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DXRubyのCustomRenderTargetの動作確認。公式サンプルのspheretest.rbを弄らせてもらってるところ
#!ruby -Ku
# -*- mode: ruby; coding: utf-8 -*-
# Last updated: <2017/03/17 18:33:36 +0900>
#
# DXRuby 1.5.21dev以降で追加された CustomRenderTarget の動作確認
# 公式サンプル spheretest.rb を改造
require 'dxruby'
require 'json'
require 'pp'
# マテリアルクラス
class Material
attr_accessor :vbuf
attr_accessor :shader
attr_accessor :m
# 描画用HLSL
hlsl = <<EOS
float4x4 mWorld, mView, mProj;
float4 vLight;
struct VS_INPUT
{
float4 vPosition : POSITION0; // 頂点座標
float4 vNormal : NORMAL; // 法線ベクトル
float4 vDiffuse : COLOR0; // デフューズ色
};
struct VS_OUTPUT
{
float4 vPosition : POSITION; // 頂点座標
float3 vNormal : TEXCOORD2; // 法線
float4 vDiffuse : COLOR0; //デフューズ色
};
VS_OUTPUT VS(VS_INPUT v)
{
VS_OUTPUT output;
output.vPosition = mul(mul(mul(v.vPosition, mWorld), mView), mProj);
output.vNormal = mul(v.vNormal, mWorld).xyz;
output.vDiffuse = v.vDiffuse;
return output;
}
struct PS_INPUT
{
float3 vNormal : TEXCOORD2; // 法線
float4 vDiffuse : COLOR0; // デフューズ色
};
struct PS_OUTPUT
{
float4 vColor : COLOR0; // 最終的な出力色
};
PS_OUTPUT PS(PS_INPUT p)
{
PS_OUTPUT output;
float diffuse = max(dot(vLight, normalize(p.vNormal)), 0.0);
output.vColor.rgb = p.vDiffuse * diffuse + 0.1;
output.vColor.a = 1;
return output;
}
technique
{
pass
{
VertexShader = compile vs_2_0 VS();
PixelShader = compile ps_2_0 PS();
}
}
EOS
# Shader::Core生成
@@core = Shader::Core.new(hlsl,
mWorld: :float,
mView: :float,
mProj: :float,
vLight: :float)
def initialize
@vbuf = VertexBuffer.new([
[D3DDECLTYPE_FLOAT3, D3DDECLUSAGE_POSITION, 0],
[D3DDECLTYPE_FLOAT3, D3DDECLUSAGE_NORMAL, 0],
[D3DDECLTYPE_D3DCOLOR, D3DDECLUSAGE_COLOR, 0],
])
@m = Matrix.new
@shader = Shader.new(@@core)
end
end
# RenderTarget3Dクラス
class RenderTarget3D < CustomRenderTarget
attr_accessor :view, :proj, :light
def initialize(*)
super
@draw_data = [] # 描画予約的な配列
end
# CustomRenderTargetの描画メソッド
def custom_render(o)
# ビューポート設定
o.set_viewport(0, 0, width, height, 0, 1)
# 描画開始
o.begin_scene
# レンダーステート設定
o.set_render_state(D3DRS_CULLMODE, D3DCULL_CW)
o.set_render_state(D3DRS_ZENABLE, D3DZB_TRUE)
o.set_render_state(D3DRS_ZWRITEENABLE, 1) # bool値 TRUE=1, FALSE=0
# 描画予約を順番に処理する
@draw_data.each do |material|
# シェーダパラメータ設定
material.shader.mWorld = material.m
material.shader.mView = @view
material.shader.mProj = @proj
material.shader.vLight = @light
# シェーダパラメータのDirectXへの設定など面倒なことはusing_shaderがやってくれる
o.using_shader(material.shader) do
# 頂点バッファは複数指定できる
o.set_stream(material.vbuf)
o.draw_primitive(D3DPT_TRIANGLELIST, material.vbuf.vertex_count / 3)
end
end
# 描画終了
o.end_scene
# 描画予約のクリア
@draw_data.clear
end
def draw(material)
@draw_data << material
end
end
# モデルデータを用意
# tinywavefrontobj.rb で出力したjsonを読み込む
vbuf = []
File.open("sample.json") { |file|
hash = JSON.load(file)
vtx = hash["vertex"]
nml = hash["normal"]
col = hash["color"]
# 頂点配列、法線配列、カラー配列が分かれてるので、1頂点ずつ混ぜ混ぜする
0.step((vtx.size - 1), 3) do |i|
vbuf.concat([vtx[i+0], vtx[i+1], vtx[i+2]])
vbuf.concat([nml[i+0], nml[i+1], nml[i+2]])
vbuf.concat([col[i / 3]])
end
}
# ----------------------------------------
# 初期化
material = Material.new
material.vbuf.vertices = vbuf
# 画面サイズ
Window.resize(640, 480)
# RenderTarget3Dオブジェクト生成
rt3d = RenderTarget3D.new(Window.width, Window.height)
rt3d.view = Matrix.look_at(
Vector.new(0, 0, -2.0), # 視点位置
Vector.new(0, 0, 0), # 注視座標
Vector.new(0, 1, 0) # 上方向
)
rt3d.proj = Matrix.projection_fov(
60.0, # 視野角
Window.width.to_f / Window.height, # 画面比
0.5, # near clip
1000.0 # far clip
)
rt3d.light = Vector.new(0.5, 0.5, -1).normalize
# メインループ
Window.loop do
break if Input.keyPush?(K_ESCAPE)
# ライト位置をマウス座標を使って算出かつ設定
x = Input.mouse_x.fdiv(Window.width/2) - 1
y = -(Input.mouse_y.fdiv(Window.height/2) - 1)
rt3d.light = Vector.new(x, y, -1).normalize
# マテリアル(モデルデータ)を回転
material.m = material.m * Matrix.rotation_x(0.5)
material.m = material.m * Matrix.rotation_y(1.0)
rt3d.draw(material) # RenderTarget3Dにモデルを描画
Window.draw(0, 0, rt3d) # 画面に描画
end
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