!        Generated by TAPENADE     (INRIA, Tropics team)
!  Tapenade 3.2 (r3024) - 06/17/2009 13:03
!  
!        Generated by TAPENADE     (INRIA, Tropics team)
!  Tapenade 3.2 (r3024) - 06/17/2009 13:03
!  
!  Differentiation of lgobfun in forward (tangent) mode: (multi-directional mode)
!   variations  of output variables: ll
!   with respect to input variables: pp
! This is the objective function
SUBROUTINE LGOBFUN_DV(n, x, y, wts, x0, y0, pp, ppd, hx, hy, ll, lld, cv&
&  , fixrho, nbdirs)
  IMPLICIT NONE
! number of data points
  INTEGER, INTENT(IN) :: n
! x-data points
  REAL*8, DIMENSION(n), INTENT(IN) :: x
! y-data points
  REAL*8, DIMENSION(n), INTENT(IN) :: y
! kernel weights of each data point
  REAL*8, DIMENSION(n), INTENT(IN) :: wts
! x-coordinate where local parameters are computed
  REAL*8, INTENT(IN) :: x0
! y-coordinate where local parameters are computed
  REAL*8, INTENT(IN) :: y0
! transformed parameters used by optimizer
  REAL*8, DIMENSION(5), INTENT(IN) :: pp
  REAL*8, DIMENSION(5, 5), INTENT(IN) :: ppd
! x-dir bandwidth
  REAL*8, INTENT(IN) :: hx
! y-dir bandwidth
  REAL*8, INTENT(IN) :: hy
! should the input parameters be transformed?
  LOGICAL, INTENT(IN) :: cv
! fixed rho?
  REAL*8, INTENT(IN) :: fixrho
! objective function out
  REAL*8, INTENT(OUT) :: ll
  REAL*8, INTENT(OUT) :: lld(5)
  REAL*8, DIMENSION(n) :: lgauss
  REAL*8, DIMENSION(5, n) :: lgaussd
  REAL*8, DIMENSION(5) :: pars2
  REAL*8, DIMENSION(5, 5) :: pars2d
  REAL*8, DIMENSION(1) :: xtmp, ytmp, restmp
  REAL*8, DIMENSION(5, 1) :: xtmpd, ytmpd, restmpd
  REAL*8, DIMENSION(5) :: pars
  REAL*8, DIMENSION(5, 5) :: parsd
  REAL*8, DIMENSION(n) :: arg1
  REAL*8, DIMENSION(5, n) :: arg1d
  REAL*8 :: arg10
  REAL*8 :: arg10d(5)
  INTEGER :: nd
  INTEGER :: nbdirs
  INTRINSIC EXP
  INTRINSIC ABS
  INTRINSIC SUM
  REAL*8 :: abs2
  REAL*8 :: abs1
  INTRINSIC SQRT
  REAL*8 :: result1
  ll = 0.0_8
! if cv=TRUE; Transform parameters
  IF (cv) THEN
    DO nd=1,nbdirs
      parsd(nd, 1:2) = ppd(nd, 1:2)
      parsd(nd, 3:4) = ppd(nd, 3:4)*EXP(pp(3:4))
    END DO
    pars(1:2) = pp(1:2)
    pars(3:4) = EXP(pp(3:4))
    IF (fixrho .GE. 0.) THEN
      abs1 = fixrho
    ELSE
      abs1 = -fixrho
    END IF
    IF (abs1 .LT. 1.0_8) THEN
      DO nd=1,nbdirs
        parsd(nd, 5) = 0.0_8
        lld(nd) = -(0.5_8*2*pp(5)*ppd(nd, 5))
      END DO
      pars(5) = fixrho
! add this to make optimizer work
! if rho is fixed
      ll = -(0.5_8*pp(5)**2)
    ELSE
      DO nd=1,nbdirs
        parsd(nd, 5) = (2.0_8*ppd(nd, 5)*EXP(pp(5))*(1.0_8+EXP(pp(5)))-&
&          2.0_8*EXP(pp(5))**2*ppd(nd, 5))/(1.0_8+EXP(pp(5)))**2
      END DO
      pars(5) = -1.0_8 + 2.0_8*EXP(pp(5))/(1.0_8+EXP(pp(5)))
      DO nd=1,nbdirs
        lld(nd) = 0.0_8
      END DO
    END IF
  ELSE
    DO nd=1,nbdirs
      parsd(nd, :) = ppd(nd, :)
    END DO
! otherwise, pass parameters as they are
    pars = pp
    IF (fixrho .GE. 0.) THEN
      abs2 = fixrho
    ELSE
      abs2 = -fixrho
    END IF
    IF (abs2 .LT. 1.0_8) THEN
      DO nd=1,nbdirs
        parsd(nd, 5) = 0.0_8
      END DO
      pars(5) = fixrho
      DO nd=1,nbdirs
        lld(nd) = 0.0_8
      END DO
    ELSE
      DO nd=1,nbdirs
        lld(nd) = 0.0_8
      END DO
    END IF
  END IF
! compute logdensites for the weighted log-likelihood
  CALL LOGGAUSSPDF_DV(n, x, y, pars, parsd, lgauss, lgaussd, nbdirs)
  arg10 = pars(3)**2 + hx**2
  DO nd=1,nbdirs
    arg1d(nd, :) = wts*lgaussd(nd, :)
    lld(nd) = lld(nd) + SUM(arg1d(nd, :))/(1.0_8*n)
    pars2d(nd, 1:2) = parsd(nd, 1:2)
    arg10d(nd) = 2*pars(3)*parsd(nd, 3)
    IF (!arg10 .EQ. 0.0) THEN
      pars2d(nd, 3) = 0.0_8
    ELSE
      result1 = SQRT(arg10)
      pars2d(nd, 3) = arg10d(nd)/(2.0*result1)
    END IF
    arg10d(nd) = 2*pars(4)*parsd(nd, 4)
    xtmpd(nd, 1) = 0.0_8
    ytmpd(nd, 1) = 0.0_8
  END DO
! weighted log-likelihood
  arg1(:) = wts*lgauss
  ll = ll + SUM(arg1(:))/(1.0_8*n)
! work out parameters for the penalty term
  pars2(1:2) = pars(1:2)
  pars2(3) = SQRT(arg10)
  arg10 = pars(4)**2 + hy**2
  pars2(4) = SQRT(arg10)
  DO nd=1,nbdirs
    IF (!arg10 .EQ. 0.0) THEN
      pars2d(nd, 4) = 0.0_8
    ELSE
      result1 = SQRT(arg10)
      pars2d(nd, 4) = arg10d(nd)/(2.0*result1)
    END IF
    pars2d(nd, 5) = (((parsd(nd, 5)*pars(3)+pars(5)*parsd(nd, 3))*pars(4&
&      )+pars(5)*pars(3)*parsd(nd, 4))*pars2(3)*pars2(4)-pars(5)*pars(3)*&
&      pars(4)*(pars2d(nd, 3)*pars2(4)+pars2(3)*pars2d(nd, 4)))/(pars2(3)&
&      *pars2(4))**2
  END DO
  pars2(5) = pars(5)*pars(3)*pars(4)/(pars2(3)*pars2(4))
  xtmp(1) = x0
  ytmp(1) = y0
  CALL LOGGAUSSPDF_DV(1, xtmp, ytmp, pars2, pars2d, restmp, restmpd, &
&                nbdirs)
  DO nd=1,nbdirs
    lld(nd) = lld(nd) - restmpd(nd, 1)*EXP(restmp(1))
  END DO
! add penalty term to objective
  ll = ll - EXP(restmp(1))
END SUBROUTINE LGOBFUN_DV

!  Differentiation of loggausspdf in forward (tangent) mode: (multi-directional mode)
!   variations  of output variables: res
!   with respect to input variables: pars
!----------------------------------------------------------------------
! This file defines the objective function for local gaussian correlation
!----------------------------------------------------------------------
! Throughout, we use the convetion for parameters of a bivariate gaussian
! pars(1) = mu_x
! pars(2) = mu_y
! pars(3) = sigma_x
! pars(4) = sigma_y
! pars(5) = rho
!-------------------------------------------------------------------------
! log-density of a bivariate Gaussian, vectorized in the data
! with parameters fixed
SUBROUTINE LOGGAUSSPDF_DV(n, x, y, pars, parsd, res, resd, nbdirs)
  IMPLICIT NONE
  REAL*8, PARAMETER :: twopi=6.283185307179586e+00_8
  INTEGER, INTENT(IN) :: n
  REAL*8, DIMENSION(n), INTENT(IN) :: x
  REAL*8, DIMENSION(n), INTENT(IN) :: y
  REAL*8, DIMENSION(5), INTENT(IN) :: pars
  REAL*8, DIMENSION(5, 5), INTENT(IN) :: parsd
  REAL*8, DIMENSION(n), INTENT(OUT) :: res
  REAL*8, DIMENSION(5, n), INTENT(OUT) :: resd
  REAL*8, DIMENSION(n) :: cen1, cen2
  REAL*8, DIMENSION(5, n) :: cen1d, cen2d
  REAL*8 :: t1, f1, f2, f12
  REAL*8 :: t1d(5), f1d(5), f2d(5), f12d(5)
  REAL*8 :: arg1
  REAL*8 :: arg1d(5)
  REAL*8 :: result1
  REAL*8 :: result1d(5)
  REAL*8 :: arg2
  REAL*8 :: arg2d(5)
  INTEGER :: nd
  INTEGER :: nbdirs
  INTRINSIC LOG
  INTRINSIC SQRT
  REAL*8 :: result10
  t1 = -(0.5_8/(1.0_8-pars(5)**2))
  f1 = t1/pars(3)**2
  f2 = t1/pars(4)**2
  f12 = -(2.0*pars(5)*t1/(pars(3)*pars(4)))
  cen1 = x - pars(1)
  cen2 = y - pars(2)
  arg1 = 1.0_8 - pars(5)**2
  result1 = SQRT(arg1)
  arg2 = twopi*pars(3)*pars(4)*result1
  DO nd=1,nbdirs
    t1d(nd) = (-(0.5_8*2*pars(5)*parsd(nd, 5)))/(1.0_8-pars(5)**2)**2
    f1d(nd) = (t1d(nd)*pars(3)**2-t1*2*pars(3)*parsd(nd, 3))/(pars(3)**2&
&      )**2
    f2d(nd) = (t1d(nd)*pars(4)**2-t1*2*pars(4)*parsd(nd, 4))/(pars(4)**2&
&      )**2
    f12d(nd) = -((2.0*(parsd(nd, 5)*t1+pars(5)*t1d(nd))*pars(3)*pars(4)-&
&      2.0*pars(5)*t1*(parsd(nd, 3)*pars(4)+pars(3)*parsd(nd, 4)))/(pars(&
&      3)*pars(4))**2)
    cen1d(nd, :) = -parsd(nd, 1)
    cen2d(nd, :) = -parsd(nd, 2)
    arg1d(nd) = -(2*pars(5)*parsd(nd, 5))
    IF (!arg1 .EQ. 0.0) THEN
      result1d(nd) = 0.0
    ELSE
      result10 = SQRT(arg1)
      result1d(nd) = arg1d(nd)/(2.0*result10)
    END IF
    arg2d(nd) = twopi*((parsd(nd, 3)*result1+pars(3)*result1d(nd))*pars(&
&      4)+pars(3)*result1*parsd(nd, 4))
    resd(nd, :) = f1d(nd)*cen1**2 - arg2d(nd)/arg2 + f1*2*cen1*cen1d(nd&
&      , :) + f2d(nd)*cen2**2 + f2*2*cen2*cen2d(nd, :) + (f12d(nd)*cen1+&
&      f12*cen1d(nd, :))*cen2 + f12*cen1*cen2d(nd, :)
  END DO
  res = -LOG(arg2) + f1*cen1**2 + f2*cen2**2 + f12*cen1*cen2
END SUBROUTINE LOGGAUSSPDF_DV