Akashraobury / poolformer-retrieval-study

huggingface.co
Total runs: 7
24-hour runs: 0
7-day runs: -13
30-day runs: -7
Model's Last Updated: August 28 2026

Introduction of poolformer-retrieval-study

Model Details of poolformer-retrieval-study

Poolformer for Retrieval

Overview

A research-oriented Poolformer prototype targeting Retrieval . The included nano setup documents defaults and file formats without presenting unverified performance numbers.

Repository status
  • The Python file contains the model and runnable example or training entry point.
  • config.json records the generated architecture settings.
  • training_args.json records the default experiment recipe.
  • model.safetensors is a valid initialization checkpoint for smoke tests; it is not presented as a trained benchmark checkpoint.
  • No benchmark score is claimed in this repository.
Architecture
Item Value
Architecture Poolformer
Scale nano
Attention sliding window
Fusion co attention
Activation gelu
Normalization layernorm
Default experiment recipe

The included configuration uses lamb with a constant warmup schedule. These are starting values in the script, not evidence of a completed run. For a meaningful evaluation, train all baselines with the same data exposure, tuning budget, and random seeds.

Quick check
python inference.py --help

Inspect the script's __main__ block for its generated smoke-test example. Because this is a custom implementation, generic automatic loading APIs require an explicit adapter before use.

Evaluation guidance

A useful first evaluation would use Flickr30k , report the task metric across at least three seeds, and include a matched-capacity baseline. Keep training logs and environment versions with any published result.

Limitations

The initialization checkpoint has not been trained or audited for robustness, fairness, or domain transfer. The implementation should be treated as an experimental starting point. Results from a future trained checkpoint must be documented separately from the defaults shipped here.

Files
  • inference.py — primary artifact
  • README.md — this documentation
  • config.json — architecture configuration
  • training_args.json — default experiment settings
  • model.safetensors — initialization checkpoint
License

Released under mit . Review the source-data terms separately when this repository is used with external datasets.

Runs of Akashraobury poolformer-retrieval-study on huggingface.co

7
Total runs
0
24-hour runs
0
3-day runs
-13
7-day runs
-7
30-day runs

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