A deep neural network framework for dynamic multi-valued mapping estimation and its applications
Geng Li, Di Qiu, Lok Ming Lui

TL;DR
This paper presents a deep neural network framework that models and estimates dynamic multi-valued mappings with uncertainty, enabling multiple plausible outputs for a given input, demonstrated on imaging problems with synthetic and real data.
Contribution
Introduces a novel deep neural network framework combining generative and classification components for dynamic multi-valued mapping estimation with uncertainty measurement.
Findings
Accurately estimates dynamic multi-valued mappings.
Effectively models uncertainty in output predictions.
Demonstrates superior performance on imaging datasets.
Abstract
This paper addresses the problem of modeling and estimating dynamic multi-valued mappings. While most mathematical models provide a unique solution for a given input, real-world applications often lack deterministic solutions. In such scenarios, estimating dynamic multi-valued mappings is necessary to suggest different reasonable solutions for each input. This paper introduces a deep neural network framework incorporating a generative network and a classification component. The objective is to model the dynamic multi-valued mapping between the input and output by providing a reliable uncertainty measurement. Generating multiple solutions for a given input involves utilizing a discrete codebook comprising finite variables. These variables are fed into a generative network along with the input, producing various output possibilities. The discreteness of the codebook enables efficient…
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Taxonomy
TopicsAdvanced Algorithms and Applications · Advanced Computational Techniques and Applications · Automated Road and Building Extraction
