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    Offset voltage drifts in dual neural network-based k-winner-take-all (DNN- k WTA) models are analyzed. This study provides convergence conditions and operational probabilities for DNN- k WTA networks with bounded TLU drifts.

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    Area of Science:

    • Artificial Intelligence
    • Neural Networks
    • Analog Computing

    Background:

    • Dual neural network-based k-winner-take-all (DNN- k WTA) models identify the k largest inputs.
    • Offset voltage drifts in threshold logic units (TLUs) can impact DNN- k WTA operational correctness.
    • Existing research often assumes specific drift distributions, limiting applicability.

    Purpose of the Study:

    • To analyze the operational correctness of DNN- k WTA networks considering bounded TLU offset voltage drifts.
    • To investigate both time-invariant and time-varying drift scenarios.
    • To derive convergence conditions, operational probabilities, and convergence time metrics.

    Main Methods:

    • Theoretical analysis of DNN- k WTA network states under bounded TLU drifts ([-∆, ∆]).
    • Derivation of sufficient conditions for correct network operation.
    • Probabilistic analysis for uniformly distributed inputs and computation of convergence time.

    Main Results:

    • Convergence of the DNN- k WTA network state is proven for the time-invariant drift case.
    • A lower bound for proper network operation probability is established as (1-2∆)n for uniformly distributed inputs.
    • Methods for computing exact convergence time, mean, and variance are derived, applicable to both drift cases.

    Conclusions:

    • The study provides robust theoretical guarantees for DNN- k WTA network operation despite TLU drifts.
    • Derived metrics offer insights into the network's stability and operational speed.
    • Simulation experiments validate the theoretical findings, confirming the model's practical relevance.