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2 Publications

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    Card Lab
    09/01/09 | Flight dynamics and control of evasive maneuvers: the fruit fly’s takeoff.
    Zabala FA, Card GM, Fontaine EI, Dickinson MH, Murray RM
    IEEE Transactions on Bio-Medical Engineering. 2009 Sep;56(9):2295-8. doi: 10.1109/TBME.2009.2027606

    We have approached the problem of reverse-engineering the flight control mechanism of the fruit fly by studying the dynamics of the responses to a visual stimulus during takeoff. Building upon a prior framework [G. Card and M. Dickinson, J. Exp. Biol., vol. 211, pp. 341-353, 2008], we seek to understand the strategies employed by the animal to stabilize attitude and orientation during these evasive, highly dynamical maneuvers. As a first step, we consider the dynamics from a gray-box perspective: examining lumped forces produced by the insect’s legs and wings. The reconstruction of the flight initiation dynamics, based on the unconstrained motion formulation for a rigid body, allows us to assess the fly’s responses to a variety of initial conditions induced by its jump. Such assessment permits refinement by using a visual tracking algorithm to extract the kinematic envelope of the wings [E. I. Fontaine, F. Zabala, M. Dickinson, and J. Burdick, "Wing and body motion during flight initiation in Drosophila revealed by automated visual tracking," submitted for publication] in order to estimate lift and drag forces [F. Zabala, M. Dickinson, and R. Murray, "Control and stability of insect flight during highly dynamical maneuvers," submitted for publication], and recording actual leg-joint kinematics and using them to estimate jump forces [F. Zabala, "A bio-inspired model for directionality control of flight initiation," to be published.]. In this paper, we present the details of our approach in a comprehensive manner, including the salient results.

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    Card Lab
    01/27/09 | Dynamics of escaping flight initiations of Drosophila melanogaster.
    Zabalax FA, Card GM, Fontaine EI, Murray RM, Dickinson MH
    2nd IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics. 2008:. doi: 10.1109/BIOROB.2008.4762921

    We present a reconstruction of the dynamics of flight initiation from kinematic data extracted from high-speed video recordings of the fruit fly Drosophila melanogaster. The dichotomy observed in this insect’s flight initiation sequences, generated by the presence or absence of visual stimuli, clearly generates two contrasting sets of dynamics once the flies become airborne. By calculating reaction forces and moments using the unconstrained motion formulation for a rigid body, we assess the fly’s responses amidst these two dynamic patterns as a step towards refining our understanding of insect flight control.

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