webgl2_multiple_rendertargets.html 6.3 KB

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  1. <!DOCTYPE html>
  2. <html lang="en">
  3. <head>
  4. <title>three.js webgl - Multiple Render Targets</title>
  5. <meta charset="utf-8">
  6. <meta name="viewport" content="width=device-width, user-scalable=no, minimum-scale=1.0, maximum-scale=1.0">
  7. <link type="text/css" rel="stylesheet" href="main.css">
  8. <!-- Write to G-Buffer -->
  9. <script id="gbuffer-vert" type="x-shader/x-vertex">
  10. in vec3 position;
  11. in vec3 normal;
  12. in vec2 uv;
  13. out vec3 vNormal;
  14. out vec2 vUv;
  15. uniform mat4 modelViewMatrix;
  16. uniform mat4 projectionMatrix;
  17. uniform mat3 normalMatrix;
  18. void main() {
  19. vUv = uv;
  20. // get smooth normals
  21. vec4 mvPosition = modelViewMatrix * vec4( position, 1.0 );
  22. vec3 transformedNormal = normalMatrix * normal;
  23. vNormal = normalize( transformedNormal );
  24. gl_Position = projectionMatrix * mvPosition;
  25. }
  26. </script>
  27. <script id="gbuffer-frag" type="x-shader/x-fragment">
  28. precision highp float;
  29. precision highp int;
  30. layout(location = 0) out vec4 gColor;
  31. layout(location = 1) out vec4 gNormal;
  32. uniform sampler2D tDiffuse;
  33. uniform vec2 repeat;
  34. in vec3 vNormal;
  35. in vec2 vUv;
  36. void main() {
  37. // write color to G-Buffer
  38. gColor = texture( tDiffuse, vUv * repeat );
  39. // write normals to G-Buffer
  40. gNormal = vec4( normalize( vNormal ), 0.0 );
  41. }
  42. </script>
  43. <!-- Read G-Buffer and render to screen -->
  44. <script id="render-vert" type="x-shader/x-vertex">
  45. in vec3 position;
  46. in vec2 uv;
  47. out vec2 vUv;
  48. uniform mat4 modelViewMatrix;
  49. uniform mat4 projectionMatrix;
  50. void main() {
  51. vUv = uv;
  52. gl_Position = projectionMatrix * modelViewMatrix * vec4( position, 1.0 );
  53. }
  54. </script>
  55. <script id="render-frag" type="x-shader/x-fragment">
  56. precision highp float;
  57. precision highp int;
  58. layout(location = 0) out vec4 pc_FragColor;
  59. in vec2 vUv;
  60. uniform sampler2D tDiffuse;
  61. uniform sampler2D tNormal;
  62. void main() {
  63. vec3 diffuse = texture( tDiffuse, vUv ).rgb;
  64. vec3 normal = texture( tNormal, vUv ).rgb;
  65. pc_FragColor.rgb = mix( diffuse, normal, step( 0.5, vUv.x ) );
  66. pc_FragColor.a = 1.0;
  67. }
  68. </script>
  69. </head>
  70. <body>
  71. <div id="info">
  72. <a href="http://threejs.org" target="_blank">threejs</a> - WebGL - Multiple Render Targets<br/>
  73. Renders geometry into a G-Buffer.<br/>
  74. Visualized here is the color and normal data from the G-Buffer.<br/>
  75. Created by <a href="http://twitter.com/mattdesl" target="_blank">@mattdesl</a>.
  76. </div>
  77. <!-- Import maps polyfill -->
  78. <!-- Remove this when import maps will be widely supported -->
  79. <script async src="https://unpkg.com/[email protected]/dist/es-module-shims.js"></script>
  80. <script type="importmap">
  81. {
  82. "imports": {
  83. "three": "../build/three.module.js"
  84. }
  85. }
  86. </script>
  87. <script type="module">
  88. import * as THREE from 'three';
  89. import WebGL from './jsm/capabilities/WebGL.js';
  90. import { OrbitControls } from './jsm/controls/OrbitControls.js';
  91. let camera, scene, renderer, controls;
  92. let renderTarget;
  93. let postScene, postCamera;
  94. init();
  95. function init() {
  96. if ( WebGL.isWebGL2Available() === false ) {
  97. document.body.appendChild( WebGL.getWebGL2ErrorMessage() );
  98. return;
  99. }
  100. renderer = new THREE.WebGLRenderer();
  101. renderer.setPixelRatio( window.devicePixelRatio );
  102. renderer.setSize( window.innerWidth, window.innerHeight );
  103. document.body.appendChild( renderer.domElement );
  104. // Create a multi render target with Float buffers
  105. renderTarget = new THREE.WebGLMultipleRenderTargets(
  106. window.innerWidth * window.devicePixelRatio,
  107. window.innerHeight * window.devicePixelRatio,
  108. 2
  109. );
  110. for ( let i = 0, il = renderTarget.texture.length; i < il; i ++ ) {
  111. renderTarget.texture[ i ].minFilter = THREE.NearestFilter;
  112. renderTarget.texture[ i ].magFilter = THREE.NearestFilter;
  113. renderTarget.texture[ i ].type = THREE.FloatType;
  114. }
  115. // Name our G-Buffer attachments for debugging
  116. renderTarget.texture[ 0 ].name = 'diffuse';
  117. renderTarget.texture[ 1 ].name = 'normal';
  118. // Scene setup
  119. scene = new THREE.Scene();
  120. camera = new THREE.PerspectiveCamera( 70, window.innerWidth / window.innerHeight, 1, 10 );
  121. camera.position.z = 4;
  122. const diffuse = new THREE.TextureLoader().load(
  123. 'textures/brick_diffuse.jpg',
  124. function () {
  125. // ready to render
  126. render();
  127. }
  128. );
  129. diffuse.wrapS = diffuse.wrapT = THREE.RepeatWrapping;
  130. scene.add( new THREE.Mesh(
  131. new THREE.TorusKnotGeometry( 1, 0.3, 128, 64 ),
  132. new THREE.RawShaderMaterial( {
  133. vertexShader: document.querySelector( '#gbuffer-vert' ).textContent.trim(),
  134. fragmentShader: document.querySelector( '#gbuffer-frag' ).textContent.trim(),
  135. uniforms: {
  136. tDiffuse: { value: diffuse },
  137. repeat: { value: new THREE.Vector2( 5, 0.5 ) }
  138. },
  139. glslVersion: THREE.GLSL3
  140. } )
  141. ) );
  142. // PostProcessing setup
  143. postScene = new THREE.Scene();
  144. postCamera = new THREE.OrthographicCamera( - 1, 1, 1, - 1, 0, 1 );
  145. postScene.add( new THREE.Mesh(
  146. new THREE.PlaneGeometry( 2, 2 ),
  147. new THREE.RawShaderMaterial( {
  148. vertexShader: document.querySelector( '#render-vert' ).textContent.trim(),
  149. fragmentShader: document.querySelector( '#render-frag' ).textContent.trim(),
  150. uniforms: {
  151. tDiffuse: { value: renderTarget.texture[ 0 ] },
  152. tNormal: { value: renderTarget.texture[ 1 ] },
  153. },
  154. glslVersion: THREE.GLSL3
  155. } )
  156. ) );
  157. // Controls
  158. controls = new OrbitControls( camera, renderer.domElement );
  159. controls.addEventListener( 'change', render );
  160. controls.enableZoom = false;
  161. controls.screenSpacePanning = true;
  162. window.addEventListener( 'resize', onWindowResize );
  163. }
  164. function onWindowResize() {
  165. camera.aspect = window.innerWidth / window.innerHeight;
  166. camera.updateProjectionMatrix();
  167. renderer.setSize( window.innerWidth, window.innerHeight );
  168. const dpr = renderer.getPixelRatio();
  169. renderTarget.setSize( window.innerWidth * dpr, window.innerHeight * dpr );
  170. render();
  171. }
  172. function render() {
  173. // render scene into target
  174. renderer.setRenderTarget( renderTarget );
  175. renderer.render( scene, camera );
  176. // render post FX
  177. renderer.setRenderTarget( null );
  178. renderer.render( postScene, postCamera );
  179. }
  180. </script>
  181. </body>
  182. </html>