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Nicolas Houel

Publications and source records attributed to Nicolas Houel.

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The Nocturnity Scale: Measuring the Sense of Being at Night in Virtual Urban Environments

Nighttime environments are increasingly used in virtual urban studies, yet darkness alone does not fully recreate the subjective sense of being at night. Prior work suggests that this experience depends not only on the absence of daylight, but also on lighting structure, low-light perception, human activity, soundscape, and self-related states. However, no existing tool directly assesses this scene-dependent subjective experience. This work introduces nocturnity as the feeling of being at night elicited by a scene and proposes a theory-driven framework structured into three subscales: perceptual, activity, and inner-state nocturnity. Based on this framework, we develop a first candidate questionnaire for virtual urban environments. Developed through a literature-informed process and reviewed by two urban lighting experts, the scale comprises 42 Likert-type items, including three diagnostic subscales and complementary global and time-related items. This work provides a first operational basis for comparing virtual urban scenes according to their perceived nocturnity and supports future empirical validation.

cs.HC

BRG.LifeMOD$^{TM}$ modeling and simulation of swimmers impulse during a grab start

The main aim of the study is to propose an approach for 3D modeling and simulation of swimmers impulse during a grab start. Four national level swimmers were investigated. For every swimmer, 3D model was generated in BRG.LifeMOD TM on the base of individual morphologic parameters and kinematic data obtained by high speed video camera and passive markers attached at the level of each important articulation. The proposed approach allows predicting swimmer's joint moments for each important articulation during the impulse phase of the grab start and to analyze the segmental coordination for each studied swimmer in order to optimize the performance. The model was successfully validated by comparing the predicted speed and power values with experimental ground reactions data collected in situ.

physics.med-ph