LGCVApr 11, 2021

CoPE: Conditional image generation using Polynomial Expansions

arXiv:2104.05077v313 citationsHas Code
AI Analysis

This work addresses conditional generation tasks like super-resolution for machine learning practitioners, but it appears incremental as it extends existing polynomial methods to handle more variables.

The authors tackled the problem of conditional image generation using polynomial neural networks, which previously struggled with two-variable inputs, and introduced CoPE, a framework that captures auto- and cross-correlations to handle multiple input variables, achieving usefulness across five tasks and eight datasets.

Generative modeling has evolved to a notable field of machine learning. Deep polynomial neural networks (PNNs) have demonstrated impressive results in unsupervised image generation, where the task is to map an input vector (i.e., noise) to a synthesized image. However, the success of PNNs has not been replicated in conditional generation tasks, such as super-resolution. Existing PNNs focus on single-variable polynomial expansions which do not fare well to two-variable inputs, i.e., the noise variable and the conditional variable. In this work, we introduce a general framework, called CoPE, that enables a polynomial expansion of two input variables and captures their auto- and cross-correlations. We exhibit how CoPE can be trivially augmented to accept an arbitrary number of input variables. CoPE is evaluated in five tasks (class-conditional generation, inverse problems, edges-to-image translation, image-to-image translation, attribute-guided generation) involving eight datasets. The thorough evaluation suggests that CoPE can be useful for tackling diverse conditional generation tasks. The source code of CoPE is available at \url{https://github.com/grigorisg9gr/polynomial_nets_for_conditional_generation}.

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