Systems Engineering Neural Network Model Essay Example

Systems Engineering: Neural Network Model Essay Example

Systems Engineering Neural Network Model Essay ExampleSystems Engineering: Neural Network Model Essay Assignment Brief

Title: Nonlinear Dynamic Artificial Neural Network Model for Human-Centric Systems

Overview:

In this assignment, you will explore the application of a nonlinear dynamic artificial neural network model for memory in the context of complex and dynamic human-centric systems. You will analyze key aspects of the model, including weighting, bipolar pairs, two interconnected layers, and three types of attractors, as described in the reference material by Chartier, Renaud, and Boukadoum (2008). Your task is to determine whether this model is suitable for selected complex and dynamic human-centric systems and to articulate how these aspects either support or challenge its applicability.

Understanding Systems Engineering: Neural Network Model Essay Assignment:

Context and Background:

Nonlinearity has gained prominence in various fields such as psychology, neuroscience, and cognitive science due to its ability to address the complexity of human neural mechanisms (Brivio et al., 2018). The nonlinear dynamic artificial neural network model for memory offers a bridge between behavioral memory models and biological memory neural models. It is characterized by specific features that make it a potential tool for understanding complex human-centric systems.

Key Aspects to Investigate:
  • Weighting and Interconnected Layers: Examine how weighting matrices W and V are utilized in the model for monitoring iterations. Investigate the role of the two interconnected layers and the bidirectional flow of information between them. Compare these features to traditional neural network designs and assess their flexibility and significance.
  • Three Types of Attractors: Explore the three types of attractors employed by the model: region-constrained, multi-valued, and aperiodic. Discuss their significance in simulating human development and memory. Analyze how the model adapts to these attractors and produces real-time values without continuous experimenter intervention.

The Student’s Role:

As a student undertaking this assignment, your role is to:

  • Review the Reference Material: Carefully study the paper by Chartier, Renaud, and Boukadoum (2008), titled “A nonlinear dynamic artificial neural network model of memory” (available at https://doi.org/10.1016/j.newideapsych.2007.07.005). This paper provides essential background information on the neural network model and its key components.
  • Analyze the Model: Analyze the nonlinear dynamic artificial neural network model for memory as described in the reference material. Pay specific attention to the aspects of weighting, bipolar pairs, two interconnected layers, and the three types of attractors.
  • Evaluate Suitability: Based on your analysis, make an informed judgment regarding the model’s suitability for selected complex and dynamic human-centric systems. Provide evidence to support your evaluation, considering how the model aligns with the dynamics of organic brain models and any potential challenges it may face.
  • Consider NDS Principles: Discuss whether the model satisfies the principles of the Nonlinear Dynamic Systems (NDS) approach to psychology, as recommended by Brivio et al. (2018). Explain how adherence to NDS principles may facilitate the model’s ability to bridge the gap between brain processes and human actions.

Introduction

Nonlinearity plays a pivotal role in understanding complex human phenomena across various domains such as psychology, neuroscience, and cognitive science (Brivio et al., 2018). The intricate nature of the human neural mechanism necessitates innovative approaches to decipher decision-making processes. Chartier, Renaud, and Boukadoum (2008) present a nonlinear dynamic artificial neural network model for memory, offering a bridge between behavioral memory models and biological memory neural models. In this essay, we explore the suitability of this model for selected complex and dynamic human-centric systems. We will focus on key aspects, including weighting, bipolar pairs, two interconnected layers, and three types of attractors, and evaluate how these aspects support or challenge its applicability.

Weighting and Interconnected Layers

The model employs weighting matrices, W and V, to facilitate network iterations (Ghiassi & Nangoy, 2009). It consists of two interconnected layers that exchange processed information between the matrices. Information flows from W to V, and V returns the information in a repetitive process (Chartier et al., 2008). This bi-directional operation makes it a bottom-up and top-down process, offering flexibility in the dimensions of the two layers. Unlike conventional BAM designs, this model does not require one side’s weight vector to be the inversion of the other side (Brivio et al., 2018). Moreover, each unit in the network represents a brain population, not an individual neuron.

Three Types of Attractors

The model employs three types of attractors during operation: region-constrained, multi-valued, and aperiodic (Ghiassi & Nangoy, 2009). These attractors play a crucial role in simulating human development, and their stability is vital. Notably, the model operates autonomously, adapting to attractors and producing real-time values without the need for constant experimenter intervention (Brivio et al., 2018).

Suitability for Complex and Dynamic Human-Centric Systems

The model’s ability to process multi-valued stimuli aligns well with the dynamic nature of organic brain models. This feature makes it suitable for selected complex and dynamic human-centric systems. Additionally, the model exhibits characteristics recommended in the Nonlinear Dynamic Systems (NDS) approach to psychology (Brivio et al., 2018). By satisfying NDS features, the model can bridge the gap between brain processes and human actions.

Conclusion

Chartier, Renaud, and Boukadoum’s nonlinear dynamic artificial neural network model for memory presents a promising approach to understanding complex human-centric systems. Its utilization of weighting matrices, interconnected layers, and three types of attractors offers a flexible and adaptable framework. The model’s capacity to process multi-valued stimuli and adhere to NDS principles positions it as a valuable tool for studying complex and dynamic human phenomena. As we continue to explore the intricacies of human behavior and cognition, this model may play a pivotal role in advancing our understanding of human-centric systems.

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