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ReLeaSE

imported

therapeutics/release

Deep Reinforcement Learning for de-novo Drug Design

Machine-generated from the listed sources and not yet reviewed by a human.

ReLeaSE project image
GitHub preview card for isayev/ReLeaSE. Served by its origin, not stored here, and not covered by this registry’s licence.
record
Category
Therapeutics
Subcategory
unknown
License
MIT(osi)
Status
dormant
Maturity
deployed
Organization
unknown
Country
unknown
Homepage
unknown
Documentation
unknown
Tags
cheminformatics · deeplearning · drug-discovery · molecular-modeling · qsar · reinforcement-learning
Regulatory
unknown
built by · 3

Top contributors by commit count, from the project’s public repository. Avatars are served by their origin, not stored here. To be removed from this list, open an issue.

similar by tags

Computed from shared tags, weighted so a rare tag counts for more than a common one. These are suggestions, not curated relationships.

  • ALKYLcheminformatics · drug-discovery · molecular-modeling · qsar

    Claude Plugin for CompChem , Drug Discovery & Organic Chemistry reasoning

  • DrugExcheminformatics · drug-discovery · reinforcement-learning

    De Novo Drug Design with RNNs and Transformers

  • clampcheminformatics · drug-discovery · qsar

    Code for the paper Enhancing Activity Prediction Models in Drug Discovery with the Ability to Understand Human Language

  • ezqsarcheminformatics · drug-discovery · qsar

    It can easily create a MLR-QSAR model from a proper set of compounds.

  • olindacheminformatics · drug-discovery · qsar

    Distillation of chemistry models into compact boosting students from fingerprints or feature tables, with built-in tuning and validation.

  • QSPRpredcheminformatics · drug-discovery · qsar

    A tool for creating Quantitative Structure Property/Activity Relationship (QSPR/QSAR) models.

sources
  1. api.github.com/repos/isayev/ReLeaSE
    retrieved 2026-08-05 · via github-api

    Machine-imported from GitHub search. Last push 2021-12-08, 372 stars, license reported as MIT. Category and schematic were assigned by keyword heuristics and are unreviewed.

Not yet verified by a human. Correct this record →

machine-readable

/v1/entries/62.json→ .entries["release"]

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