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---
license: apache-2.0
---
# Circular-based Relation Probing Evaluation (CRPE)
CRPE is a benchmark designed to quantitatively evaluate the object recognition and relation comprehension ability of models.
The evaluation is formulated as single-choice questions.
The benchmark consists of four splits:
**Existence**, **Subject**, **Predicate**, and **Object**.
The **Existence** split evaluates the object recognition ability while the remaining splits are designed to evaluate the capability of relation comprehension, focusing on probing each of the elements in the subject-predicate-object triplets of the scene graph separately.
Some data examples are shown below.
![crpe.jpg](https://cdn-uploads.huggingface.co/production/uploads/619507e7b74b6c591f794340/_NKaowl2OUBAjck1XCAPm.jpeg)
For a robust evaluation, we adopt CircularEval as our evaluation strategy.
Under this setting, a question is considered as correctly answered only when the model consistently predicts the correct answer in each of the N iterations, with N corresponding to the number of choices.
In each iteration, a circular shift is applied to both the choices and the answer to form a new query for the model.
See our [paper](https://github.com/OpenGVLab/all-seeing/all-seeing-v2) to learn more details!