Bridging Through Absence: How Comeback Researchers Bridge Knowledge Gaps Through Structural Re-emergence

Fuente: arXiv
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Autores principales: Chakraborty, Somyajit, Jana, Angshuman, Gayen, Avijit
Formato: Preprint
Publicado: 2026
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author Chakraborty, Somyajit
Jana, Angshuman
Gayen, Avijit
author_facet Chakraborty, Somyajit
Jana, Angshuman
Gayen, Avijit
contents Understanding the role of researchers who return to academia after prolonged inactivity, termed "comeback researchers", is crucial for developing inclusive models of scientific careers. This study investigates the structural and semantic behaviors of comeback researchers, focusing on their role in cross-disciplinary knowledge transfer and network reintegration. Using the AMiner citation dataset, we analyze 113,637 early-career researchers and identify 1,425 comeback cases based on a three-year-or-longer publication gap followed by renewed activity. We find that comeback researchers cite 126% more distinct communities and exhibit 7.6% higher bridging scores compared to dropouts. They also demonstrate 74% higher gap entropy, reflecting more irregular yet strategically impactful publication trajectories. Predictive models trained on these bridging- and entropy-based features achieve a 97% ROC-AUC, far outperforming the 54% ROC-AUC of baseline models using traditional metrics like publication count and h-index. Finally, we substantiate these results via a multi-lens validation. These findings highlight the unique contributions of comeback researchers and offer data-driven tools for their early identification and institutional support.
format Preprint
id arxiv_https___arxiv_org_abs_2602_21926
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Bridging Through Absence: How Comeback Researchers Bridge Knowledge Gaps Through Structural Re-emergence
Chakraborty, Somyajit
Jana, Angshuman
Gayen, Avijit
Social and Information Networks
Digital Libraries
Machine Learning
Physics and Society
68T05, 91D30, 05C82
I.2.6; H.2.8; J.4
Understanding the role of researchers who return to academia after prolonged inactivity, termed "comeback researchers", is crucial for developing inclusive models of scientific careers. This study investigates the structural and semantic behaviors of comeback researchers, focusing on their role in cross-disciplinary knowledge transfer and network reintegration. Using the AMiner citation dataset, we analyze 113,637 early-career researchers and identify 1,425 comeback cases based on a three-year-or-longer publication gap followed by renewed activity. We find that comeback researchers cite 126% more distinct communities and exhibit 7.6% higher bridging scores compared to dropouts. They also demonstrate 74% higher gap entropy, reflecting more irregular yet strategically impactful publication trajectories. Predictive models trained on these bridging- and entropy-based features achieve a 97% ROC-AUC, far outperforming the 54% ROC-AUC of baseline models using traditional metrics like publication count and h-index. Finally, we substantiate these results via a multi-lens validation. These findings highlight the unique contributions of comeback researchers and offer data-driven tools for their early identification and institutional support.
title Bridging Through Absence: How Comeback Researchers Bridge Knowledge Gaps Through Structural Re-emergence
topic Social and Information Networks
Digital Libraries
Machine Learning
Physics and Society
68T05, 91D30, 05C82
I.2.6; H.2.8; J.4
url https://arxiv.org/abs/2602.21926