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YZ Sözlüğü

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23.060
terimler
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terimler

Particle

Individual agent in the swarm representing a potential solution, characterized by its position in the search space and its movement velocity.

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Swarm

Population of particles that collectively interact to explore the search space and converge toward optimal solutions through their social behavior.

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Velocity

Displacement vector of a particle in the search space, updated at each iteration based on its personal best position and the global best position.

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Position

Coordinates of a particle in the search space representing a specific solution to the optimization problem being addressed.

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Personal Best Position

Best solution found by an individual particle since the beginning of the algorithm, serving as local memory to guide its future movements.

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Global Best Position

Best solution discovered by the entire swarm, used as a reference point to attract all particles toward optimal regions.

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Inertia Coefficient

Parameter controlling the influence of a particle's previous velocity, allowing for a balance between global exploration and local exploitation in the search.

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Acceleration Coefficients

Parameters c1 and c2 weighting the influence of the personal best position and the global best position respectively on particle movement.

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Neighborhood

Subset of particles with which a given particle shares information, defining the communication structure within the swarm.

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Neighborhood Topology

Connection structure between particles determining how information flows in the swarm, influencing convergence speed and solution diversity.

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Convergence

Process by which swarm particles gradually tend towards a common region of the search space, indicating the stabilization of solutions.

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Constriction Factor

Multiplicative parameter ensuring algorithm convergence by controlling the amplitude of particle oscillations around optimal solutions.

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Diversification

Algorithm's ability to explore different regions of the search space to avoid local optima and discover new promising solutions.

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Intensification

Research phase concentrated around already discovered promising solutions to refine and improve the quality of local solutions.

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Objective Function

Mathematical function evaluating the quality of each particle position, serving as a criterion to guide swarm evolution towards optimal solutions.

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Search Space

Multidimensional domain containing all possible solutions of the optimization problem, in which particles move to find the optimum.

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