ParC-Net: Position Aware Circular Convolution with Merits from ConvNets and Transformer
Results and benchmarks
ParC-Net: Position Aware Circular Convolution with Merits from ConvNets and Transformer presents a transformer approach for computer science.
Benchmark evidence is limited
Evidence graph: 2 refs, 1 links.
Utility signals: depth 65/100, grounding 58/100, status medium.
Implementation
No direct implementation yet
Maintained implementation evidence is not confirmed for this paper yet.
Use the implementation status and reproduction sections for the current action plan.
No verified maintained repo yet
There is no verified maintained implementation yet. Use this baseline plan to decide whether to prototype now or defer.
- No direct maintained implementation was found. Use the paper PDF and citation graph to design a baseline reproduction.
- Start from related paper: Deep CNN Ensemble with Data Augmentation for Object Detection.
- Start from this likely method family: Transformer.
Time to first repro: a few days
Recommendation evidence is currently too limited for a maintained-repo choice. Use Implementation Status and Reproduction Path for a practical baseline plan.
- Estimate is based on paper-only reproduction flow
Reproduction readiness
No repo
No verified implementation available
- No maintained repository has been identified for this paper. Check adjacent implementations or HF artifacts below.
Hardware requirements
- Expect multi-day setup/compute for meaningful reproduction based on current guidance.
Validation caveat
Framework baselines
- Hugging Face Transformers training guide
Modern transformer training baseline.
- PyTorch nn.Transformer docs
Reference transformer building block implementation.
Hugging Face artifacts
No trustworthy direct or curated related Hugging Face artifacts were found yet. Use targeted searches to quickly locate candidate models, datasets, and demos.
Models
Datasets
Spaces
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Research context
69
Citations
33
References
Tasks
Computer science, Pascal (unit), Inference, Block (permutation group theory), Pattern recognition (psychology), Physical Sciences
Methods
Transformer, Algorithm
Domains
Artificial intelligence, Computer vision, Computer Vision and Pattern Recognition
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