Integrated perturbation theory for cosmological tensor fields. I. Basic formulation

被引:0
|
作者
Matsubara, Takahiko [1 ,2 ]
机构
[1] High Energy Accelerator Res Org KEK, Inst Particle & Nucl Studies, Oho 1-1, Tsukuba 3050801, Japan
[2] SOKENDAI, Grad Inst Adv Studies, Tsukuba 3050801, Japan
关键词
LARGE-SCALE BIAS; GRAVITATIONAL-INSTABILITY; PARTICLE TRAJECTORIES; ANGULAR-MOMENTUM; REAL; GALAXIES; UNIVERSE; SPACE; PEAKS;
D O I
10.1103/PhysRevD.110.063543
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
In order to extract maximal information about cosmology from the large-scale structure of the Universe, one needs to use every bit of signal that can be observed. Beyond the spatial distributions of astronomical objects, the spatial correlations of tensor fields, such as galaxy spins and shapes, are ones of promising sources that can be accessed in the era of large surveys in the near future. The perturbation theory is a powerful tool to analytically describe the behaviors and evolutions of correlation statistics on large scales for a given cosmology. In this paper, we formulate a nonlinear perturbation theory of tensor fields in general, based on the formulation of integrated perturbation theory for the scalar-valued bias, generalizing it to include the tensor-valued bias. To take advantage of rotational symmetry, the formalism is constructed on the basis of the irreducible decomposition of tensors, identifying physical variables which are invariant under the rotation of the coordinates system.
引用
收藏
页数:51
相关论文
共 50 条
  • [21] Density-functional-theory calculations of matter in strong magnetic fields. I. Atoms and molecules
    Medin, Zach
    Lai, Dong
    PHYSICAL REVIEW A, 2006, 74 (06):
  • [22] Asymptotics with a positive cosmological constant: I. Basic framework
    Ashtekar, Abhay
    Bonga, Beatrice
    Kesavan, Aruna
    CLASSICAL AND QUANTUM GRAVITY, 2015, 32 (02)
  • [23] BASIC RADIOGRAPHY .I. BASIC THEORY AND PRACTICE
    DOO, B
    NON-DESTRUCTIVE TESTING, 1969, 2 (03): : 161 - &
  • [24] Ultrasonic instrumentation for measurements in high magnetic fields. I. Continuous magnetic fields
    Suslov, A
    Sarma, BK
    Feller, J
    Ketterson, J
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2006, 77 (03):
  • [25] Embedded crack model:: I.: basic formulation
    Jirásek, M
    Zimmermann, T
    INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2001, 50 (06) : 1269 - 1290
  • [26] Food processing by pulsed electric fields. I. Physical aspects
    Barsotti, L
    Merle, P
    Cheftel, JC
    FOOD REVIEWS INTERNATIONAL, 1999, 15 (02) : 163 - 180
  • [27] THEORY OF INTERACTION OF VACANCIES WITH STRESS FIELDS IN METALS .I. DERIVATION OF BASIC EQUATIONS
    GIRIFALCO, LA
    KUHLMANNWILSDORF, D
    JOURNAL OF APPLIED PHYSICS, 1964, 35 (02) : 438 - &
  • [28] Galactic Magnetic Fields. I. Theoretical Model and Scaling Relations
    Chamandy, Luke
    Nazareth, Rion Glenn
    Santhosh, Gayathri
    ASTROPHYSICAL JOURNAL, 2024, 966 (01):
  • [29] Using Perturbation theory to reduce noise in diffusion tensor fields
    Bansal, Ravi
    Staib, Lawrence H.
    Xu, Dongrong
    Laine, Andrew F.
    Liu, Jun
    Peterson, Bradley S.
    MEDICAL IMAGE ANALYSIS, 2009, 13 (04) : 580 - 597
  • [30] Cosmological Perturbation Analysis of Nonminimal Derivative Coupling of Scalar and Tensor Fields in Five Dimensions
    Hikmawan, Getbogi
    Suroso, Agus
    Zen, Freddy P.
    5TH INTERNATIONAL CONFERENCE ON MATHEMATICS AND NATURAL SCIENCES (ICMNS 2014), 2015, 1677