首页> 外文会议>Fourth International Conference on Computing Anticipatory Systems (CASYS 2000), Aug 7-12, 2000, Liege, Belgium >Quantum Hologram and Relativistic Hodogram: Magnetic Resonance Tomography and Gravitational Wavelet Detection
【24h】

Quantum Hologram and Relativistic Hodogram: Magnetic Resonance Tomography and Gravitational Wavelet Detection

机译:量子全息图和相对论全息图:磁共振层析成像和引力小波检测

获取原文
获取原文并翻译 | 示例

摘要

Quantum holography is a well established theory of mathematical physics based on harmonic analysis on the Heisenberg Lie group G. The geometric quantization is performed by projectivization of the complexified coadjoint orbit picture of the unitary dual G of G in order to achieve a geometric adjustment of the quantum scenario to special relativity theory. It admits applications to various imaging modalities such as synthetic aperture radar (SAR) in the microwave range, and, most importantly for the field of non-invasive medical diagnosis, to the clinical imaging modality of magnetic resonance tomography (MRI) in the radio frequency range. Quantum holography explains the quantum teleportation phenomemon through Einstein―Podolsky―Rosen (EPR) channels which is a consequence of the non-locality of phase coherent quantum field theory, the concept of absolute simultaneity of special relativity theory which provides the Einstein equivalence of energy and Fitzgerald―Lorentz dilated mass, and the perfect quantum holographic replication process of molecular genetic information processing. It specifically reveals what was before unobservable in quantum optics, namely the interference phenomena of matter wavelets of Bose―Einstein condensates, and what was before unobservable in special relativity, namely the light in flight (LIF) recording processing by ultrafast laser pulse trains. Finally, it provides a Lie group theoretical approach to the Kruskal coordinatized Schwarzschild manifold of relativistic cosmology with large scale applications to general relativity theory such as gravitational instanton symmetries and the theory of black holes. The direct spinorial detection of gravitational wavelets emitted by the binary radio pulsar PSR 1913+16 and known only by anticipatory system computation so far will also be based on the principles of quantum holography applied to very large array (VLA) radio interferometers.
机译:量子全息术是基于Heisenberg Lie群G的谐波分析的成熟的数学物理理论。几何量化是通过对G的dual对偶G的复杂共轭轨道图进行投影来实现的,以实现对G的几何调整。狭义相对论的量子场景。它允许应用于各种成像方式,例如微波范围内的合成孔径雷达(SAR),最重要的是,对于非侵入性医学诊断领域,还可以应用于射频磁共振成像(MRI)的临床成像方式范围。量子全息通过爱因斯坦-波多尔斯基-罗森(EPR)通道解释了量子隐形传态,这是相干量子场论非局部性的结果,狭义相对论的绝对同时性概念提供了爱因斯坦的能量和菲茨杰拉德·洛伦兹(Fitzgerald-Lorentz)扩张了质量,实现了分子遗传信息处理的完美量子全息复制过程。它具体揭示了量子光学中以前无法观察到的东西,即玻色-爱因斯坦凝聚物的物质小波的干涉现象,以及狭义相对论之前无法观察到的东西,即超快激光脉冲序列对飞行中的光(LIF)记录的处理。最后,它提供了一个李群理论方法来解决相对论宇宙学的Kruskal协调的Schwarzschild流形,并广泛应用于广义相对论,例如引力瞬时子对称性和黑洞理论。迄今为止,仅由预期系统计算已知的,由二进制无线电脉冲星PSR 1913 + 16发射的引力子波的直接脊椎探测也将基于应用于大阵列(VLA)无线电干涉仪的量子全息原理。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号