FILM AND TELEVISION SPECIAL EFFECTS AI SYSTEM INTEGRATING COMPUTER ARTIFICIAL INTELLIGENCE AND BIG DATA TECHNOLOGY

被引:0
作者
JU Y.A.O. [1 ]
WEI G. [1 ]
机构
[1] Anhui University of Finance and Economics, Anhui, Bengbu
来源
Scalable Computing | 2024年 / 25卷 / 04期
关键词
3D special effects; Collision avoidance; Film and television; Particle swarm optimization; Particle system; Special effects animation;
D O I
10.12694/scpe.v25i4.2825
中图分类号
学科分类号
摘要
Particle systems can achieve many scenarios that are difficult to achieve in the field or expensive in reality. In this paper, the requirements of 3D film special effects and the design process of particle systems are studied. Unity3D engine was used to simulate 3D movie special effects. Then, the motion trajectory planning of 3D video group animation characters based on particle swarm optimization is proposed. Then, the system models the animated characters’ moving track to achieve the realism’s dynamic effect. This project intends to use the gravity optimization method for particle swarm optimization. The aim is to overcome the optimization difficulty caused by particle swarm optimization, which is easy to fall into local extreme values. Finally, the generated trajectory information is input into the 3D simulation system for conflict detection and clustering tests. Experiments show that the proposed algorithm can effectively render memorable scenes such as movies and TV. The picture has a high real-time frame rate and is realistic. © (2024), SCPE.
引用
收藏
页码:2532 / 2539
页数:7
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  • [1] Droguet B. E., Liang H. L., Frka-Petesic B., Parker R. M., De Volder M. F., Baumberg J. J., Vignolini S., Large-scale fabrication of structurally coloured cellulose nanocrystal films and effect pigments, Nature materials, 21, 3, pp. 352-358, (2022)
  • [2] Lisuzzo L., Caruso M. R., Cavallaro G., Milioto S., Lazzara G., Hydroxypropyl cellulose films filled with halloysite nanotubes/wax hybrid microspheres, Industrial & Engineering Chemistry Research, 60, 4, pp. 1656-1665, (2021)
  • [3] Wu X., Toe C. Y., Su C., Ng Y. H., Amal R., Scott J., Preparation of Bi-based photocatalysts in the form of powdered particles and thin films: a review, Journal of Materials Chemistry A, 8, 31, pp. 15302-15318, (2020)
  • [4] Cui Y., Duan W., Jin Y., Wo F., Xi F., Wu J., Ratiometric fluorescent nanohybrid for noninvasive and visual monitoring of sweat glucose, ACS sensors, 5, 7, pp. 2096-2105, (2020)
  • [5] Franklin D., He Z., Mastranzo Ortega P., Safaei A., Cencillo-Abad P., Wu S. T., Chanda D., Self-assembled plasmonics for angle-independent structural color displays with actively addressed black states, Proceedings of the National Academy of Sciences, 117, 24, pp. 13350-13358, (2020)
  • [6] Kim I., Viswanathan K., Kasi G., Thanakkasaranee S., Sadeghi K., Seo J., ZnO nanostructures in active antibacterial food packaging: Preparation methods, antimicrobial mechanisms, safety issues, future prospects, and challenges, Food Reviews International, 38, 4, pp. 537-565, (2022)
  • [7] Tegunov D., Xue L., Dienemann C., Cramer P., Mahamid J., Multi-particle cryo-EM refinement with M visualizes ribosome-antibiotic complex at 3.5 Å in cells, Nature Methods, 18, 2, pp. 186-193, (2021)
  • [8] Hebner T. S., Maurer-Jones M. A., Characterizing microplastic size and morphology of photodegraded polymers placed in simulated moving water conditions, Environmental Science: Processes & Impacts, 22, 2, pp. 398-407, (2020)
  • [9] Gerashi E., Alizadeh R., Langdon T. G., Effect of crystallographic texture and twinning on the corrosion behavior of Mg alloys: A review, Journal of Magnesium and Alloys, 10, 2, pp. 313-325, (2022)
  • [10] Li Y., Diddens C., Segers T., Wijshoff H., Versluis M., Lohse D., Evaporating droplets on oil-wetted surfaces: Suppression of the coffee-stain effect, Proceedings of the National Academy of Sciences, 117, 29, pp. 16756-16763, (2020)