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Related Experiment Videos

Contextual image caption creation using object positional embedding and generative models.

Muhammad Danyal1, Muhammad Roman1,2, Abdul Shahid3

  • 1Institute of Computing, Kohat University of Science and Technology, Kohat, Pakistan.

Plos One
|July 9, 2026
PubMed
Summary
This summary is machine-generated.

This study introduces a new AI model for image captioning that better understands object relationships. It significantly improves descriptive accuracy and contextual relevance compared to existing methods.

Related Experiment Videos

Area of Science:

  • Computer Science
  • Artificial Intelligence
  • Machine Learning

Background:

  • Automated image captioning is challenging due to limitations in capturing semantic relationships.
  • Traditional deep learning models often produce captions lacking contextual richness.
  • Lexical overlap is insufficient for generating semantically accurate image descriptions.

Purpose of the Study:

  • To develop an advanced encoder-decoder framework for generating context-aware image captions.
  • To integrate YOLOv5 object detection with a generative transformer for enhanced captioning.
  • To evaluate the proposed model against established baseline methods.

Main Methods:

  • An encoder-decoder framework combining YOLOv5 and a generative transformer was proposed.
  • The model was benchmarked against CNN-LSTM (M1) and a BERT-based transformer (M2).
  • Evaluation metrics included BLEU, ROUGE-L, METEOR, SPICE, and CIDEr.
  • Expert-based evaluation assessed semantic accuracy, visual grounding, and caption usefulness.

Main Results:

  • The proposed model achieved the highest CIDEr (1.10) and SPICE (0.25) scores, indicating superior semantic understanding.
  • Expert evaluations showed 93% accuracy in semantic alignment with human interpretation.
  • While BLEU scores were comparable to baselines, other metrics demonstrated significant improvements in caption quality and contextual relevance.

Conclusions:

  • The proposed YOLOv5 and generative transformer framework significantly enhances automated image captioning.
  • The model demonstrates superior ability in capturing object relationships and semantic meaning.
  • Expert evaluations confirm the model's effectiveness in generating accurate and useful image descriptions.