Methods for shape analysis of landmark data from articulated structures

被引:0
|
作者
Adams, DC [1 ]
机构
[1] SUNY Stony Brook, Dept Ecol & Evolut, Stony Brook, NY 11794 USA
关键词
articulation; Burnaby's size correction; morphometrics; thin-plate spline;
D O I
暂无
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Landmark-based geometric morphometric methods are powerful tools in the study of size and shape. These methods allow one to describe the shape of rigid structures using a set of variables that can be used for statistical hypothesis testing, and to generate graphical representations of shape differences as deformations. However, when the landmarks chosen for an analysis span multiple rigid structures that articulate, variation describing the position of landmarks on one structure relative to those on another is also present in the data. In this paper, I develop three novel methods to remove the effects of arbitrary positioning of articulated structures. The separate subset method constructs shape variables for each subset of landmarks separately, then combines the resulting information. The fixed angle method rotates one subset of landmarks so the angle between subsets is invariant among specimens, and then treats them as a rigid structure for the shape analyses. The orthogonal projection method estimates the distortion due to the effects of articulation motion, approximates it with a vector, and then removes this dimension from the shape data before statistical analysis. I describe each of these methods in detail, and demonstrate their use on a data set containing landmarks from skulls and lower jaws from several populations of the threespine stickleback, Gasterosteus aculeatus. The results using all methods are compared to previous findings and to each other, and the implications for studies of functional morphology are discussed.
引用
收藏
页码:959 / 970
页数:12
相关论文
共 50 条
  • [41] Landmark-Based Shape Analysis of the Brain: An Error Study
    Chollet, Madeleine B.
    Aldridge, Kristina
    Pangborn, Nicole
    Weinberg, Seth
    Nopoulos, Peg
    DeLeon, Valerie B.
    FASEB JOURNAL, 2011, 25
  • [42] Impact of landmark reliability on the planar Procrustes analysis of tooth shape
    Robinson, DL
    Blackwell, PG
    Stillman, EC
    Brook, AH
    ARCHIVES OF ORAL BIOLOGY, 2002, 47 (07) : 545 - 554
  • [43] Landmark-free statistical analysis of the shape of plant leaves
    Laga, Hamid
    Kurtek, Sebastian
    Srivastava, Anuj
    Miklavcic, Stanley J.
    JOURNAL OF THEORETICAL BIOLOGY, 2014, 363 : 41 - 52
  • [44] Studying ontogenetic trajectories using resampling methods and landmark data
    Sheets, H. David
    Zelditch, Miriam L.
    HYSTRIX-ITALIAN JOURNAL OF MAMMALOGY, 2013, 24 (01): : 67 - 73
  • [45] An objective minimal constraint formulation for the analysis of elastic articulated structures
    Greco, L.
    Castello, D.
    Cuomo, M.
    COMPUTERS & STRUCTURES, 2025, 305
  • [46] Influence analysis of joints on nonlinear dynamic characteristics of articulated structures
    Guo, H. (ghwhit@163.com), 1600, Chinese Society of Astronautics (35):
  • [47] Tensor Landmark Analysis With Application to ADNI data
    Park, Sung Hee
    Zhou, Ruiwen
    Zhang, Xin
    Li, Liang
    Liu, Lei
    STAT, 2024, 13 (04):
  • [48] Bootstrap inference for mean reflection shape and size-and-shape with three-dimensional landmark data
    Preston, S. P.
    Wood, Andrew T. A.
    BIOMETRIKA, 2011, 98 (01) : 49 - 63
  • [49] Damage detection in structures: from mode shape to frequency response function methods
    Maia, NMM
    Silva, JMM
    Almas, EAM
    Sampaio, RPC
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2003, 17 (03) : 489 - 498
  • [50] Shape, Pose and Density Statistical Model for 3D Reconstruction of Articulated Structures from X-Ray Images
    Fotsin, Ted Julien Tchinde
    Vazquez, Carlos
    Cresson, Thierry
    De Guise, Jacques
    2019 41ST ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2019, : 2748 - 2751