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Can I read A Human-Centered Approach for Improving Supervised Learning on EtoBox?

A Human-Centered Approach for Improving Supervised Learning by Bansal, Shubhi; Tendulkar, Atharva; Kumar, Nagendra is a scholarly article available to read on EtoBox.

What is A Human-Centered Approach for Improving Supervised Learning about?

Supervised Learning is a way of developing Artificial Intelligence systems in which a computer algorithm is trained on labeled data inputs. Effectiveness of a Supervised Learning algorithm is determined by its performance on a given dataset for a particular problem. In case of Supervised Learning problems, Stacking Ensembles usually perform better than individual classifiers due to their generalization ability. Stacking Ensembles combine predictions from multiple Machine Learning algorithms to make final predictions. Inspite of Stacking Ensembles superior performance, the overhead of Stacking Ensembles such as high cost, resources, time, and lack of explainability create challenges in real-life applications. This paper shows how we can strike a balance between performance, time, and resource constraints. Another goal of this research is to make Ensembles more explainable and intelligible using the Human-Centered approach. To achieve the aforementioned goals, we proposed a Human-Centered Behavior-inspired algorithm that streamlines the Ensemble Learning process while also reducing time, cost, and resource overhead, resulting in the superior performance of Supervised Learning in real

Author
Bansal, Shubhi; Tendulkar, Atharva; Kumar, Nagendra
Published
2024
Language
EN