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Open Source Furniture Design to Be Cut By a CNC Machine – An Cool Example of Distributed Manufacturing


H2O, A Suite of Online Classroom Tools for Legal Education

Google Just Open Sourced TensorFlow, Its Artificial Intelligence Engine (via Wired)

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Screen Shot 2015-11-09 at 8.55.38 AMObviously this move is pretty significant for those trying to sell machine learning in a SAAS style model / machine learning as a service (ML_AAS).  Together with the significant amount of ML technology that is already in the opensource ecosystem – this will put more pressure on customization / configuration around problems with a much smaller premium on having access to certain forms of base models/algorithms.

The post Google Just Open Sourced TensorFlow, Its Artificial Intelligence Engine (via Wired) appeared first on Computational Legal Studies™.

The Golden Age Of Open Source Has Arrived (via TechCrunch)

Announcing SyntaxNet: The World’s Most Accurate Parser Goes Open Source (via Google)

Distill: Supporting Clarity in Machine Learning (via Google Research Blog)

Why We Are Open Sourcing ContraxSuite and Some Thoughts About Legal Tech and the Modern Information Economy

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Today we here at LexPredict announce that we will be open sourcing our document analytics platform ContraxSuite (which works on a wide class of documents beyond just contracts).

From the Announcement – “Starting on August 1st, this code base and our public development roadmap will be hosted on Github under a permissive open-source licensing model that will allow most organizations to quickly and freely implement and customize their own contract and document analytics. Like Redhat does for Linux, we will provide support, customization, and data services to “cover the last mile” for those organizations who need it.

We believe that a very important future for law lies in its central role in facilitating and regulating the modern information economy. But unless we start treating law itself like the production of information, we’ll never get there. Before we can solve big problems with smart contracts, we need to start by structuring existing legacy contracts. We hope our actions today will help lawyers, companies, and other LegalTech providers accelerate the pace of improvement and innovation through more open collaboration.”    (click here for full announcement or access via Slideshare)

The post Why We Are Open Sourcing ContraxSuite and Some Thoughts About Legal Tech and the Modern Information Economy appeared first on Computational Legal Studies™.

Why We’re Open-Sourcing ContraxSuite – Product Overview, Some Use Cases and Plan for Release


LexPredict Goes Open Source, Hopes Others Will Follow ( via ALM LegalTechNews )

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From the article – “We are increasingly thinking that there’s room in legal tech for a Red Hat in legal — companies that really focus on development of software by providing wraparound services, but offer their software open source,” Michael J Bommarito II said.   

For more information check out our announcement and the slidedeck (which has more details).

The post LexPredict Goes Open Source, Hopes Others Will Follow ( via ALM LegalTechNews ) appeared first on Computational Legal Studies™.

LexPredict Open Sources The 1910 Version of Black’s Law – The World’s Most Well Known Legal Dictionary is Now a Data Object

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From the release
:  “At their core, many academic and commercial applications of natural language processing and machine learning can benefit from a controlled lexicon of expert-selected terms (i.e., a dictionary). This is especially true of highly technical language, such as legal text. However, after a search of the existing landscape, we were unable to find a high-quality open source or freely-available legal dictionary. Instead, the best existing versions, when available, exist under some form of restrictive licensing conditions.”

“Thus, in furtherance of both the legal profession as well as a range of legal technology providers and solutions, we are announcing another step in our broader open source plan that we outlined earlier this month. Namely, we are making available on Github the 1910 Version of Black’s Law (i.e., Black’s Law 2nd Edition) as a structured data object. This early version of arguably the premier legal dictionary is made available under the open source GPL license 3.0 which should allow both researchers and commercial providers to operate with limited restrictions.”

Click here to access the GitHub Repo.

The post LexPredict Open Sources The 1910 Version of Black’s Law – The World’s Most Well Known Legal Dictionary is Now a Data Object appeared first on Computational Legal Studies™.

Why Open Source Artificial Intelligence in Legal Tech ?

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On August 1, we released Contrax Suite and it is important to note that we have decided upon dual licensing (1) open source (AGPL) which is pretty hard core copyleft and (2) a more permissive license in specific circumstances.   The key for us is to maintain the opensource ecosystem which requires balancing competing interests.  We cannot grant the more permissive license to everyone under all conditions or it undermine the entire effort.

That said, we have a real problem with A.I. + Law.  The claims are outlandish and the business model does not make sense.   We think that opensource helps solve for some (perhaps not all) of the adoptions issues.

The post Why Open Source Artificial Intelligence in Legal Tech ? appeared first on Computational Legal Studies™.

Make Law Better – The Legal Innovation Agenda in Vectors and Phases (#MakeLawBetter)

LexPredict New Open Source Offering – OpenEDGAR — for Building Custom Databases using the #SEC #EDGAR data

LexNLP: Natural Language Processing and Information Extraction For Legal and Regulatory Texts (Bommarito, Katz, Detterman)

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Paper Abstract – LexNLP is an open source Python package focused on natural language processing and machine learning for legal and regulatory text. The package includes functionality to (i) segment documents, (ii) identify key text such as titles and section headings, (iii) extract over eighteen types of structured information like distances and dates, (iv) extract named entities such as companies and geopolitical entities, (v) transform text into features for model training, and (vi) build unsupervised and supervised models such as word embedding or tagging models. LexNLP includes pre-trained models based on thousands of unit tests drawn from real documents available from the SEC EDGAR database as well as various judicial and regulatory proceedings. LexNLP is designed for use in both academic research and industrial applications, and is distributed at https://github.com/LexPredict/lexpredict-lexnlp

The post LexNLP: Natural Language Processing and Information Extraction For Legal and Regulatory Texts (Bommarito, Katz, Detterman) appeared first on Computational Legal Studies™.

Why Microsoft Is Willing to Pay So Much for GitHub (via Harvard Business Review)


OpenEDGAR: Open Source Software for SEC EDGAR Analysis (Michael Bommarito, Daniel Martin Katz & Eric Detterman)

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Our next paper — OpenEDGAR – Open Source Software for SEC Edgar Analysis is now available.  This paper explores a range of #OpenSource tools we have developed to explore the EDGAR system operated by the US Securities and Exchange Commission (SEC).  While a range of more sophisticated extraction and clause classification protocols can be developed leveraging LexNLP and other open and closed source tools, we provide some very simple code examples as an illustrative starting point.

Abstract
OpenEDGAR is an open source Python framework designed to rapidly construct research databases based on the Electronic Data Gathering, Analysis, and Retrieval (EDGAR) system operated by the US Securities and Exchange Commission (SEC). OpenEDGAR is built on the Django application framework, supports distributed compute across one or more servers, and includes functionality to (i) retrieve and parse index and filing data from EDGAR, (ii) build tables for key metadata like form type and filer, (iii) retrieve, parse, and update CIK to ticker and industry mappings, (iv) extract content and metadata from filing documents, and (v) search filing document contents. OpenEDGAR is designed for use in both academic research and industrial applications, and is distributed under MIT License at https://github.com/LexPredict/openedgar

The post OpenEDGAR: Open Source Software for SEC EDGAR Analysis (Michael Bommarito, Daniel Martin Katz & Eric Detterman) appeared first on Computational Legal Studies™.

LexPredict Launches New User Interface for ContraxSuite

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Our LexPredict Team is excited to announce the new ContraxSuite User Interface – See Press Release < HERE >

ContraxSuite has a wide range of user types across our various legal service delivery customers. Relevant users include legal data scientists, power users in legal information technology, professional review teams at legal process outsourcers, contract review units in corporate legal departments, as well as associates and partners in law firms. While the existing ContraxSuite user interface will still serve as the interface for our data scientist community, the new UI is designed to serve the needs of a much broader community of users.

Eric Detterman – VP and Global Head of Products and Solution Engineering at LexPredict noted, “The new ContraxSuite User Interface delivers the bells and whistles that many users expect from a modern app or software tool, including dynamic menus, helpful dialog boxes, and an easy, intuitive design.”   

The post LexPredict Launches New User Interface for ContraxSuite appeared first on Computational Legal Studies™.

Make Law Better – The Legal Innovation Agenda in Vectors and Phases (UPDATED)

Learning about Access to Justice and Technology here in Practice and Professionalism with guest speakers John Mayer and Ronald W. Staudt

OpenEDGAR: Open Source Software for SEC EDGAR Analysis is published in MIT Computational Law Report

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Today our Paper – “OpenEDGAR: Open Source Software for SEC EDGAR Analysis” was published in MIT Computational Law Report.

ABSTRACT:  OpenEDGAR is an open source Python framework designed to rapidly construct research databases based on the Electronic Data Gathering, Analysis, and Retrieval (EDGAR) system operated by the US Securities and Exchange Commission (SEC). OpenEDGAR is built on the Django application framework, supports distributed compute across one or more servers, and includes functionality to (i) retrieve and parse index and filing data from EDGAR, (ii) build tables for key metadata like form type and filer, (iii) retrieve, parse, and update CIK to ticker and industry mappings, (iv) extract content and metadata from filing documents, and (v) search filing document contents. OpenEDGAR is designed for use in both academic research and industrial applications, and is distributed under MIT License at https://github.com/LexPredict/openedgar

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