1 | // Copyright (C) 2011-2015 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/keyframed_mesh.hh"
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8 |
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9 | #include "nv/interface/context.hh"
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10 | #include "nv/interface/device.hh"
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11 | #include "nv/core/logging.hh"
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12 |
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13 | using namespace nv;
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14 |
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15 | nv::keyframed_mesh::keyframed_mesh( context* a_context, const data_channel_set* a_data, const mesh_nodes_data* a_tag_map )
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16 | : animated_mesh()
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17 | , m_context( a_context )
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18 | , m_tag_map( a_tag_map )
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19 | , m_last_frame( 0 )
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20 | , m_next_frame( 0 )
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21 | , m_interpolation( 0.0f )
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22 | , m_active( false )
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23 | {
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24 | m_index_count = a_data->get_channel_size( slot::INDEX );
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25 | m_vertex_count = a_data->get_channel_size<vertex_t>();
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26 | uint32 pos_size = a_data->get_channel_size<vertex_pnt>();
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27 | if ( pos_size == 0 )
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28 | {
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29 | pos_size = a_data->get_channel_size<vertex_pn>();
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30 | m_has_tangent = false;
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31 | m_vsize = sizeof( vertex_pn );
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32 | }
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33 | else
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34 | {
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35 | m_has_tangent = true;
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36 | m_vsize = sizeof( vertex_pnt );
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37 | }
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38 | m_frame_count = pos_size / m_vertex_count;
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39 | m_pbuffer = buffer();
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40 |
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41 | if ( m_tag_map && m_tag_map->size() > 0 )
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42 | {
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43 | m_interpolation_key = (*m_tag_map)[ 0 ]->get_interpolation_key();
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44 | }
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45 | }
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46 |
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47 | nv::size_t keyframed_mesh::get_max_frames() const
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48 | {
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49 | return m_frame_count;
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50 | }
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51 |
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52 | transform keyframed_mesh::get_node_transform( uint32 node_id ) const
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53 | {
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54 | if ( !m_tag_map ) return transform();
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55 | NV_ASSERT( node_id < m_tag_map->size(), "TAGMAP FAIL" );
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56 | NV_ASSERT( (*m_tag_map)[node_id]->size() > 0, "TAG FAIL" );
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57 | raw_channel_interpolator interpolator( ( *m_tag_map )[node_id], m_interpolation_key );
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58 | return interpolator.get< transform >( m_last_frame, m_next_frame, m_interpolation );
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59 | }
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60 |
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61 | mat4 keyframed_mesh::get_node_matrix( uint32 node_id ) const
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62 | {
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63 | return get_node_transform( node_id ).extract();
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64 | }
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65 |
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66 | void nv::keyframed_mesh::set_frame( uint32 frame )
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67 | {
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68 | m_last_frame = frame;
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69 | m_next_frame = frame;
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70 | m_active = false;
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71 | m_interpolation = 0.0f;
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72 | }
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73 |
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74 | void nv::keyframed_mesh::update_animation( animation_entry* anim, uint32 a_anim_time )
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75 | {
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76 | if ( m_active )
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77 | {
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78 | float tick_time = ( static_cast<float>( a_anim_time ) * 0.001f ) * anim->get_frame_rate();
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79 | float duration = anim->is_looping() ? anim->get_duration() + 1.0f : anim->get_duration();
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80 | if ( tick_time >= duration )
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81 | {
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82 | if ( anim->is_looping() )
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83 | {
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84 | tick_time = fmodf( tick_time, duration );
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85 | }
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86 | else
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87 | {
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88 | m_active = false;
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89 | m_last_frame = static_cast<uint32>( anim->get_end() );
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90 | m_next_frame = m_last_frame;
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91 | m_interpolation = 0.0f;
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92 | return;
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93 | }
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94 | }
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95 | m_last_frame = static_cast<uint32>( glm::floor( tick_time ) + anim->get_start() );
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96 | m_next_frame = m_last_frame + 1;
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97 | if ( m_next_frame > static_cast<uint32>( anim->get_end() ) ) m_next_frame = static_cast<uint32>( anim->get_start() );
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98 | m_interpolation = tick_time - glm::floor( tick_time );
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99 | }
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100 | }
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101 |
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102 |
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103 | void nv::keyframed_mesh::update( program a_program )
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104 | {
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105 | m_context->get_device()->set_opt_uniform( a_program, "nv_interpolate", m_interpolation );
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106 | }
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107 |
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108 | nv::keyframed_mesh::~keyframed_mesh()
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109 | {
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110 | m_context->release( m_va );
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111 | }
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112 |
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113 | void nv::keyframed_mesh::run_animation( animation_entry* a_anim )
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114 | {
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115 | if ( a_anim )
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116 | {
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117 | m_active = true;
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118 | m_last_frame = 0;
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119 | m_next_frame = 0;
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120 | m_interpolation = 0.0f;
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121 | }
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122 | else
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123 | {
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124 | m_active = false;
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125 | }
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126 | }
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127 |
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128 | nv::keyframed_mesh_gpu::keyframed_mesh_gpu( context* a_context, const data_channel_set* a_data, const mesh_nodes_data* a_tag_map )
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129 | : keyframed_mesh( a_context, a_data, a_tag_map )
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130 | , m_loc_next_position( -1 )
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131 | , m_loc_next_normal( -1 )
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132 | , m_loc_next_tangent( -1 )
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133 | , m_gpu_last_frame( 0xFFFFFFFF )
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134 | , m_gpu_next_frame( 0xFFFFFFFF )
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135 | {
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136 | m_va = a_context->create_vertex_array( a_data, STATIC_DRAW );
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137 | m_pbuffer = a_context->find_buffer( m_va, slot::POSITION );
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138 | }
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139 |
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140 |
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141 | void nv::keyframed_mesh_gpu::update_animation( animation_entry* anim, uint32 a_anim_time )
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142 | {
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143 | keyframed_mesh::update_animation( anim, a_anim_time );
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144 | if ( m_loc_next_position == -1 ) return;
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145 | if ( m_gpu_last_frame != m_last_frame )
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146 | {
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147 | uint32 base_offset = m_last_frame * m_vertex_count * m_vsize;
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148 | m_context->update_attribute_offset( m_va, slot::POSITION, base_offset );
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149 | m_context->update_attribute_offset( m_va, slot::NORMAL, base_offset + sizeof( vec3 ) );
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150 | if ( m_has_tangent && m_loc_next_tangent != -1 )
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151 | {
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152 | m_context->update_attribute_offset( m_va, slot::TANGENT, base_offset + 2*sizeof( vec3 ) );
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153 | }
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154 | m_gpu_last_frame = m_last_frame;
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155 | }
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156 | if ( m_loc_next_position != -1 && m_gpu_next_frame != m_next_frame )
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157 | {
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158 | uint32 base_offset = m_next_frame * m_vertex_count * m_vsize;
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159 | m_context->update_attribute_offset( m_va, static_cast<slot>( m_loc_next_position ), base_offset );
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160 | m_context->update_attribute_offset( m_va, static_cast<slot>( m_loc_next_normal ), base_offset + sizeof( vec3 ) );
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161 | if ( m_has_tangent && m_loc_next_tangent != -1 )
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162 | {
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163 | m_context->update_attribute_offset( m_va, static_cast<slot>( m_loc_next_tangent ), base_offset + 2*sizeof( vec3 ) );
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164 | }
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165 | m_gpu_next_frame = m_next_frame;
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166 | }
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167 | }
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168 |
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169 | void nv::keyframed_mesh_gpu::update( program a_program )
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170 | {
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171 | if ( m_loc_next_position == -1 )
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172 | {
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173 | device* dev = m_context->get_device();
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174 | m_loc_next_position = dev->get_attribute_location( a_program, "nv_next_position" );
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175 | m_loc_next_normal = dev->get_attribute_location( a_program, "nv_next_normal" );
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176 | if ( m_has_tangent )
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177 | m_loc_next_tangent = dev->get_attribute_location( a_program, "nv_next_tangent" );
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178 |
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179 | m_context->add_vertex_buffer( m_va, static_cast<slot>( m_loc_next_position ), m_pbuffer, FLOAT, 3, 0, m_vsize, false );
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180 | m_context->add_vertex_buffer( m_va, static_cast<slot>( m_loc_next_normal ), m_pbuffer, FLOAT, 3, sizeof( vec3 ), m_vsize, false );
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181 | if ( m_has_tangent )
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182 | m_context->add_vertex_buffer( m_va, static_cast<slot>( m_loc_next_tangent ), m_pbuffer, FLOAT, 4, 2*sizeof( vec3 ), m_vsize, false );
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183 | }
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184 | keyframed_mesh::update( a_program );
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185 | }
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186 |
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187 | nv::keyframed_mesh_cpu::keyframed_mesh_cpu( context* a_context, const data_channel_set* a_data, const mesh_nodes_data* a_tag_map )
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188 | : keyframed_mesh( a_context, a_data, a_tag_map )
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189 | {
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190 | const raw_data_channel* vchannel = m_has_tangent ? a_data->get_channel< vertex_pnt >() : a_data->get_channel< vertex_pn >();
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191 | m_va = m_context->create_vertex_array();
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192 | m_pbuffer = m_context->get_device()->create_buffer( VERTEX_BUFFER, STATIC_DRAW, m_vertex_count * m_vsize, vchannel->raw_data() );
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193 | m_context->add_vertex_buffers( m_va, m_pbuffer, vchannel->descriptor() );
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194 |
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195 | buffer vb = m_context->get_device()->create_buffer( VERTEX_BUFFER, STATIC_DRAW, m_vertex_count * sizeof( vec2 ), a_data->get_channel_data<vertex_t>() );
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196 | m_context->add_vertex_buffers( m_va, vb, a_data->get_channel<vertex_t>()->descriptor() );
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197 |
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198 | const raw_data_channel* index_channel = a_data->get_channel( slot::INDEX );
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199 | buffer ib = m_context->get_device()->create_buffer( INDEX_BUFFER, STATIC_DRAW, index_channel->raw_size(), index_channel->raw_data() );
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200 | m_context->set_index_buffer( m_va, ib, index_channel->descriptor()[0].etype, true );
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201 |
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202 | m_data = new uint8[ m_vertex_count * m_vsize ];
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203 |
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204 | m_model_data = vchannel->raw_data();
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205 | }
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206 |
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207 | void nv::keyframed_mesh_cpu::update_animation( animation_entry* anim, uint32 a_anim_time )
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208 | {
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209 | keyframed_mesh::update_animation( anim, a_anim_time );
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210 | // TODO: this could be done generic for any data
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211 | if ( m_has_tangent )
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212 | {
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213 | const vertex_pnt* data = reinterpret_cast< const vertex_pnt* >( m_model_data );
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214 | const vertex_pnt* prev = data + m_vertex_count * m_last_frame;
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215 | const vertex_pnt* next = data + m_vertex_count * m_next_frame;
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216 | vertex_pnt* vtx = reinterpret_cast<vertex_pnt*>( m_data );
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217 | for ( size_t i = 0; i < m_vertex_count; ++i )
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218 | {
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219 | vtx[i].position = glm::mix( prev[i].position, next[i].position, m_interpolation );
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220 | vtx[i].normal = glm::mix( prev[i].normal, next[i].normal, m_interpolation );
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221 | vtx[i].tangent = glm::mix( prev[i].tangent, next[i].tangent, m_interpolation );
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222 | }
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223 | }
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224 | else
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225 | {
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226 | const vertex_pn* data = reinterpret_cast< const vertex_pn* >( m_model_data );
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227 | const vertex_pn* prev = data + m_vertex_count * m_last_frame;
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228 | const vertex_pn* next = data + m_vertex_count * m_next_frame;
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229 | vertex_pn* vtx = reinterpret_cast<vertex_pn*>( m_data );
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230 |
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231 | for ( size_t i = 0; i < m_vertex_count; ++i )
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232 | {
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233 | vtx[i].position = glm::mix( prev[i].position, next[i].position, m_interpolation );
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234 | vtx[i].normal = glm::mix( prev[i].normal, next[i].normal, m_interpolation );
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235 | }
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236 | }
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237 |
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238 | m_context->update( m_pbuffer, m_data, 0, m_vertex_count * m_vsize );
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239 | }
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240 |
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241 | nv::keyframed_mesh_cpu::~keyframed_mesh_cpu()
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242 | {
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243 | delete[] m_data;
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244 | }
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