What is alvaDesc?

alvaDesc is a cheminformatics application that facilitates the calculation and analysis of molecular descriptors, fingerprints, and structural patterns, serving the needs of QSAR, QSPR, read-across, and machine learning applications. This tool can compute more than 5,000 molecular descriptors spanning various dimensions from 0D to 3D, including categories like constitutional, topological, geometrical, electronic, physicochemical, and fragment-based descriptors.

Additionally, alvaDesc generates molecular fingerprints and structural pattern counts that aid in similarity assessments, clustering, and classification efforts. It features integrated tools for descriptor filtering and correlation analysis, which contribute to ensuring the modeling processes are not only robust but also reproducible.

Moreover, the software seamlessly integrates with KNIME and Python, allowing for easy connections to external data analysis and machine learning frameworks. Its extensive use in both academic and industrial research is supported by detailed documentation and numerous scientific publications that enhance its credibility in the field. Users also value its intuitive interface, which significantly improves the experience of performing intricate cheminformatics tasks while promoting efficiency and accuracy in research endeavors. With its comprehensive features, alvaDesc stands out as a key resource for those engaged in molecular analysis and modeling.

Pricing

Free Trial Offered?:
Yes

Screenshots and Video

Company Facts

Company Name:
Alvascience
Date Founded:
2018
Company Location:
Italy
Company Website:
www.alvascience.com
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Product Details

Deployment
Windows
Mac
Linux
Training Options
Documentation Hub
Webinars
Video Library
Support
Web-Based Support

Product Details

Target Company Sizes
Individual
1-10
11-50
51-200
201-500
501-1000
1001-5000
5001-10000
10001+
Target Organization Types
Mid Size Business
Small Business
Enterprise
Freelance
Nonprofit
Government
Startup
Supported Languages
English

alvaDesc Categories and Features