| [3908] | 1 | ! radiation_pdf_sampler.F90 - Get samples from a lognormal distribution for McICA |
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| 2 | ! |
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| 3 | ! (C) Copyright 2015- ECMWF. |
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| 4 | ! |
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| 5 | ! This software is licensed under the terms of the Apache Licence Version 2.0 |
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| 6 | ! which can be obtained at http://www.apache.org/licenses/LICENSE-2.0. |
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| 7 | ! |
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| 8 | ! In applying this licence, ECMWF does not waive the privileges and immunities |
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| 9 | ! granted to it by virtue of its status as an intergovernmental organisation |
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| 10 | ! nor does it submit to any jurisdiction. |
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| 11 | ! |
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| 12 | ! Author: Robin Hogan |
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| 13 | ! Email: r.j.hogan@ecmwf.int |
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| 14 | ! |
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| 15 | |
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| 16 | module radiation_pdf_sampler |
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| 17 | |
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| 18 | use parkind1, only : jprb |
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| 19 | |
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| 20 | implicit none |
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| 21 | public |
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| 22 | |
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| 23 | !--------------------------------------------------------------------- |
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| 24 | ! Derived type for sampling from a lognormal distribution, used to |
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| 25 | ! generate water content or optical depth scalings for use in the |
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| 26 | ! Monte Carlo Independent Column Approximation (McICA) |
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| 27 | type pdf_sampler_type |
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| 28 | ! Number of points in look-up table for cumulative distribution |
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| 29 | ! function (CDF) and fractional standard deviation (FSD) |
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| 30 | ! dimensions |
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| 31 | integer :: ncdf, nfsd |
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| 32 | |
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| 33 | ! First value of FSD and the reciprocal of the interval between |
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| 34 | ! FSD values (which are assumed to be uniformly distributed) |
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| 35 | real(jprb) :: fsd1, inv_fsd_interval |
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| 36 | |
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| 37 | ! Value of the distribution for each CDF and FSD bin |
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| 38 | real(jprb), allocatable, dimension(:,:) :: val |
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| 39 | |
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| 40 | contains |
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| 41 | |
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| 42 | procedure :: setup => setup_pdf_sampler |
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| 43 | procedure :: sample => sample_from_pdf |
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| 44 | procedure :: masked_sample => sample_from_pdf_masked |
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| 45 | procedure :: deallocate => deallocate_pdf_sampler |
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| 46 | |
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| 47 | end type pdf_sampler_type |
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| 48 | |
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| 49 | contains |
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| 50 | |
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| 51 | !--------------------------------------------------------------------- |
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| 52 | ! Load look-up table from a file |
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| 53 | subroutine setup_pdf_sampler(this, file_name, iverbose) |
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| 54 | |
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| 55 | use yomhook, only : lhook, dr_hook |
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| 56 | use easy_netcdf, only : netcdf_file |
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| 57 | |
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| 58 | class(pdf_sampler_type), intent(inout) :: this |
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| 59 | character(len=*), intent(in) :: file_name |
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| 60 | integer, optional, intent(in) :: iverbose |
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| 61 | |
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| 62 | type(netcdf_file) :: file |
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| 63 | integer :: iverb |
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| 64 | real(jprb), allocatable :: fsd(:) |
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| 65 | |
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| 66 | real(jprb) :: hook_handle |
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| 67 | |
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| 68 | if (lhook) call dr_hook('radiation_pdf_sampler:setup',0,hook_handle) |
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| 69 | |
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| 70 | if (present(iverbose)) then |
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| 71 | iverb = iverbose |
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| 72 | else |
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| 73 | iverb = 2 |
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| 74 | end if |
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| 75 | |
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| 76 | if (allocated(this%val)) then |
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| 77 | deallocate(this%val) |
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| 78 | end if |
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| 79 | |
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| 80 | call file%open(trim(file_name), iverbose=iverb) |
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| 81 | |
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| 82 | call file%get('fsd',fsd) |
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| 83 | call file%get('x', this%val) |
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| 84 | |
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| 85 | call file%close() |
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| 86 | |
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| 87 | this%ncdf = size(this%val,1) |
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| 88 | this%nfsd = size(this%val,2) |
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| 89 | this%fsd1 = fsd(1) |
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| 90 | this%inv_fsd_interval = 1.0_jprb / (fsd(2)-fsd(1)) |
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| 91 | |
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| 92 | deallocate(fsd) |
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| 93 | |
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| 94 | if (lhook) call dr_hook('radiation_pdf_sampler:setup',1,hook_handle) |
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| 95 | |
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| 96 | end subroutine setup_pdf_sampler |
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| 97 | |
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| 98 | !--------------------------------------------------------------------- |
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| 99 | ! Deallocate data in pdf_sampler_type derived type |
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| 100 | subroutine deallocate_pdf_sampler(this) |
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| 101 | |
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| 102 | use yomhook, only : lhook, dr_hook |
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| 103 | |
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| 104 | class(pdf_sampler_type), intent(inout) :: this |
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| 105 | real(jprb) :: hook_handle |
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| 106 | |
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| 107 | if (lhook) call dr_hook('radiation_pdf_sampler:deallocate',0,hook_handle) |
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| 108 | |
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| 109 | if (allocated(this%val)) then |
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| 110 | deallocate(this%val) |
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| 111 | end if |
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| 112 | |
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| 113 | if (lhook) call dr_hook('radiation_pdf_sampler:deallocate',1,hook_handle) |
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| 114 | |
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| 115 | end subroutine deallocate_pdf_sampler |
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| 116 | |
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| 117 | |
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| 118 | !--------------------------------------------------------------------- |
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| 119 | ! Extract the value of a lognormal distribution with fractional |
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| 120 | ! standard deviation "fsd" corresponding to the cumulative |
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| 121 | ! distribution function value "cdf", and return it in val. Since this |
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| 122 | ! is an elemental subroutine, fsd, cdf and val may be arrays. |
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| 123 | elemental subroutine sample_from_pdf(this, fsd, cdf, val) |
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| 124 | |
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| 125 | class(pdf_sampler_type), intent(in) :: this |
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| 126 | |
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| 127 | ! Fractional standard deviation (0 to 4) and cumulative |
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| 128 | ! distribution function (0 to 1) |
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| 129 | real(jprb), intent(in) :: fsd, cdf |
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| 130 | |
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| 131 | ! Sample from distribution |
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| 132 | real(jprb), intent(out) :: val |
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| 133 | |
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| 134 | ! Index to look-up table |
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| 135 | integer :: ifsd, icdf |
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| 136 | |
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| 137 | ! Weights in bilinear interpolation |
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| 138 | real(jprb) :: wfsd, wcdf |
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| 139 | |
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| 140 | ! Bilinear interpolation with bounds |
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| 141 | wcdf = cdf * (this%ncdf-1) + 1.0_jprb |
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| 142 | icdf = max(1, min(int(wcdf), this%ncdf-1)) |
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| 143 | wcdf = max(0.0_jprb, min(wcdf - icdf, 1.0_jprb)) |
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| 144 | |
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| 145 | wfsd = (fsd-this%fsd1) * this%inv_fsd_interval + 1.0_jprb |
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| 146 | ifsd = max(1, min(int(wfsd), this%nfsd-1)) |
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| 147 | wfsd = max(0.0_jprb, min(wfsd - ifsd, 1.0_jprb)) |
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| 148 | |
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| 149 | val = (1.0_jprb-wcdf)*(1.0_jprb-wfsd) * this%val(icdf ,ifsd) & |
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| 150 | & + (1.0_jprb-wcdf)* wfsd * this%val(icdf ,ifsd+1) & |
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| 151 | & + wcdf *(1.0_jprb-wfsd) * this%val(icdf+1,ifsd) & |
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| 152 | & + wcdf * wfsd * this%val(icdf+1,ifsd+1) |
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| 153 | |
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| 154 | end subroutine sample_from_pdf |
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| 155 | |
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| 156 | |
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| 157 | !--------------------------------------------------------------------- |
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| 158 | ! For true elements of mask, extract the values of a lognormal |
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| 159 | ! distribution with fractional standard deviation "fsd" |
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| 160 | ! corresponding to the cumulative distribution function values |
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| 161 | ! "cdf", and return in val. For false elements of mask, return zero |
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| 162 | ! in val. |
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| 163 | subroutine sample_from_pdf_masked(this, nsamp, fsd, cdf, val, mask) |
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| 164 | |
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| 165 | class(pdf_sampler_type), intent(in) :: this |
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| 166 | |
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| 167 | ! Number of samples |
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| 168 | integer, intent(in) :: nsamp |
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| 169 | |
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| 170 | ! Fractional standard deviation (0 to 4) and cumulative |
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| 171 | ! distribution function (0 to 1) |
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| 172 | real(jprb), intent(in) :: fsd(nsamp), cdf(nsamp) |
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| 173 | |
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| 174 | ! Sample from distribution |
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| 175 | real(jprb), intent(out) :: val(:) |
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| 176 | |
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| 177 | ! Mask |
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| 178 | logical, intent(in) :: mask(nsamp) |
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| 179 | |
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| 180 | ! Loop index |
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| 181 | integer :: jsamp |
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| 182 | |
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| 183 | ! Index to look-up table |
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| 184 | integer :: ifsd, icdf |
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| 185 | |
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| 186 | ! Weights in bilinear interpolation |
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| 187 | real(jprb) :: wfsd, wcdf |
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| 188 | |
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| 189 | do jsamp = 1,nsamp |
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| 190 | if (mask(jsamp)) then |
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| 191 | ! Bilinear interpolation with bounds |
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| 192 | wcdf = cdf(jsamp) * (this%ncdf-1) + 1.0_jprb |
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| 193 | icdf = max(1, min(int(wcdf), this%ncdf-1)) |
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| 194 | wcdf = max(0.0_jprb, min(wcdf - icdf, 1.0_jprb)) |
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| 195 | |
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| 196 | wfsd = (fsd(jsamp)-this%fsd1) * this%inv_fsd_interval + 1.0_jprb |
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| 197 | ifsd = max(1, min(int(wfsd), this%nfsd-1)) |
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| 198 | wfsd = max(0.0_jprb, min(wfsd - ifsd, 1.0_jprb)) |
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| 199 | |
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| 200 | val(jsamp)=(1.0_jprb-wcdf)*(1.0_jprb-wfsd) * this%val(icdf ,ifsd) & |
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| 201 | & +(1.0_jprb-wcdf)* wfsd * this%val(icdf ,ifsd+1) & |
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| 202 | & + wcdf *(1.0_jprb-wfsd) * this%val(icdf+1,ifsd) & |
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| 203 | & + wcdf * wfsd * this%val(icdf+1,ifsd+1) |
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| 204 | else |
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| 205 | val(jsamp) = 0.0_jprb |
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| 206 | end if |
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| 207 | end do |
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| 208 | end subroutine sample_from_pdf_masked |
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| 209 | |
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| 210 | end module radiation_pdf_sampler |
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