A Deep Model Framework for Morphological Trait Imputation Across Taxonomic Groups

ABSTRACT Incomplete morphological trait data pose major hurdles for trait‐based analyses, particularly when missing values, multicollinearity, and sparse sampling constrain inference. These issues limit our ability to quantify trait variation and explore broad patterns of functional differentiation across taxa. Here, we introduce FS‐DeepRBFNet, which overcomes these pitfalls through integrating correlation‐based feature selection with a dual‐layer adaptive radial basis function (RBF) network. This end‐to‐end approach effectively reduces noise and captures both linear allometric trends and nonlinear morphological relationships. We tested the framework on a large species‐level morphological trait dataset of Chinese birds and further validated its cross‐taxon transferability using the Amphibian Database (Caudata). FS‐DeepRBFNet consistently outperformed conventional methods such as KNN, Random Forest, and XGBoost, demonstrating superior predictive accuracy across multiple traits. Beyond improvements, the model revealed biologically interpretable trait associations and stable cross‐taxon generalization. These results demonstrate that FS‐DeepRBFNet provides a robust and biologically grounded solution for morphological trait prediction, enabling reliable imputation for comparative phylogenetics, functional ecology, and biodiversity forecasting in data‐limited situations.

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Publication Details

Journal
Integrative Zoology
Published
2026-09-16
DOI
https://doi.org/10.1111/1749-4877.70178
Primary Topic
Morphological variations and asymmetry
Type
article
Field-Weighted Citation Impact
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article

A Deep Model Framework for Morphological Trait Imputation Across Taxonomic Groups

Daji Ergu, Taxing Zhang, Zhongru Gu, Xiangjiang Zhan et al.
Integrative Zoology
Morphological variations and asymmetry
article

A Deep Model Framework for Morphological Trait Imputation Across Taxonomic Groups

Daji Ergu, Taxing Zhang, Zhongru Gu, Xiangjiang Zhan, Shengkai Pan, Pengfei Song, Hongjie Zhu, Yu Bai, Yuang Wang, Fangyao Liu, Xinying Shi, Xuemei Yin
article en

Abstract

ABSTRACT Incomplete morphological trait data pose major hurdles for trait‐based analyses, particularly when missing values, multicollinearity, and sparse sampling constrain inference. These issues limit our ability to quantify trait variation and explore broad patterns of functional differentiation across taxa. Here, we introduce FS‐DeepRBFNet, which overcomes these pitfalls through integrating correlation‐based feature selection with a dual‐layer adaptive radial basis function (RBF) network. This end‐to‐end approach effectively reduces noise and captures both linear allometric trends and nonlinear morphological relationships. We tested the framework on a large species‐level morphological trait dataset of Chinese birds and further validated its cross‐taxon transferability using the Amphibian Database (Caudata). FS‐DeepRBFNet consistently outperformed conventional methods such as KNN, Random Forest, and XGBoost, demonstrating superior predictive accuracy across multiple traits. Beyond improvements, the model revealed biologically interpretable trait associations and stable cross‐taxon generalization. These results demonstrate that FS‐DeepRBFNet provides a robust and biologically grounded solution for morphological trait prediction, enabling reliable imputation for comparative phylogenetics, functional ecology, and biodiversity forecasting in data‐limited situations.

Integrative Zoology
Chinese Academy of Sciences (CN), Xinjiang Institute of Ecology and Geography (CN), Chengdu Normal University (CN), Institute of Zoology (CN), Sichuan Normal University (CN), Southwest Minzu University (CN)
Openalex Percentile: Top 5%
Morphological variations and asymmetry
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