Papers › Image Generators with Conditionally-Independent Pixel Synthesis

Image Generators with Conditionally-Independent Pixel Synthesis

27 Nov 2020CVPR 2021 1arXiv:2011.13775archive 2025-07-28

Ivan Anokhin, Kirill Demochkin, Taras Khakhulin, Gleb Sterkin, Victor Lempitsky, Denis Korzhenkov

Existing image generator networks rely heavily on spatial convolutions and, optionally, self-attention blocks in order to gradually synthesize images in a coarse-to-fine manner. Here, we present a new architecture for image generators, where the color value at each pixel is computed independently given the value of a random latent vector and the coordinate of that pixel. No spatial convolutions or similar operations that propagate information across pixels are involved during the synthesis. We analyze the modeling capabilities of such generators when trained in an adversarial fashion, and observe the new generators to achieve similar generation quality to state-of-the-art convolutional generators. We also investigate several interesting properties unique to the new architecture.

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saic-mdal/CIPS officialmentioned on GitHubpytorch report
taki0112/CIPS-Tensorflow mentioned on GitHubtf report

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Tasks

Image Generation

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Image Generation FFHQ 1024 x 1024 CIPS FID 10.07 #17 of 20 Archive leaderboard report
Image Generation FFHQ 256 x 256 CIPS FID 4.38 #22 of 51 Archive leaderboard report
Image Generation LSUN Churches 256 x 256 CIPS FID 2.92 #5 of 27 Archive leaderboard report
Image Generation Landscapes 256 x 256 CIPS FID 3.61 #1 of 1 Archive leaderboard report
Image Generation Satellite-Buildings 256 x 256 CIPS FID 69.67 #1 of 1 Archive leaderboard report
Image Generation Satellite-Landscapes 256 x 256 CIPS FID 48.47 #1 of 1 Archive leaderboard report

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