J moments!
[dJ/d(ctrend)=0 for all J moments!]
[cmap,crhopinf] are PAIRWISE collinear (with tol = 1.e-10) !
[cmaw,crhow] are PAIRWISE collinear (with tol = 1.e-10) !
==== Identification analysis ====
Testing prior mean
All parameters are identified in the model (rank of H).
WARNING !!!
The rank of J (moments) is deficient!
[cmap,crhopinf] are PAIRWISE collinear (with tol = 1.e-10) !
[cmaw,crhow] are PAIRWISE collinear (with tol = 1.e-10) !
Monte Carlo Testing
Testing MC sample
All parameters are identified in the model (rank of H).
All parameters are identified by J moments (rank of J)
==== Identification analysis completed ====
POSTERIOR KERNEL OPTIMIZATION PROBLEM!
(minus) the hessian matrix at the "mode" is not positive definite!
=> posterior variance of the estimated parameters are not positive.
You should try to change the initial values of the parameters using
the estimated_params_init block, or use another optimization routine.
The following parameters are at the prior bound: SE_ez, SE_eb, SE_eg, SE_eqs, SE_em, SE_epinf, SE_ew, crhoz, crhob, crhog, crhoqs
Some potential solutions are:
- Check your model for mistakes.
- Check whether model and data are consistent (correct observation equation).
- Shut off prior_trunc.
- Use a different mode_compute like 6 or 9.
- Check whether the parameters estimated are identified.
- Increase the informativeness of the prior.
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