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Maria Angelika-Nikita

Publications and source records attributed to Maria Angelika-Nikita.

2 recordsLinked to original sources

The Impact of Partner Expressions on Felt Emotion in the Iterated Prisoner's Dilemma: An Event-level Analysis

Social games like the prisoner's dilemma are often used to develop models of the role of emotion in social decision-making. Here we examine an understudied aspect of emotion in such games: how an individual's feelings are shaped by their partner's expressions. Prior research has tended to focus on other aspects of emotion. Research on felt-emotion has focused on how an individual's feelings shape how they treat their partner, or whether these feelings are authentically expressed. Research on expressed-emotion has focused on how an individual's decisions are shaped by their partner's expressions, without regard for whether these expressions actually evoke feelings. Here, we use computer-generated characters to examine how an individual's moment-to-moment feelings are shaped by (1) how they are treated by their partner and (2) what their partner expresses during this treatment. Surprisingly, we find that partner expressions are far more important than actions in determining self-reported feelings. In other words, our partner can behave in a selfish and exploitive way, but if they show a collaborative pattern of expressions, we will feel greater pleasure collaborating with them. These results also emphasize the importance of context in determining how someone will feel in response to an expression (i.e., knowing a partner is happy is insufficient; we must know what they are happy-at). We discuss the implications of this work for cognitive-system design, emotion theory, and methodological practice in affective computing.

cs.GT

Converting energy captured from blood flow into usable electric power: design optimisation

In this work, we attempt to optimize the design of an electromagnetic induction device that captures the energy from the arterial wall pulsation for the purpose of powering implantable medical devices. The artery comes through a flexible coil which is permitted to freely deform along with the artery in a magnetic field produced by two permanent ring magnets that are placed in parallel. As a result of the coil's motion in the magnetic field, an alternating voltage proportional to the velocity of the arterial wall is induced at the coil's terminals. The coil consists of a main loop which is aligned with the magnets' holes and a number of side loops fabricated using enameled coper wire 0.05mm in diameter. In an attempt to increase the output power of the device, different coil geometries were developed with varying numbers and sizes of side loops, using 3D printed molds. An experimental setup that mimics the blood flow and arterial wall deformation was used to assess the device performance. The acquired measurements demonstrated that the produced voltage and power can be notably increased by increasing the number and diameter of the coil's side loops.

physics.med-ph