Sciscore
SciScore is a fine-tuned scientific scoring model based on the CLIP-H model, used to evaluate the scientific alignment between implicit prompts and generated images.
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Release Time : 3/17/2025
Model Overview
SciScore is a vision-language model specifically designed to assess the alignment between scientific images and their descriptive prompts. It helps identify and quantify scientific accuracy in image synthesis.
Model Features
Scientific Alignment Evaluation
Specifically designed to evaluate the alignment between scientific images and their descriptive prompts
High-Quality Training Data
Fine-tuned using the Science-T2I dataset, focusing on scientific accuracy
CLIP Base Model
Based on the powerful CLIP-ViT-H-14 model, with excellent vision-language understanding capabilities
Model Capabilities
Image-Text Alignment Scoring
Scientific Accuracy Evaluation
Multimodal Understanding
Use Cases
Scientific Research
Scientific Image Generation Evaluation
Evaluates whether AI-generated scientific images accurately reflect the described scientific concepts
Quantifies the match between images and scientific descriptions
Scientific Educational Material Validation
Verifies if images in educational materials accurately convey scientific concepts
Helps ensure the scientific accuracy of educational materials
AI-Generated Content
Text-to-Image Model Evaluation
Evaluates the accuracy of scientific images generated by different text-to-image models
Provides objective scoring criteria to compare the scientific performance of different models
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