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title: README
emoji: ⚙️
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RESMP.DEV

Evidence-first model systems for real hardware

Inference engineering · calibrated compression · code intelligence · agent traces

RESMP.DEV is an independent applied research and engineering organization focused on making capable models measurable, reproducible, and useful across heterogeneous hardware. We publish quantized weights, native inference artifacts, retrieval encoders, accessibility models, and agentic datasets—together with the evidence needed to evaluate them.

What we work on

Area Work
Low-precision inference Architecture-aware NVFP4, FP8, MXFP4/MXFP8, GPTQ, and mixed-precision releases for CUDA and Apple Silicon.
Code intelligence Multilingual code-retrieval encoders, calibrated quantization, and OpenAI-compatible local serving.
Agentic systems Large-scale reasoning and coding traces, continuous distillation, model mutation, and adversarial workload research.
Accessible computing Speech recognition and models trained for accessibility-centered tasks.

Featured releases

Frontier inference

Code retrieval

Models and data for difficult workloads

How we publish

Our model cards aim to distinguish measured results from hypotheses. Where the artifact permits, releases include:

  • pinned upstream revisions and derivative-license attribution;
  • matched BF16, native round-to-nearest, or architecture-appropriate controls;
  • explicit hardware and runtime boundaries;
  • held-out evaluations, hashes, manifests, and machine-readable receipts;
  • limitations and negative results—not just headline numbers.

Experimental means experimental. Check each repository's model card, required runtime, license, and validation scope before deploying it.