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Glossario IA

Il dizionario completo dell'Intelligenza Artificiale

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Distribution-Aware Quantization

Quantization technique that adapts quantization levels based on the specific statistical distribution of neural network weights to minimize information loss.

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Statistical Weight Distribution

Analysis of the probabilistic distribution of weights in an AI model, essential for optimizing adaptive quantization strategy.

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Non-Uniform Quantization

Quantization method using variable-sized intervals to better represent high-density regions of the weight distribution.

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Kurtosis-Aware Quantization

Quantization approach that considers the flatness of the weight distribution to optimize quantization bit allocation.

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Skewness-Optimized Quantization

Technique adapting the quantization strategy based on the asymmetry of the model's weight distribution.

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Percentile-Based Quantization

Method using weight distribution percentiles to define optimal quantization bounds.

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Dynamic Range Calibration

Process of adjusting the quantization range based on the statistical characteristics of the activation distribution.

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Gaussian Mixture Quantization

Technique modeling the weight distribution as a mixture of Gaussians to optimize the quantization strategy.

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Heavy-Tail Distribution Quantization

Specialized method for efficiently quantifying distributions exhibiting heavy tails characteristic of deep networks.

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Entropy-Constrained Quantization

Approach optimizing quantization under entropy constraint to preserve the statistical characteristics of the original distribution.

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Variance-Adaptive Quantization

Technique dynamically adjusting quantization parameters according to local weight variance in different layers.

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Moment-Based Quantization

Method using statistical moments (mean, variance, skewness, kurtosis) to optimize the quantization strategy.

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Probabilistic Quantization

Stochastic quantization approach preserving the statistical properties of the original weight distribution.

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Layer-Wise Distribution Analysis

Individual analysis of weight distributions per layer for optimized and adaptive quantization.

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Distribution Matching Quantization

Technique aiming to minimize divergence between the quantized distribution and the original weight distribution.

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Outlier-Aware Quantization

Method identifying and specifically handling extreme values in the distribution for robust quantization.

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Adaptive Bit Allocation

Strategy distributing quantization bits unevenly according to the complexity of the distribution in different regions.

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KL-Divergence Quantization

Quantization optimization by minimizing the Kullback-Leibler divergence between original and quantized distributions.

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