1 | // Copyright (C) 2012-2015 ChaosForge Ltd
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2 | // http://chaosforge.org/
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3 | //
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4 | // This file is part of Nova libraries.
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5 | // For conditions of distribution and use, see copying.txt file in root folder.
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6 |
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7 | #include "nv/gfx/mesh_creator.hh"
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8 |
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9 | #include "nv/interface/data_channel_access.hh"
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10 |
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11 | #include "nv/core/logging.hh"
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12 |
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13 | struct nv_key_transform { nv::transform tform; };
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14 |
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15 | void nv::mesh_nodes_creator::merge_keys()
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16 | {
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17 | for ( size_t i = 0; i < m_data->size(); ++i )
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18 | {
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19 | data_channel_set* old_keys = m_data->m_data[i];
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20 | if ( old_keys && old_keys->size() > 0 )
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21 | {
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22 | size_t chan_count = old_keys->size();
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23 | if ( chan_count == 1
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24 | && old_keys->get_channel(0)->descriptor().size() == 1
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25 | && old_keys->get_channel(0)->descriptor()[0].etype == TRANSFORM ) continue;
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26 |
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27 | size_t max_keys = 0;
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28 | for ( size_t c = 0; c < chan_count; ++c )
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29 | {
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30 | max_keys = nv::max( max_keys, old_keys->get_channel(c)->size() );
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31 | }
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32 |
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33 | data_channel_set* new_keys = data_channel_set_creator::create_set( 1 );
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34 | data_channel_set_creator nk_access( new_keys );
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35 | data_channel_access< nv_key_transform > kt_channel( nk_access.add_channel<nv_key_transform>( max_keys ) );
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36 |
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37 | raw_channel_interpolator interpolator( old_keys );
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38 | data_descriptor final_key = interpolator.get_interpolation_key();
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39 |
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40 | for ( unsigned n = 0; n < max_keys; ++n )
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41 | {
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42 | float key[ 16 ];
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43 | float* pkey = key;
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44 |
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45 | for ( uint16 c = 0; c < chan_count; ++c )
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46 | {
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47 | size_t idx = nv::min( old_keys->get_channel_size(c) - 1, n );
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48 | pkey += raw_channel_interpolator::get_raw( *old_keys->get_channel(c), idx, pkey );
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49 | }
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50 | kt_channel.data()[n].tform = extract_key_raw< nv::transform >( final_key, key );
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51 | }
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52 |
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53 | delete old_keys;
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54 | m_data->m_data[i] = new_keys;
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55 | }
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56 | }
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57 | }
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58 |
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59 | void nv::mesh_nodes_creator::transform( float scale, const mat3& r33 )
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60 | {
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61 | mat3 ri33 = math::inverse( r33 );
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62 | mat4 pre_transform ( scale * r33 );
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63 | mat4 post_transform( 1.f/scale * ri33 );
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64 |
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65 | for ( auto node : m_data->m_data )
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66 | {
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67 | for ( size_t c = 0; c < node->size(); ++c )
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68 | {
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69 | raw_data_channel_access channel( node, c );
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70 | size_t key_size = channel.element_size();
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71 | for ( size_t n = 0; n < channel.size(); ++n )
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72 | {
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73 | transform_key_raw( node->get_channel( c )->descriptor(), channel.raw_data() + n * key_size, scale, r33, ri33 );
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74 | }
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75 | }
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76 | }
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77 | }
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78 |
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79 | void nv::data_node_list_creator::transform( float scale, const mat3& r33 )
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80 | {
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81 | mat3 ri33 = math::inverse( r33 );
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82 | mat4 pre_transform( scale * r33 );
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83 | mat4 post_transform( 1.f / scale * ri33 );
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84 |
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85 | for ( auto& node : m_data->m_data )
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86 | node.transform = pre_transform * node.transform * post_transform;
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87 | }
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88 |
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89 |
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90 | nv::aabb nv::mesh_data_creator::calculate_aabb()
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91 | {
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92 | NV_ASSERT_ALWAYS( m_pos_channel, "No position channel found!" );
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93 | vec3 minv;
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94 | vec3 maxv;
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95 |
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96 | if ( m_pos_channel->size() > 0 )
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97 | {
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98 | minv = *reinterpret_cast<const vec3*>( m_pos_channel->raw_data() + m_pos_offset );
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99 | maxv = minv;
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100 | }
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101 |
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102 | for ( uint32 c = 0; c < m_pos_channel->size(); ++c )
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103 | {
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104 | vec3 v = *reinterpret_cast<const vec3*>( m_pos_channel->raw_data() + c*m_pos_channel->element_size() + m_pos_offset );
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105 | minv = nv::math::min( minv, v );
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106 | maxv = nv::math::max( maxv, v );
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107 | }
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108 | vec3 extents = maxv - minv;
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109 | vec3 hextents = extents * 0.5f;
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110 | vec3 halfv = minv + hextents;
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111 | return aabb( nv::transform( halfv ), hextents );
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112 | }
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113 |
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114 | void nv::mesh_data_creator::transform( const vec3& pos, const mat3& r33, float scale /*= 1.0f */ )
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115 | {
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116 | vec3 vertex_offset = pos;
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117 | mat3 vertex_transform = scale * r33;
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118 | mat3 normal_transform = r33;
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119 |
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120 | for ( uint32 c = 0; c < m_data->size(); ++c )
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121 | {
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122 | raw_data_channel_access channel( m_data, c );
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123 | const data_descriptor& desc = channel.descriptor();
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124 | uint8* raw_data = channel.raw_data();
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125 | uint32 vtx_size = desc.element_size();
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126 | int p_offset = -1;
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127 | int n_offset = -1;
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128 | int t_offset = -1;
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129 | for ( const auto& cslot : desc )
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130 | switch ( cslot.vslot )
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131 | {
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132 | case slot::POSITION: if ( cslot.etype == FLOAT_VECTOR_3 ) p_offset = int( cslot.offset ); break;
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133 | case slot::NORMAL: if ( cslot.etype == FLOAT_VECTOR_3 ) n_offset = int( cslot.offset ); break;
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134 | case slot::TANGENT: if ( cslot.etype == FLOAT_VECTOR_4 ) t_offset = int( cslot.offset ); break;
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135 | default: break;
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136 | }
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137 |
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138 | if ( p_offset != -1 )
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139 | for ( uint32 i = 0; i < channel.size(); i++ )
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140 | {
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141 | vec3& p = *reinterpret_cast<vec3*>( raw_data + vtx_size*i + p_offset );
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142 | p = vertex_transform * p + vertex_offset;
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143 | }
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144 |
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145 | if ( n_offset != -1 )
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146 | for ( uint32 i = 0; i < channel.size(); i++ )
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147 | {
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148 | vec3& n = *reinterpret_cast<vec3*>( raw_data + vtx_size*i + n_offset );
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149 | n = math::normalize( normal_transform * n );
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150 | }
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151 | if ( t_offset != -1 )
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152 | for ( uint32 i = 0; i < channel.size(); i++ )
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153 | {
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154 | vec4& t = *reinterpret_cast<vec4*>( raw_data + vtx_size*i + t_offset );
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155 | t = vec4( math::normalize( normal_transform * vec3( t ) ), t[3] );
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156 | }
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157 | }
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158 | }
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159 |
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160 |
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161 | struct vertex_g
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162 | {
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163 | nv::vec4 tangent;
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164 | };
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165 |
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166 |
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167 | void nv::mesh_data_creator::flip_normals()
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168 | {
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169 | if ( m_nrm_channel == nullptr ) return;
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170 | NV_ASSERT( m_nrm_type == FLOAT_VECTOR_3, "Unknown normal vector type!" );
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171 | raw_data_channel_access channel( m_nrm_channel );
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172 | for ( uint32 i = 0; i < channel.size(); ++i )
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173 | {
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174 | vec3& normal = *reinterpret_cast<vec3*>( channel.raw_data() + channel.element_size() * i + m_nrm_offset );
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175 | normal = -normal;
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176 | }
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177 | }
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178 |
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179 |
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180 | void nv::mesh_data_creator::scale_texture( vec2 min, vec2 max )
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181 | {
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182 | if ( m_tex_channel == nullptr ) return;
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183 | NV_ASSERT( m_tex_type == FLOAT_VECTOR_2, "Unknown texcoord vector type!" );
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184 | raw_data_channel_access channel( m_tex_channel );
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185 | vec2 scale = max - min;
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186 | for ( uint32 i = 0; i < channel.size(); ++i )
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187 | {
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188 | vec2& tc = *reinterpret_cast<vec2*>( channel.raw_data() + channel.element_size() * i + m_tex_offset );
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189 | tc = min + tc * scale;
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190 | }
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191 | }
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192 |
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193 | void nv::mesh_data_creator::generate_tangents()
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194 | {
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195 | if ( m_tan_channel != nullptr ) return;
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196 | if ( !m_pos_channel || !m_nrm_channel || !m_tex_channel ) return;
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197 |
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198 | if ( m_pos_channel->size() != m_nrm_channel->size()
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199 | || m_pos_channel->size() % m_tex_channel->size() != 0
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200 | || ( m_idx_type != UINT && m_idx_type != USHORT && m_idx_type != NONE ) )
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201 | {
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202 | return;
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203 | }
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204 |
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205 | NV_ASSERT( m_pos_type == FLOAT_VECTOR_3, "Unsupported position vector type!" );
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206 | NV_ASSERT( m_nrm_type == FLOAT_VECTOR_3, "Unsupported normal vector type!" );
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207 | NV_ASSERT( m_tex_type == FLOAT_VECTOR_2, "Unknown texcoord vector type!" );
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208 |
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209 | raw_data_channel g_channel = data_channel_creator::create< vertex_g >( m_pos_channel->size() );
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210 | vec4* tangents = &( data_channel_access< vertex_g >( &g_channel ).data()[0].tangent );
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211 | fill_n( tangents, m_pos_channel->size(), vec4() );
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212 | vec3* tangents2 = new vec3[ m_pos_channel->size() ];
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213 | uint32 tri_count = m_idx_channel ? m_idx_channel->size() / 3 : m_tex_channel->size() / 3;
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214 | uint32 vtx_count = m_pos_channel->size();
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215 | uint32 sets = m_pos_channel->size() / m_tex_channel->size();
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216 |
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217 | for ( unsigned int i = 0; i < tri_count; ++i )
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218 | {
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219 | uint32 ti0 = 0;
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220 | uint32 ti1 = 0;
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221 | uint32 ti2 = 0;
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222 | if ( m_idx_type == UINT )
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223 | {
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224 | const uint32* idata = reinterpret_cast<const uint32*>( m_idx_channel->raw_data() );
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225 | ti0 = idata[ i * 3 ];
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226 | ti1 = idata[ i * 3 + 1 ];
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227 | ti2 = idata[ i * 3 + 2 ];
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228 | }
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229 | else if ( m_idx_type == USHORT )
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230 | {
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231 | const uint16* idata = reinterpret_cast<const uint16*>( m_idx_channel->raw_data() );
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232 | ti0 = idata[ i * 3 ];
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233 | ti1 = idata[ i * 3 + 1 ];
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234 | ti2 = idata[ i * 3 + 2 ];
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235 | }
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236 | else // if ( m_idx_type == NONE )
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237 | {
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238 | ti0 = i * 3;
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239 | ti1 = i * 3 + 1;
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240 | ti2 = i * 3 + 2;
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241 | }
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242 |
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243 | vec2 w1 = *reinterpret_cast<const vec2*>( m_tex_channel->raw_data() + m_tex_channel->element_size()*ti0 + m_tex_offset );
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244 | vec2 w2 = *reinterpret_cast<const vec2*>( m_tex_channel->raw_data() + m_tex_channel->element_size()*ti1 + m_tex_offset );
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245 | vec2 w3 = *reinterpret_cast<const vec2*>( m_tex_channel->raw_data() + m_tex_channel->element_size()*ti2 + m_tex_offset );
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246 | vec2 st1 = w3 - w1;
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247 | vec2 st2 = w2 - w1;
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248 | float stst = (st1.x * st2.y - st2.x * st1.y);
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249 | float coef = ( stst != 0.0f ? 1.0f / stst : 0.0f );
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250 |
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251 | for ( uint32 set = 0; set < sets; ++set )
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252 | {
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253 | uint32 nti0 = m_tex_channel->size() * set + ti0;
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254 | uint32 nti1 = m_tex_channel->size() * set + ti1;
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255 | uint32 nti2 = m_tex_channel->size() * set + ti2;
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256 | const vec3& v1 = *reinterpret_cast<const vec3*>( m_pos_channel->raw_data() + m_pos_channel->element_size()*nti0 + m_pos_offset );
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257 | const vec3& v2 = *reinterpret_cast<const vec3*>( m_pos_channel->raw_data() + m_pos_channel->element_size()*nti1 + m_pos_offset );
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258 | const vec3& v3 = *reinterpret_cast<const vec3*>( m_pos_channel->raw_data() + m_pos_channel->element_size()*nti2 + m_pos_offset );
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259 | vec3 xyz1 = v3 - v1;
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260 | vec3 xyz2 = v2 - v1;
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261 |
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262 | //vec3 normal = math::cross( xyz1, xyz2 );
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263 | //
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264 | //vtcs[ ti0 ].normal += normal;
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265 | //vtcs[ ti1 ].normal += normal;
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266 | //vtcs[ ti2 ].normal += normal;
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267 | vec3 tangent = (( xyz1 * st2.y ) - ( xyz2 * st1.y )) * coef;
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268 | vec3 tangent2 = (( xyz2 * st1.x ) - ( xyz1 * st2.x )) * coef;
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269 |
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270 | tangents[nti0] = vec4( vec3( tangents[nti0] ) + tangent, 0 );
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271 | tangents[nti1] = vec4( vec3( tangents[nti1] ) + tangent, 0 );
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272 | tangents[nti2] = vec4( vec3( tangents[nti2] ) + tangent, 0 );
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273 |
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274 | tangents2[nti0] += tangent2;
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275 | tangents2[nti1] += tangent2;
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276 | tangents2[nti2] += tangent2;
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277 | }
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278 | }
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279 |
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280 | for ( unsigned int i = 0; i < vtx_count; ++i )
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281 | {
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282 | const vec3 n = *reinterpret_cast<const vec3*>( m_nrm_channel->raw_data() + m_nrm_channel->element_size()*i + m_nrm_offset );
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283 | const vec3 t = vec3(tangents[i]);
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284 | if ( ! ( t.x == 0.0f && t.y == 0.0f && t.z == 0.0f ) )
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285 | {
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286 | tangents[i] = vec4( math::normalize(t - n * math::dot( n, t )), 0.0f );
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287 | tangents[i][3] = ( math::dot( math::cross(n, t), tangents2[i]) < 0.0f) ? -1.0f : 1.0f;
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288 | }
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289 | }
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290 | delete[] tangents2;
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291 |
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292 | int n_channel_index = m_data->get_channel_index( slot::NORMAL );
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293 | NV_ASSERT( n_channel_index >= 0, "Normal channel not found!" );
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294 | data_channel_set_creator( m_data ).set_channel( uint32( n_channel_index ), merge_channels( *m_nrm_channel, g_channel ) );
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295 | initialize();
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296 | }
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297 |
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298 | void nv::mesh_data_creator::rotate_quadrant( uint8 rotation )
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299 | {
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300 | if ( rotation % 4 == 0 ) return;
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301 | NV_ASSERT( m_pos_type == FLOAT_VECTOR_3, "Unsupported position vector type!" );
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302 | NV_ASSERT( m_nrm_type == FLOAT_VECTOR_3, "Unsupported normal vector type!" );
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303 | NV_ASSERT( m_tan_type == FLOAT_VECTOR_4, "Unsupported tangent vector type!" );
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304 |
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305 | float r11 = 0.f;
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306 | float r12 = 0.f;
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307 | float r21 = 0.f;
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308 | float r22 = 0.f;
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309 |
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310 | switch ( rotation % 4 )
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311 | {
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312 | case 1: r12 = -1.f; r21 = 1.f; break;
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313 | case 2: r11 = -1.f; r22 = -1.f; break;
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314 | case 3: r12 = 1.f; r21 = -1.f; break;
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315 | default:
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316 | break;
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317 | }
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318 |
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319 | unsigned vtx_count = m_pos_channel->size();
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320 | uint8* pos_data = raw_data_channel_access( m_pos_channel ).raw_data();
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321 | uint8* nrm_data = raw_data_channel_access( m_nrm_channel ).raw_data();
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322 | uint8* tan_data = raw_data_channel_access( m_tan_channel ).raw_data();
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323 | for ( unsigned int i = 0; i < vtx_count; ++i )
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324 | {
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325 | vec3& pos = *reinterpret_cast<vec3*>( pos_data + m_pos_channel->element_size() * i + m_pos_offset );
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326 | vec3& nrm = *reinterpret_cast<vec3*>( nrm_data + m_nrm_channel->element_size() * i + m_nrm_offset );
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327 | vec4& tan = *reinterpret_cast<vec4*>( tan_data + m_tan_channel->element_size() * i + m_tan_offset );
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328 |
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329 | pos = vec3(
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330 | pos.x * r11 + pos.z * r12,
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331 | pos.y,
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332 | pos.x * r21 + pos.z * r22
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333 | );
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334 | nrm = vec3(
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335 | nrm.x * r11 + nrm.z * r12,
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336 | nrm.y,
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337 | nrm.x * r21 + nrm.z * r22
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338 | );
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339 | tan = vec4(
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340 | tan.x * r11 + tan.z * r12,
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341 | tan.y,
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342 | tan.x * r21 + tan.z * r22,
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343 | tan.w // make sure this is proper
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344 | );
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345 | }
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346 |
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347 |
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348 | }
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349 |
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350 | void nv::mesh_data_creator::mirror( bool x, bool z )
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351 | {
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352 | if ( !x && !z ) return;
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353 | NV_ASSERT( m_pos_type == FLOAT_VECTOR_3, "Unsupported position vector type!" );
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354 | NV_ASSERT( m_nrm_type == FLOAT_VECTOR_3, "Unsupported normal vector type!" );
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355 | NV_ASSERT( m_tan_type == FLOAT_VECTOR_4, "Unsupported tangent vector type!" );
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356 |
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357 | float kx = x ? -1.0f : 1.0f;
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358 | float kz = z ? -1.0f : 1.0f;
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359 |
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360 | unsigned vtx_count = m_pos_channel->size();
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361 | uint8* pos_data = raw_data_channel_access( m_pos_channel ).raw_data();
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362 | uint8* nrm_data = raw_data_channel_access( m_nrm_channel ).raw_data();
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363 | uint8* tan_data = raw_data_channel_access( m_tan_channel ).raw_data();
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364 | for ( unsigned int i = 0; i < vtx_count; ++i )
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365 | {
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366 | vec3& pos = *reinterpret_cast<vec3*>( pos_data + m_pos_channel->element_size() * i + m_pos_offset );
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367 | vec3& nrm = *reinterpret_cast<vec3*>( nrm_data + m_nrm_channel->element_size() * i + m_nrm_offset );
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368 | vec4& tan = *reinterpret_cast<vec4*>( tan_data + m_tan_channel->element_size() * i + m_tan_offset );
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369 |
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370 | pos = vec3(
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371 | pos.x * kx,
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372 | pos.y,
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373 | pos.z * kz
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374 | );
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375 | nrm = vec3(
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376 | nrm.x * kx,
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377 | nrm.y,
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378 | nrm.z * kz
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379 | );
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380 | tan = vec4(
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381 | tan.x * kx,
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382 | tan.y,
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383 | tan.z * kz,
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384 | tan.w * kx * kz// make sure this is proper
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385 | );
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386 | }
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387 |
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388 | if ( !( x && z ) )
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389 | swap_culling();
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390 | }
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391 |
|
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392 |
|
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393 | template < typename T >
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394 | static inline void swap_culling_impl( nv::raw_data_channel* index_channel )
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395 | {
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396 | nv::raw_data_channel_access ichannel( index_channel );
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397 | T* indices = reinterpret_cast<T*>( ichannel.raw_data() );
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398 | nv::uint32 count = index_channel->size() / 3;
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399 | for ( nv::uint32 i = 0; i < count; ++i )
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400 | {
|
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401 | nv::swap( indices[i * 3], indices[i * 3 + 1] );
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402 | }
|
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403 | }
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404 |
|
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405 | void nv::mesh_data_creator::swap_culling()
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406 | {
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407 | NV_ASSERT( m_idx_channel, "Swap culling unsupported on non-indexed meshes!" );
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408 | NV_ASSERT( m_idx_channel->descriptor().size() == 1, "Malformed index channel!" );
|
---|
409 | NV_ASSERT( m_idx_channel->size() % 3 == 0, "Malformed index channel - not per GL_TRIANGLE LAYOUT?" );
|
---|
410 |
|
---|
411 | if ( m_idx_channel->size() == 0 ) return;
|
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412 | switch ( m_idx_type )
|
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413 | {
|
---|
414 | case USHORT: swap_culling_impl< uint16 >( m_idx_channel ); break;
|
---|
415 | case UINT: swap_culling_impl< uint32 >( m_idx_channel ); break;
|
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416 | default: NV_ASSERT( false, "Swap culling supports only unsigned and unsigned short indices!" ); break;
|
---|
417 | }
|
---|
418 | }
|
---|
419 |
|
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420 | void nv::mesh_data_creator::translate( vec3 offset )
|
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421 | {
|
---|
422 | if ( m_pos_channel == nullptr ) return;
|
---|
423 | NV_ASSERT( m_pos_type == FLOAT_VECTOR_3, "Unsupported poosition vector type!" );
|
---|
424 | raw_data_channel_access channel( m_pos_channel );
|
---|
425 | for ( uint32 i = 0; i < channel.size(); ++i )
|
---|
426 | {
|
---|
427 | vec3& p = *reinterpret_cast<vec3*>( channel.raw_data() + channel.element_size() * i + m_pos_offset );
|
---|
428 | p = p + offset;
|
---|
429 | }
|
---|
430 |
|
---|
431 | }
|
---|
432 |
|
---|
433 | void nv::mesh_data_creator::initialize()
|
---|
434 | {
|
---|
435 | NV_ASSERT( m_data, "bad parameter!" );
|
---|
436 | m_pos_channel = nullptr;
|
---|
437 | m_nrm_channel = nullptr;
|
---|
438 | m_tan_channel = nullptr;
|
---|
439 | m_tex_channel = nullptr;
|
---|
440 | m_idx_channel = nullptr;
|
---|
441 |
|
---|
442 | m_pos_offset = -1;
|
---|
443 | m_nrm_offset = -1;
|
---|
444 | m_tan_offset = -1;
|
---|
445 | m_tex_offset = -1;
|
---|
446 | m_idx_offset = -1;
|
---|
447 |
|
---|
448 | m_pos_type = NONE;
|
---|
449 | m_nrm_type = NONE;
|
---|
450 | m_tan_type = NONE;
|
---|
451 | m_tex_type = NONE;
|
---|
452 | m_idx_type = NONE;
|
---|
453 |
|
---|
454 | for ( uint32 c = 0; c < m_data->size(); ++c )
|
---|
455 | {
|
---|
456 | raw_data_channel* channel = data_channel_set_creator( m_data )[c];
|
---|
457 |
|
---|
458 | for ( const auto& cslot : channel->descriptor() )
|
---|
459 | switch ( cslot.vslot )
|
---|
460 | {
|
---|
461 | case slot::POSITION:
|
---|
462 | m_pos_type = cslot.etype;
|
---|
463 | m_pos_offset = int( cslot.offset );
|
---|
464 | m_pos_channel = channel;
|
---|
465 | break;
|
---|
466 | case slot::NORMAL:
|
---|
467 | m_nrm_type = cslot.etype;
|
---|
468 | m_nrm_offset = int( cslot.offset );
|
---|
469 | m_nrm_channel = channel;
|
---|
470 | break;
|
---|
471 | case slot::TANGENT:
|
---|
472 | m_tan_type = cslot.etype;
|
---|
473 | m_tan_offset = int( cslot.offset );
|
---|
474 | m_tan_channel = channel;
|
---|
475 | break;
|
---|
476 | case slot::TEXCOORD:
|
---|
477 | m_tex_type = cslot.etype;
|
---|
478 | m_tex_offset = int( cslot.offset );
|
---|
479 | m_tex_channel = channel;
|
---|
480 | break;
|
---|
481 | case slot::INDEX:
|
---|
482 | m_idx_type = cslot.etype;
|
---|
483 | m_idx_offset = int( cslot.offset );
|
---|
484 | m_idx_channel = channel;
|
---|
485 | break;
|
---|
486 | default: break;
|
---|
487 | }
|
---|
488 | }
|
---|
489 | }
|
---|
490 |
|
---|
491 | nv::raw_data_channel nv::mesh_data_creator::merge_channels( const raw_data_channel& a, const raw_data_channel& b )
|
---|
492 | {
|
---|
493 | NV_ASSERT( a.size() == b.size(), "merge_channel - bad channels!" );
|
---|
494 | data_descriptor desc = a.descriptor();
|
---|
495 | desc.append( b.descriptor() );
|
---|
496 |
|
---|
497 | raw_data_channel result = data_channel_creator::create( desc, a.size() );
|
---|
498 | for ( uint32 i = 0; i < a.size(); ++i )
|
---|
499 | {
|
---|
500 | raw_copy_n( a.raw_data() + i * a.element_size(), a.element_size(), raw_data_channel_access( &result ).raw_data() + i*desc.element_size() );
|
---|
501 | raw_copy_n( b.raw_data() + i * b.element_size(), b.element_size(), raw_data_channel_access( &result ).raw_data() + i*desc.element_size() + a.element_size() );
|
---|
502 | }
|
---|
503 | initialize();
|
---|
504 | return result;
|
---|
505 | }
|
---|
506 |
|
---|
507 | nv::raw_data_channel nv::mesh_data_creator::append_channels( const raw_data_channel& a, const raw_data_channel& b, uint32 frame_count )
|
---|
508 | {
|
---|
509 | NV_ASSERT( a.descriptor() == b.descriptor(), "Merge - append not compatible format!" );
|
---|
510 | NV_ASSERT( a.size() % frame_count == 0, "Merge - append first mesh empty!" );
|
---|
511 | NV_ASSERT( b.size() % frame_count == 0, "Merge - append second mesh empty!" );
|
---|
512 | size_t vtx_size = a.element_size();
|
---|
513 |
|
---|
514 | raw_data_channel result = data_channel_creator::create( a.descriptor(), a.size() + b.size() );
|
---|
515 | uint8* rdata = raw_data_channel_access( &result ).raw_data();
|
---|
516 |
|
---|
517 | if ( frame_count == 1 )
|
---|
518 | {
|
---|
519 | size_t a_size = vtx_size * a.size();
|
---|
520 | raw_copy_n( a.raw_data(), a_size, rdata );
|
---|
521 | raw_copy_n( b.raw_data(), vtx_size * b.size(), rdata + a_size );
|
---|
522 | }
|
---|
523 | else
|
---|
524 | {
|
---|
525 | size_t frame_size_a = ( a.size() / frame_count ) * vtx_size;
|
---|
526 | size_t frame_size_b = ( b.size() / frame_count ) * vtx_size;
|
---|
527 | size_t pos_a = 0;
|
---|
528 | size_t pos_b = 0;
|
---|
529 | size_t pos = 0;
|
---|
530 | for ( size_t i = 0; i < frame_count; ++i )
|
---|
531 | {
|
---|
532 | raw_copy_n( a.raw_data() + pos_a, frame_size_a, rdata + pos );
|
---|
533 | raw_copy_n( b.raw_data() + pos_b, frame_size_b, rdata + pos + frame_size_a ); pos_a += frame_size_a;
|
---|
534 | pos_b += frame_size_b;
|
---|
535 | pos += frame_size_a + frame_size_b;
|
---|
536 | }
|
---|
537 | }
|
---|
538 |
|
---|
539 | initialize();
|
---|
540 | return result;
|
---|
541 | }
|
---|
542 |
|
---|
543 |
|
---|
544 |
|
---|
545 | bool nv::mesh_data_creator::is_same_format( const data_channel_set* other )
|
---|
546 | {
|
---|
547 | if ( m_data->size() != other->size() ) return false;
|
---|
548 | for ( uint32 c = 0; c < m_data->size(); ++c )
|
---|
549 | {
|
---|
550 | if ( m_data->get_channel(c)->descriptor() != other->get_channel(c)->descriptor() )
|
---|
551 | return false;
|
---|
552 | }
|
---|
553 | return true;
|
---|
554 | }
|
---|
555 |
|
---|
556 | void nv::mesh_data_creator::merge( const data_channel_set* other )
|
---|
557 | {
|
---|
558 | if ( !is_same_format( other ) ) return;
|
---|
559 | int ch_pi = m_data->get_channel_index( slot::POSITION );
|
---|
560 | int ch_ti = m_data->get_channel_index( slot::TEXCOORD );
|
---|
561 | int och_pi = other->get_channel_index( slot::POSITION );
|
---|
562 | int och_ti = other->get_channel_index( slot::TEXCOORD );
|
---|
563 | if ( ch_pi == -1 || ch_ti == -1 ) return;
|
---|
564 | size_t size = m_data->get_channel_size( unsigned(ch_ti) );
|
---|
565 | size_t osize = other->get_channel_size( unsigned(och_ti) );
|
---|
566 | size_t count = m_data->get_channel_size( unsigned(ch_pi) );
|
---|
567 | size_t ocount = other->get_channel_size( unsigned(och_pi) );
|
---|
568 | if ( count % size != 0 || ocount % osize != 0 ) return;
|
---|
569 | if ( count / size != ocount / osize ) return;
|
---|
570 |
|
---|
571 | data_channel_set_creator data( m_data );
|
---|
572 |
|
---|
573 | for ( uint32 c = 0; c < m_data->size(); ++c )
|
---|
574 | {
|
---|
575 | const raw_data_channel* old = m_data->get_channel( c );
|
---|
576 | uint32 old_size = old->size();
|
---|
577 | data_descriptor old_desc = old->descriptor();
|
---|
578 | bool old_is_index = old_size > 0 && old_desc[0].vslot == slot::INDEX;
|
---|
579 | size_t frame_count = ( old_is_index ? 1 : old_size / size );
|
---|
580 | data.set_channel( c, append_channels( *old, *other->get_channel(c), frame_count ) );
|
---|
581 | if ( old_is_index )
|
---|
582 | {
|
---|
583 | switch ( old_desc[0].etype )
|
---|
584 | {
|
---|
585 | case USHORT :
|
---|
586 | {
|
---|
587 | NV_ASSERT( size + osize < uint16(-1), "Index out of range!" );
|
---|
588 | raw_data_channel_access ic( data[c] );
|
---|
589 | uint16* indexes = reinterpret_cast<uint16*>( ic.raw_data() );
|
---|
590 | for ( uint16 i = uint16( old_size ); i < ic.size(); ++i )
|
---|
591 | indexes[i] += uint16( size );
|
---|
592 |
|
---|
593 | }
|
---|
594 | break;
|
---|
595 | case UINT :
|
---|
596 | {
|
---|
597 | raw_data_channel_access ic( data[c] );
|
---|
598 | uint32* indexes = reinterpret_cast<uint32*>( ic.raw_data() );
|
---|
599 | for ( uint32 i = old_size; i < ic.size(); ++i )
|
---|
600 | indexes[i] += size;
|
---|
601 | }
|
---|
602 | break;
|
---|
603 | default : NV_ASSERT( false, "Unsupported index type!" ); break;
|
---|
604 | }
|
---|
605 | }
|
---|
606 | }
|
---|
607 | initialize();
|
---|
608 | }
|
---|