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Learning to maximize mutual information for dynamic feature selection
Feature selection helps reduce data acquisition costs in ML, but the standard approach is to
train models with static feature subsets. Here, we consider the dynamic feature selection …
train models with static feature subsets. Here, we consider the dynamic feature selection …
A cost-aware framework for the development of AI models for healthcare applications
Accurate artificial intelligence (AI) for disease diagnosis could lower healthcare workloads.
However, when time or financial resources for gathering input data are limited, as in …
However, when time or financial resources for gathering input data are limited, as in …
Constrained Multiview Representation for Self-supervised Contrastive Learning
Representation learning constitutes a pivotal cornerstone in contemporary deep learning
paradigms, offering a conduit to elucidate distinctive features within the latent space and …
paradigms, offering a conduit to elucidate distinctive features within the latent space and …
Classification with costly features as a sequential decision-making problem
This work focuses on a specific classification problem, where the information about a sample
is not readily available, but has to be acquired for a cost, and there is a per-sample budget …
is not readily available, but has to be acquired for a cost, and there is a per-sample budget …
Learning Computational Efficient Bots with Costly Features
Deep reinforcement learning (DRL) techniques have become increasingly used in various
fields for decision-making processes. However, a challenge that often arises is the trade-off …
fields for decision-making processes. However, a challenge that often arises is the trade-off …
Efficient Data Collection for Connected Vehicles With Embedded Feedback-Based Dynamic Feature Selection
Collecting relevant and high-quality data is critical to machine-learning-based application
development in automotive industry. It is highly desired to concentrate the connected vehicle …
development in automotive industry. It is highly desired to concentrate the connected vehicle …
[HTML][HTML] CoAI: Cost-aware artificial intelligence for health care
The recent emergence of accurate artificial intelligence (AI) models for disease diagnosis
raises the possibility that AI-based clinical decision support could substantially lower the …
raises the possibility that AI-based clinical decision support could substantially lower the …
Active acquisition for multimodal temporal data: A challenging decision-making task
We introduce a challenging decision-making task that we call active acquisition for
multimodal temporal data (A2MT). In many real-world scenarios, input features are not …
multimodal temporal data (A2MT). In many real-world scenarios, input features are not …
Towards trustworthy automatic diagnosis systems by emulating doctors' reasoning with deep reinforcement learning
The automation of the medical evidence acquisition and diagnosis process has recently
attracted increasing attention in order to reduce the workload of doctors and democratize …
attracted increasing attention in order to reduce the workload of doctors and democratize …
BSODA: a bipartite scalable framework for online disease diagnosis
A growing number of people are seeking healthcare advice online. Usually, they diagnose
their medical conditions based on the symptoms they are experiencing, which is also known …
their medical conditions based on the symptoms they are experiencing, which is also known …