仪器仪表学报
儀器儀錶學報
의기의표학보
CHINESE JOURNAL OF SCIENTIFIC INSTRUMENT
2014年
11期
2538-2549
,共12页
张慧杰%何欣婷%鲍宁%胡家义%马志强
張慧傑%何訢婷%鮑寧%鬍傢義%馬誌彊
장혜걸%하흔정%포저%호가의%마지강
隐式层次结构%多分辨率建模%物理弹坑模型%动态地形%形变区域
隱式層次結構%多分辨率建模%物理彈坑模型%動態地形%形變區域
은식층차결구%다분변솔건모%물리탄갱모형%동태지형%형변구역
connotative hierarchical structure%multi-resolution modeling%physical crater model%dynamic terrain%deformation area
针对动态地形弹坑模型可视化需求,提出一种实时可变地形建模方法。以隐式层次结构建立自适应多分辨率地形模型,结合物理弹坑模型,根据爆炸事件发生位置的不同,实时观测地形的形变效果。为了表现弹坑模型细节,采用全分辨率物理弹坑模型建模方法。根据入射方向和地势特征不同,提出了形变区域扩展算法,确定弹坑最小投影区域范围,在隐式层次结构上定义了活跃点,实现多分辨率地形与弹坑模型的无缝融合。以上方法在多个真实地形数据上进行了实验研究,结合不同地貌实现了基于物理弹坑的形变效果,结果表明形变后的地形模型满足空间连续性,符合虚拟环境对动态地形的仿真要求。
針對動態地形彈坑模型可視化需求,提齣一種實時可變地形建模方法。以隱式層次結構建立自適應多分辨率地形模型,結閤物理彈坑模型,根據爆炸事件髮生位置的不同,實時觀測地形的形變效果。為瞭錶現彈坑模型細節,採用全分辨率物理彈坑模型建模方法。根據入射方嚮和地勢特徵不同,提齣瞭形變區域擴展算法,確定彈坑最小投影區域範圍,在隱式層次結構上定義瞭活躍點,實現多分辨率地形與彈坑模型的無縫融閤。以上方法在多箇真實地形數據上進行瞭實驗研究,結閤不同地貌實現瞭基于物理彈坑的形變效果,結果錶明形變後的地形模型滿足空間連續性,符閤虛擬環境對動態地形的倣真要求。
침대동태지형탄갱모형가시화수구,제출일충실시가변지형건모방법。이은식층차결구건립자괄응다분변솔지형모형,결합물리탄갱모형,근거폭작사건발생위치적불동,실시관측지형적형변효과。위료표현탄갱모형세절,채용전분변솔물리탄갱모형건모방법。근거입사방향화지세특정불동,제출료형변구역확전산법,학정탄갱최소투영구역범위,재은식층차결구상정의료활약점,실현다분변솔지형여탄갱모형적무봉융합。이상방법재다개진실지형수거상진행료실험연구,결합불동지모실현료기우물리탄갱적형변효과,결과표명형변후적지형모형만족공간련속성,부합허의배경대동태지형적방진요구。
In order to meet the requirement of terrain dynamic modeling, a real-time modeling method for variable terrain is pro-posed. An adaptive multi-resolution model based on the connotative hierarchical structure is established, combined with physi-cal-crater model. According to the different explosion position, the real-time terrain deformation effects can be rendered. To keep the details of physical-crater, the grid model with full resolution is adopted to build the carter model. According to the different incident direction and terrain features, an algorithm about deformation region extension is presented. Furthermore, the minimum projection area of crater is determined, and then the active points on the connotative hierarchical structure are defined. After changing the state of active points, the seamless fusion between the multi-resolution terrain and the crater model is realized. The above methods are applied to many benchmark data with different landform. The result, the deformation terrain model can realize space continuity. The dynamic terrain modeling approach meets the requirements of virtual environment simulation.