[1812] | 1 | /*
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| 2 | -----------------------------------------------------------------------------
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| 3 | This source file is part of OGRE
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| 4 | (Object-oriented Graphics Rendering Engine)
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| 5 | For the latest info, see http://www.ogre3d.org/
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| 6 |
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| 7 | Copyright (c) 2000-2005 The OGRE Team
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| 8 | Also see acknowledgements in Readme.html
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| 9 |
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| 10 | This program is free software; you can redistribute it and/or modify it under
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| 11 | the terms of the GNU Lesser General Public License as published by the Free Software
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| 12 | Foundation; either version 2 of the License, or (at your option) any later
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| 13 | version.
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| 14 |
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| 15 | This program is distributed in the hope that it will be useful, but WITHOUT
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| 16 | ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS
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| 17 | FOR A PARTICULAR PURPOSE. See the GNU Lesser General Public License for more details.
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| 18 |
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| 19 | You should have received a copy of the GNU Lesser General Public License along with
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| 20 | this program; if not, write to the Free Software Foundation, Inc., 59 Temple
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| 21 | Place - Suite 330, Boston, MA 02111-1307, USA, or go to
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| 22 | http://www.gnu.org/copyleft/lesser.txt.
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| 23 | -----------------------------------------------------------------------------
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| 24 | */
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| 25 | #ifndef __Common_H__
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| 26 | #define __Common_H__
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| 27 | // Common stuff
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| 28 |
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| 29 | #include <utility>
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| 30 |
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| 31 | namespace Ogre {
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| 32 |
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| 33 |
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| 34 | /** Comparison functions used for the depth/stencil buffer operations and
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| 35 | others. */
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| 36 | enum CompareFunction
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| 37 | {
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| 38 | CMPF_ALWAYS_FAIL,
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| 39 | CMPF_ALWAYS_PASS,
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| 40 | CMPF_LESS,
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| 41 | CMPF_LESS_EQUAL,
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| 42 | CMPF_EQUAL,
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| 43 | CMPF_NOT_EQUAL,
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| 44 | CMPF_GREATER_EQUAL,
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| 45 | CMPF_GREATER
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| 46 | };
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| 47 |
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| 48 | /** High-level filtering options providing shortcuts to settings the
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| 49 | minification, magnification and mip filters. */
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| 50 | enum TextureFilterOptions
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| 51 | {
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| 52 | /// Equal to: min=FO_POINT, mag=FO_POINT, mip=FO_NONE
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| 53 | TFO_NONE,
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| 54 | /// Equal to: min=FO_LINEAR, mag=FO_LINEAR, mip=FO_POINT
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| 55 | TFO_BILINEAR,
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| 56 | /// Equal to: min=FO_LINEAR, mag=FO_LINEAR, mip=FO_LINEAR
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| 57 | TFO_TRILINEAR,
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| 58 | /// Equal to: min=FO_ANISOTROPIC, max=FO_ANISOTROPIC, mip=FO_LINEAR
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| 59 | TFO_ANISOTROPIC
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| 60 | };
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| 61 |
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| 62 | enum FilterType
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| 63 | {
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| 64 | /// The filter used when shrinking a texture
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| 65 | FT_MIN,
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| 66 | /// The filter used when magnifiying a texture
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| 67 | FT_MAG,
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| 68 | /// The filter used when determining the mipmap
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| 69 | FT_MIP
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| 70 | };
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| 71 | /** Filtering options for textures / mipmaps. */
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| 72 | enum FilterOptions
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| 73 | {
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| 74 | /// No filtering, used for FILT_MIP to turn off mipmapping
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| 75 | FO_NONE,
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| 76 | /// Use the closest pixel
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| 77 | FO_POINT,
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| 78 | /// Average of a 2x2 pixel area, denotes bilinear for MIN and MAG, trilinear for MIP
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| 79 | FO_LINEAR,
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| 80 | /// Similar to FO_LINEAR, but compensates for the angle of the texture plane
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| 81 | FO_ANISOTROPIC
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| 82 | };
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| 83 |
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| 84 | /** Light shading modes. */
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| 85 | enum ShadeOptions
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| 86 | {
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| 87 | SO_FLAT,
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| 88 | SO_GOURAUD,
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| 89 | SO_PHONG
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| 90 | };
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| 91 |
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| 92 | /** Fog modes. */
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| 93 | enum FogMode
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| 94 | {
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| 95 | /// No fog. Duh.
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| 96 | FOG_NONE,
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| 97 | /// Fog density increases exponentially from the camera (fog = 1/e^(distance * density))
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| 98 | FOG_EXP,
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| 99 | /// Fog density increases at the square of FOG_EXP, i.e. even quicker (fog = 1/e^(distance * density)^2)
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| 100 | FOG_EXP2,
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| 101 | /// Fog density increases linearly between the start and end distances
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| 102 | FOG_LINEAR
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| 103 | };
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| 104 |
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| 105 | /** Hardware culling modes based on vertex winding.
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| 106 | This setting applies to how the hardware API culls triangles it is sent. */
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| 107 | enum CullingMode
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| 108 | {
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| 109 | /// Hardware never culls triangles and renders everything it receives.
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| 110 | CULL_NONE = 1,
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| 111 | /// Hardware culls triangles whose vertices are listed clockwise in the view (default).
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| 112 | CULL_CLOCKWISE = 2,
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| 113 | /// Hardware culls triangles whose vertices are listed anticlockwise in the view.
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| 114 | CULL_ANTICLOCKWISE = 3
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| 115 | };
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| 116 |
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| 117 | /** Manual culling modes based on vertex normals.
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| 118 | This setting applies to how the software culls triangles before sending them to the
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| 119 | hardware API. This culling mode is used by scene managers which choose to implement it -
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| 120 | normally those which deal with large amounts of fixed world geometry which is often
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| 121 | planar (software culling movable variable geometry is expensive). */
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| 122 | enum ManualCullingMode
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| 123 | {
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| 124 | /// No culling so everything is sent to the hardware.
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| 125 | MANUAL_CULL_NONE = 1,
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| 126 | /// Cull triangles whose normal is pointing away from the camera (default).
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| 127 | MANUAL_CULL_BACK = 2,
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| 128 | /// Cull triangles whose normal is pointing towards the camera.
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| 129 | MANUAL_CULL_FRONT = 3
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| 130 | };
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| 131 |
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| 132 | /** Enumerates the wave types usable with the Ogre engine. */
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| 133 | enum WaveformType
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| 134 | {
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| 135 | /// Standard sine wave which smoothly changes from low to high and back again.
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| 136 | WFT_SINE,
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| 137 | /// An angular wave with a constant increase / decrease speed with pointed peaks.
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| 138 | WFT_TRIANGLE,
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| 139 | /// Half of the time is spent at the min, half at the max with instant transition between.
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| 140 | WFT_SQUARE,
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| 141 | /// Gradual steady increase from min to max over the period with an instant return to min at the end.
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| 142 | WFT_SAWTOOTH,
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| 143 | /// Gradual steady decrease from max to min over the period, with an instant return to max at the end.
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| 144 | WFT_INVERSE_SAWTOOTH,
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| 145 | /// Pulse Width Modulation. Works like WFT_SQUARE, except the high to low transition is controlled by duty cycle.
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| 146 | /// With a duty cycle of 50% (0.5) will give the same output as WFT_SQUARE.
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| 147 | WFT_PWM
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| 148 | };
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| 149 |
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| 150 | /** The polygon mode to use when rasterising. */
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| 151 | enum PolygonMode
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| 152 | {
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| 153 | /// Only points are rendered.
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| 154 | PM_POINTS = 1,
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| 155 | /// Wireframe models are rendered.
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| 156 | PM_WIREFRAME = 2,
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| 157 | /// Solid polygons are rendered.
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| 158 | PM_SOLID = 3
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| 159 | };
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| 160 |
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| 161 | /** An enumeration of broad shadow techniques */
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| 162 | enum ShadowTechnique
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| 163 | {
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| 164 | /** No shadows */
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| 165 | SHADOWTYPE_NONE = 0x00,
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| 166 | /** Mask for additive shadows (not for direct use, use SHADOWTYPE_ enum instead)
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| 167 | */
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| 168 | SHADOWDETAILTYPE_ADDITIVE = 0x01,
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| 169 | /** Mask for modulative shadows (not for direct use, use SHADOWTYPE_ enum instead)
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| 170 | */
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| 171 | SHADOWDETAILTYPE_MODULATIVE = 0x02,
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| 172 | /** Mask for stencil shadows (not for direct use, use SHADOWTYPE_ enum instead)
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| 173 | */
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| 174 | SHADOWDETAILTYPE_STENCIL = 0x10,
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| 175 | /** Mask for texture shadows (not for direct use, use SHADOWTYPE_ enum instead)
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| 176 | */
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| 177 | SHADOWDETAILTYPE_TEXTURE = 0x20,
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| 178 |
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| 179 | /** Stencil shadow technique which renders all shadow volumes as
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| 180 | a modulation after all the non-transparent areas have been
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| 181 | rendered. This technique is considerably less fillrate intensive
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| 182 | than the additive stencil shadow approach when there are multiple
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| 183 | lights, but is not an accurate model.
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| 184 | */
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| 185 | SHADOWTYPE_STENCIL_MODULATIVE = 0x12,
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| 186 | /** Stencil shadow technique which renders each light as a separate
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| 187 | additive pass to the scene. This technique can be very fillrate
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| 188 | intensive because it requires at least 2 passes of the entire
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| 189 | scene, more if there are multiple lights. However, it is a more
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| 190 | accurate model than the modulative stencil approach and this is
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| 191 | especially apparant when using coloured lights or bump mapping.
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| 192 | */
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| 193 | SHADOWTYPE_STENCIL_ADDITIVE = 0x11,
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| 194 | /** Texture-based shadow technique which involves a monochrome render-to-texture
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| 195 | of the shadow caster and a projection of that texture onto the
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| 196 | shadow receivers as a modulative pass.
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| 197 | */
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| 198 | SHADOWTYPE_TEXTURE_MODULATIVE = 0x22,
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| 199 |
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| 200 | /** Texture-based shadow technique which involves a monochrome render-to-texture
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| 201 | of the shadow caster and a projection of that texture onto the
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| 202 | shadow receivers, built up per light as additive passes.
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| 203 | This technique can be very fillrate intensive because it requires numLights + 2
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| 204 | passes of the entire scene. However, it is a more accurate model than the
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| 205 | modulative approach and this is especially apparant when using coloured lights
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| 206 | or bump mapping.
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| 207 | */
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| 208 | SHADOWTYPE_TEXTURE_ADDITIVE = 0x21
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| 209 | };
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| 210 |
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| 211 | /** An enumeration describing which material properties should track the vertex colours */
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| 212 | typedef int TrackVertexColourType;
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| 213 | enum TrackVertexColourEnum {
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| 214 | TVC_NONE = 0x0,
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| 215 | TVC_AMBIENT = 0x1,
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| 216 | TVC_DIFFUSE = 0x2,
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| 217 | TVC_SPECULAR = 0x4,
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| 218 | TVC_EMISSIVE = 0x8
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| 219 | };
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| 220 |
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| 221 | /** Sort mode for billboard-set and particle-system */
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| 222 | enum SortMode
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| 223 | {
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| 224 | /** Sort by direction of the camera */
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| 225 | SM_DIRECTION,
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| 226 | /** Sort by distance from the camera */
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| 227 | SM_DISTANCE
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| 228 | };
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| 229 |
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| 230 | /** Defines the frame buffer types. */
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| 231 | enum FrameBufferType {
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| 232 | FBT_COLOUR = 0x1,
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| 233 | FBT_DEPTH = 0x2,
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| 234 | FBT_STENCIL = 0x4
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| 235 | };
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| 236 |
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| 237 |
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| 238 | typedef std::vector<Light*> LightList;
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| 239 |
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| 240 | typedef std::map<String, bool> UnaryOptionList;
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| 241 | typedef std::map<String, String> BinaryOptionList;
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| 242 |
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| 243 | /// Name / value parameter pair (first = name, second = value)
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| 244 | typedef std::map<String, String> NameValuePairList;
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| 245 |
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| 246 | /// Alias / Texture name pair (first = alias, second = texture name)
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| 247 | typedef std::map<String, String> AliasTextureNamePairList;
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| 248 |
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| 249 | template< typename T > struct TRect
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| 250 | {
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| 251 | T left, top, right, bottom;
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| 252 | TRect() {}
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| 253 | TRect( T const & l, T const & t, T const & r, T const & b )
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| 254 | : left( l ), top( t ), right( r ), bottom( b )
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| 255 | {
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| 256 | }
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| 257 | TRect( TRect const & o )
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| 258 | : left( o.left ), top( o.top ), right( o.right ), bottom( o.bottom )
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| 259 | {
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| 260 | }
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| 261 | TRect & operator=( TRect const & o )
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| 262 | {
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| 263 | left = o.left;
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| 264 | top = o.top;
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| 265 | right = o.right;
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| 266 | bottom = o.bottom;
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| 267 | return *this;
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| 268 | }
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| 269 | T width() const
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| 270 | {
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| 271 | return right - left;
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| 272 | }
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| 273 | T height() const
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| 274 | {
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| 275 | return bottom - top;
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| 276 | }
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| 277 | };
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| 278 |
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| 279 | /** Structure used to define a rectangle in a 2-D floating point space.
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| 280 | */
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| 281 | typedef TRect<float> FloatRect;
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| 282 |
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| 283 | /** Structure used to define a rectangle in a 2-D integer space.
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| 284 | */
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| 285 | typedef TRect< long > Rect;
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| 286 |
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| 287 | /** Structure used to define a box in a 3-D integer space.
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| 288 | Note that the left, top, and front edges are included but the right,
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| 289 | bottom and top ones are not.
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| 290 | */
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| 291 | struct Box
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| 292 | {
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| 293 | size_t left, top, right, bottom, front, back;
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| 294 | /// Parameterless constructor for setting the members manually
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| 295 | Box()
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| 296 | {
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| 297 | }
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| 298 | /** Define a box from left, top, right and bottom coordinates
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| 299 | This box will have depth one (front=0 and back=1).
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| 300 | @param l x value of left edge
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| 301 | @param t y value of top edge
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| 302 | @param r x value of right edge
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| 303 | @param b y value of bottom edge
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| 304 | @note Note that the left, top, and front edges are included
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| 305 | but the right, bottom and top ones are not.
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| 306 | */
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| 307 | Box( size_t l, size_t t, size_t r, size_t b ):
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| 308 | left(l),
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| 309 | top(t),
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| 310 | right(r),
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| 311 | bottom(b),
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| 312 | front(0),
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| 313 | back(1)
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| 314 | {
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| 315 | assert(right >= left && bottom >= top && back >= front);
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| 316 | }
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| 317 | /** Define a box from left, top, front, right, bottom and back
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| 318 | coordinates.
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| 319 | @param l x value of left edge
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| 320 | @param t y value of top edge
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| 321 | @param ff z value of front edge
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| 322 | @param r x value of right edge
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| 323 | @param b y value of bottom edge
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| 324 | @param bb z value of back edge
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| 325 | @note Note that the left, top, and front edges are included
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| 326 | but the right, bottom and top ones are not.
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| 327 | */
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| 328 | Box( size_t l, size_t t, size_t ff, size_t r, size_t b, size_t bb ):
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| 329 | left(l),
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| 330 | top(t),
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| 331 | right(r),
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| 332 | bottom(b),
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| 333 | front(ff),
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| 334 | back(bb)
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| 335 | {
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| 336 | assert(right >= left && bottom >= top && back >= front);
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| 337 | }
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| 338 |
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| 339 | /// Return true if the other box is a part of this one
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| 340 | bool contains(const Box &def) const
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| 341 | {
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| 342 | return (def.left >= left && def.top >= top && def.front >= front &&
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| 343 | def.right <= right && def.bottom <= bottom && def.back <= back);
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| 344 | }
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| 345 |
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| 346 | /// Get the width of this box
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| 347 | size_t getWidth() const { return right-left; }
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| 348 | /// Get the height of this box
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| 349 | size_t getHeight() const { return bottom-top; }
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| 350 | /// Get the depth of this box
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| 351 | size_t getDepth() const { return back-front; }
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| 352 | };
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| 353 |
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| 354 |
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| 355 |
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| 356 | /** Locate command-line options of the unary form '-blah' and of the
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| 357 | binary form '-blah foo', passing back the index of the next non-option.
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| 358 | @param numargs, argv The standard parameters passed to the main method
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| 359 | @param unaryOptList Map of unary options (ie those that do not require a parameter).
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| 360 | Should be pre-populated with, for example '-e' in the key and false in the
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| 361 | value. Options which are found will be set to true on return.
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| 362 | @param binOptList Map of binnary options (ie those that require a parameter
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| 363 | e.g. '-e afile.txt').
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| 364 | Should be pre-populated with, for example '-e' and the default setting.
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| 365 | Options which are found will have the value updated.
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| 366 | */
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| 367 | int _OgreExport findCommandLineOpts(int numargs, char** argv, UnaryOptionList& unaryOptList,
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| 368 | BinaryOptionList& binOptList);
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| 369 |
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| 370 | }
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| 371 |
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| 372 | #endif
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