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Paper Citation Record · LEDGER

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction

As of 21 August 2026, this Paper Citation Record lists 36 of 36 outbound references and 0 inbound Pith citation observations for arXiv:2505.00290.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2505.00290 v1

Coverage vector

measured 36 of 36 reference resolution

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measured 36 of 36 standing notices

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measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

36 of 36 outbound references displayed

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External citation measurements

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Outbound references

Observation 42a01386-9620-475c-b081-0a8eb235a1b2 · outbound

This paper cites Incorporating label dependency into the binary relevance framework for multi-label classification.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Incorporating label dependency into the binary relevance framework for multi-label classification

Reference 1

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Observation d99ffb11-d70f-4ada-a976-db126057c1da · outbound

This paper cites Predicting human olfactory percep- tion from chemical features of odor molecules.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Predicting human olfactory percep- tion from chemical features of odor molecules

Reference 9

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Observation 7c2c1092-e989-497c-9659-8b8d7d7809ec · outbound

This paper cites Hierarchy-aware biased bound margin loss func- tion for hierarchical text classification.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Hierarchy-aware biased bound margin loss func- tion for hierarchical text classification

Reference 10

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Observation 01e4356a-659b-4870-b942-9a3cf56ac51b · outbound

This paper cites Semi-Supervised Classification with Graph Convolutional Networks.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Semi-Supervised Classification with Graph Convolutional Networks

Reference 11

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Observation f6a93616-91c5-4187-a840-81aa7ae816f8 · outbound

This paper cites Unsupervised Optimisation of GNNs for Node Clustering.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Unsupervised Optimisation of GNNs for Node Clustering

Reference 13

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Observation b7d4c579-5d6e-4509-8a65-56ddf1b66aad · outbound

This paper cites Leffingwell & as- sociates.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Leffingwell & as- sociates

Reference 14

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Observation 146cbf0b-be39-4252-9c4d-3e315e8ebc3a · outbound

This paper cites Random fourier feature-based deep learning for wireless communications.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Random fourier feature-based deep learning for wireless communications

Reference 16

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Observation 748e4efe-d8ce-49c9-bc2b-ecc6af5efb9b · outbound

This paper cites Mordred: a molecular descriptor calculator.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Mordred: a molecular descriptor calculator

Reference 17

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Observation 310f0e36-b036-4f34-b47e-84b24c771a95 · outbound

This paper cites Topo- logical torsion: a new molecular descriptor for sar ap- plications.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Topo- logical torsion: a new molecular descriptor for sar ap- plications

Reference 18

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Observation a88af90d-b9aa-44f2-abdb-b4dbec9d0459 · outbound

This paper cites Extended-connectivity fingerprints.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Extended-connectivity fingerprints

Reference 20

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Observation 31fe86a4-8594-410a-9d6d-952b72f0ffee · outbound

This paper cites Owsum: algo- rithmic odor prediction and insight into structure-odor re- lationships.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Owsum: algo- rithmic odor prediction and insight into structure-odor re- lationships

Reference 22

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Observation d5c4fe98-9901-4d86-8a7f-7e4bd7060470 · outbound

This paper cites Smiles to smell: decoding the structure–odor relationship of chemical com- pounds using the deep neural network approach.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Smiles to smell: decoding the structure–odor relationship of chemical com- pounds using the deep neural network approach

Reference 23

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This paper cites Attention is all you need.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Attention is all you need

Reference 24

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This paper cites Graph Attention Networks.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Graph Attention Networks

Reference 25

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Observation 6a2c67ac-6444-4e14-9745-0e6856575041 · outbound

This paper cites Local random feature approximations of the gaussian kernel.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Local random feature approximations of the gaussian kernel

Reference 26

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Observation d50cb929-f064-4d6a-9a68-9ed76fe45f0f · outbound

This paper cites Distributionally Robust Receive Combining.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Distributionally Robust Receive Combining

Reference 27

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This paper cites An explainable deep learning platform for molecular discovery.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction An explainable deep learning platform for molecular discovery

Reference 28

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This paper cites A com- prehensive survey on graph neural networks.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction A com- prehensive survey on graph neural networks

Reference 29

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Observation f14fccbf-d241-49f4-a0b5-090bda2a4e7f · outbound

This paper cites Padel-descriptor: An open source software to calculate molecular descriptors and fingerprints.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Padel-descriptor: An open source software to calculate molecular descriptors and fingerprints

Reference 33

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Observation f2a7aa35-11bb-4623-839e-b73fc95b337a · outbound

This paper cites A machine learning based computer-aided molecular design/screening methodology for fragrance molecules.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction A machine learning based computer-aided molecular design/screening methodology for fragrance molecules

Reference 35

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Observation becb79a3-127c-4cbe-aedf-5e72e6d2b519 · outbound

This paper cites Asymmetric loss for multi-label clas- sification.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Asymmetric loss for multi-label clas- sification

Reference 1987

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Observation 18a88665-c81e-4d07-8cb8-6c52d6c1a411 · outbound

This paper cites fruity”, “floral.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction fruity”, “floral

Reference 2001

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Observation 49c6cd9e-d79f-4023-8311-f600837be8ce · outbound

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Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Food, and cosmetics ingre- dients information

Reference 2002

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Observation 7c9d691d-c83d-4c48-9633-1e6951e805b9 · outbound

This paper cites Predicting odor from molecular structure: A multi-label classification approach.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Predicting odor from molecular structure: A multi-label classification approach

Reference 2010

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Observation dc44cf6e-8bf7-448d-9f60-2663f051f5a0 · outbound

This paper cites Prediction of anticancer peptides based on an ensemble model of deep learning and machine learning using or- dinal positional encoding.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Prediction of anticancer peptides based on an ensemble model of deep learning and machine learning using or- dinal positional encoding

Reference 2011

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This paper cites Balanced energy regularization loss for out-of-distribution detection.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Balanced energy regularization loss for out-of-distribution detection

Reference 2012

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Observation 7a1bc669-2582-439f-8a22-738681b4229f · outbound

This paper cites A principal odor map unifies diverse tasks in olfactory perception.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction A principal odor map unifies diverse tasks in olfactory perception

Reference 2016

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This paper cites Few-shot graph learning for molecular property predic- tion.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Few-shot graph learning for molecular property predic- tion

Reference 2017

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This paper cites Neu- ral message passing for quantum chemistry.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Neu- ral message passing for quantum chemistry

Reference 2018

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This paper cites Spatial smoothing using graph laplacian penalized filter.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Spatial smoothing using graph laplacian penalized filter

Reference 2019

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Observation 7769558a-1ec8-4e57-9989-b5f12e185305 · outbound

This paper cites Molecular Odor Prediction Based on Multi-Feature Graph Attention Networks.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Molecular Odor Prediction Based on Multi-Feature Graph Attention Networks

Reference 2020

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Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Sub- graph generation applied in graphsage deal with imbal- anced node classification

Reference 2021

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Observation 86a0f258-cfb3-4d54-9173-f088c783ce3c · outbound

This paper cites Cross-entropy loss functions: Theoretical analysis and applications.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Cross-entropy loss functions: Theoretical analysis and applications

Reference 2022

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This paper cites Reoptimization of mdl keys for use in drug discovery.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Reoptimization of mdl keys for use in drug discovery

Reference 2023

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

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Observation 8d23f223-08b6-40a5-87cc-f5fedcd6fe0e · outbound

This paper cites Recent ad- vances and application of machine learning in food flavor prediction and regulation.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Recent ad- vances and application of machine learning in food flavor prediction and regulation

Reference 2024

Resolution
verified fuzzy
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

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Observation fc9613d3-1c13-4c65-b9e6-717e99151d44 · outbound

This paper cites Pushing the boundaries of molecular representation for drug discovery with the graph attention mechanism.

Multi-Hierarchical Fine-Grained Feature Mapping Driven by Feature Contribution for Molecular Odor Prediction Pushing the boundaries of molecular representation for drug discovery with the graph attention mechanism

Reference 2025

Resolution
unresolved
no resolver link, observed 2026-08-16T04:50:44.639986Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Pith citing papers

No inbound Pith citation observations are available.