Inference-InfoGAN: Inference Independence via Embedding Orthogonal Basis Expansion
Hongxiang Jiang, Jihao Yin, Xiaoyan Luo, Fuxiang Wang

TL;DR
This paper introduces Inference-InfoGAN, a novel GAN-based framework that uses Orthogonal Basis Expansion to explicitly learn independent and interpretable latent variables, improving disentanglement without supervision.
Contribution
The paper proposes a new OBE module integrated into InfoGAN to enhance latent variable independence and interpretability in an unsupervised manner.
Findings
Outperforms state-of-the-art methods on disentanglement metrics
Demonstrates adaptive orthogonal basis captures better independence
Achieves higher scores in FactorVAE, SAP, MIG, and VP metrics
Abstract
Disentanglement learning aims to construct independent and interpretable latent variables in which generative models are a popular strategy. InfoGAN is a classic method via maximizing Mutual Information (MI) to obtain interpretable latent variables mapped to the target space. However, it did not emphasize independent characteristic. To explicitly infer latent variables with inter-independence, we propose a novel GAN-based disentanglement framework via embedding Orthogonal Basis Expansion (OBE) into InfoGAN network (Inference-InfoGAN) in an unsupervised way. Under the OBE module, one set of orthogonal basis can be adaptively found to expand arbitrary data with independence property. To ensure the target-wise interpretable representation, we add a consistence constraint between the expansion coefficients and latent variables on the base of MI maximization. Additionally, we design an…
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Taxonomy
TopicsGenerative Adversarial Networks and Image Synthesis · Computational and Text Analysis Methods · Digital Media Forensic Detection
MethodsHuMan(Expedia)||How do I get a human at Expedia? · *Communicated@Fast*How Do I Communicate to Expedia? · Dense Connections · Discrete Cosine Transform · Softmax · Feedforward Network · InfoGAN
