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Stochastic Differential Equation (SDE)

Differential equation that includes a random noise term, used in score-based models to define a continuous diffusion process that transforms data into noise.

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Reverse-time SDE

Stochastic process that reverses diffusion using the learned score, allowing generation of samples from noise by going backwards in time.

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Noise Conditional Score Network (NCSN)

Neural network architecture that takes both noisy data and noise level as input to predict the score, thus conditioning its prediction on the perturbation scale.

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Fisher Divergence

Metric used in score matching to measure the difference between the true score and the score predicted by the model, avoiding calculation of the normalization constant.

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Manifold Hypothesis

Principle stating that high-dimensional data lies on a lower-dimensional manifold, a key hypothesis justifying the effectiveness of score-based models.

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Score-based Model

Generative model that parameterizes and learns the score vector field of a data distribution, enabling generation of new samples via diffusion processes.

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Implicit Score Matching

Training objective for score matching that does not require evaluation of the target data distribution score, making it applicable when the density is unknown.

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Exponential Moving Average (EMA) of Scores

Regularization technique where an exponential moving average of the score network weights is maintained during training to stabilize the generation process.

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Guided Sampling

Method that modifies the score-based model's sampling process to control the attributes of generated samples, often using a pre-trained classifier.

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