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Category: Computing & data (Page 20 of 80)

Computing and data is a broad category. Our coverage of computing is largely limited to software, and we are mostly focused on unstructured data, semi-structured data, or mixed data that includes structured data.

Topics include computing platforms, analytics, data science, data modeling, database technologies, machine learning / AI, Internet of Things (IoT), blockchain, augmented reality, bots, programming languages, natural language processing applications such as machine translation, and knowledge graphs.

Related categories: Semantic technologies, Web technologies & information standards, and Internet and platforms.

Databricks launches Databricks Model Serving

Databricks announced the launch of Databricks Model Serving to provide simplified production machine learning (ML) natively within the Databricks Lakehouse Platform. Model Serving removes the complexity of building and maintaining complicated infrastructure for intelligent applications. Organizations can leverage the Databricks Lakehouse Platform to integrate real-time machine learning systems across their business, from personalized recommendations to customer service chatbots, without the need to configure and manage the underlying infrastructure. Deep integration within the Lakehouse Platform offers data and model lineage, governance and monitoring throughout the ML lifecycle, from experimentation to training to production. Databricks Model Serving is now generally available on AWS and Azure. Capabilities, include:

  • Feature Store: Provides automated online lookups to prevent online/offline skew. Define features once during model training, and Databricks will automatically retrieve and join the relevant features in the future.
  • MLflow Integration: Natively connects to MLflow Model Registry, enabling easy deployment of models. After providing the underlying model, Databricks will automatically prepare a production-ready container for model deployment.
  • Unified Data Governance: Manage and govern all data and ML assets with Unity Catalog, including those consumed and produced by model serving.

https://www.databricks.com

Slang Labs launches CONVA

Slang Labs, a Google-backed startup from Bengaluru, announced the launch of CONVA, a full-stack solution that provides smart and highly accurate multilingual voice search capabilities inside e-commerce apps. CONVA is available as a simple SDK (Software Development Kit) that can be integrated into existing e-commerce apps in less than 30 minutes without developers needing any knowledge of Automatic Speech Recognition (ASR), Natural language processing (NLP), Text-to-Speech (TTS) and other advanced voice tech stack concepts.

CONVA-powered voice search comprehends mixed-code (multiple languages in one sentence) utterances, enabling consumers to speak naturally in their own language in order to search for products and information inside e-commerce mobile and web apps – while allowing the brand to maintain its app backend in only one language i.e. English. For instance, when people use English and another vernacular language within the same sentence for searching for something, CONVA will understand both languages and provide a seamless search experience to the consumer.

Customers can search for products inside the applications using their typical colloquial terms for well-known products using voice search that is enabled by CONVA, and the apps will still be able to recognise the correct product being searched.

https://www.slanglabs.in/media

TigerGraph expands cloud capabilities

TigerGraph, provider of an advanced analytics and ML platform for connected data, announced the latest version (3.9) of TigerGraph Cloud, a native parallel graph database-as-a-service, including new security, advanced AI, and machine learning capabilities to streamline the adoption, deployment, and management of the graph database platform. The underlying parallel native graph database engine is also available for on-prem or self-managed cloud installation.

Available as self-managed enterprise or on fully-managed cloud services including Amazon Web Services (AWS), Google Cloud Platform (GCP), and Microsoft Azure, TigerGraph Cloud equips users with a comprehensive, streamlined approach to deploy and maintain multiple graph database solutions with visual analytics and machine learning tools. ​​Users can get started in minutes, build a proof-of-concept model in hours, and deploy a solution to production in days. New capabilities include: Enhanced data ingestion, Parquet file format, multi-edge support, Enhanced graph data science package, improved DevOps support, expanded Kubernetes functionality, and expanded self-service graph visual analytics

TigerGraph Cloud users can choose from 20+ starter kits that cover industry use cases pre-built with sample graph data schema, dataset, and queries focused on specific use cases such as fraud detection, real-time recommendation, machine learning, and explainable AI.

https://www.tigergraph.com/

TerminusDB launches TerminusCMS

TerminusDB announced the launch of a product called TerminusCMS that connects content, documentation, data, and processes to turn content management from a resource drain into a cross-functional semantic knowledge centre.

TerminusCMS is an open-source, headless, and developer-focused content and knowledge management system. Under the hood is an RDF graph database that connects JSON documents into a graph. It is schema-based and the schema prompts developers to model their knowledge management requirements. By modeling requirements and incorporating operational/transactional data, content, documentation, and media, businesses create an organization-wide knowledge graph. This knowledge graph bridges content and data silos but also includes business logic in the form of graph edges: the relationships between data and content.

Global organizations are complicated environments with huge supply chains, multi-regional teams, and local regulatory compliance needs. Semantic relationships between people, content, and data make the job of obtaining knowledge from day-to-day operations and transactions possible. TerminusCMS has an analytics engine that enables developers to use GraphQL as a proper graph query language. Often hidden transactional and operational data, and once siloed content, is discoverable and useable with TerminusCMS.

https://terminusdb.com/blog/category/content-knowledge/

Stilo management buys out Stilo Corporation

Stilo Corporation announced that the management team, comprised of Bryan Tipper (CEO) and Jackson Klein (CTO), have acquired 100% of Stilo Corporation’s shares. The acquisition transfers all IP, trademarks, and customer contracts as it relates to Stilo’s suite of software products:

  • OmniMark: A well-established development platform used to build high-performance content processing applications integral to enterprise publishing solutions.
  • Migrate: An automated cloud XML content conversion tool enabling organizations to improve turnaround times, reduce operating costs, and take direct control of their work schedules.
  • OptimizeR: A tool to help automate the deduplication of DITA content, improve content consistency, and help maximize the opportunity for content reuse.
  • Analyzer: An interactive platform that enables users to identify content reuse across multiple source formats, pinpoint potential cost savings, and generate compelling and detailed graphical reports.

With the change in ownership structure, Stilo Corporation will be able to significantly reduce corporate overheads and reinvest these savings into new product development.

https://www.stilo.com

Acquia announces new CDP features, pricing tiers, and delivery options

Acquia announced new Acquia Customer Data Platform (Acquia CDP) tiers and partner models, expanded industry focus, and configurability to meet the needs of organizations of all sizes. Acquia now gives organizations with smaller budgets and teams an entry into the product, built on the same platform that serves complex, global organizations. The platform now offers:

  • CDP configurations and machine learning (ML) models for unique requirements in retail, consumer goods, food and beverage, healthcare, financial services, and travel and hospitality.
  • CDP features pricing tiers to serve small, medium, and large organizations with varying customer data management needs. These can range from businesses that need a single view of the customer to those with mature CX strategies.
  • Improved scalability based on each organization’s maturity and growth in customer profiles, transactions, events, geographies, and brands.
  • Better configurability and extensibility with support for more data elements, data sources, downstream services, workflows, and schedules to serve unique business needs.
  • Acquia partners can now implement and service clients with access to enhanced training from Acquia, sandboxes and demo environments, technical resources, data implementation, and other support programs.

https://www.acquia.com

OAGi releases IOF Ontology Version 202301

OAGi (Open Applications Group, Inc.) has released the 202301 suite of IOF (Industrial Ontologies Foundry) Ontology that includes IOF Core in the Released status and the Supply Chain and the Maintenance Reference Ontologies in the Provisional Status. Please consult the README file for the detail of the release. It is available for immediate download at IOF Release 202301.

IOF Core is a foundation for domain ontologies such as maintenance and supply chain. IOF Core represents thousands of person-hours of development, review, refinement, and quality-checking. IOF has established processes modeled after the proven approach used by the EDM Council for the collaborative development, testing, and publication of a number of industry ontologies, including the Financial Industry Business Ontology (FIBO) and the Identification of Medicinal Products (IDMP). The 202301 release also contains the maintenance and the supply chain reference ontologies in the provisional state. IOF will constantly improve IOF Core while working on domain ontologies based on it. IOF invites organizations to contribute to industrial ontology work.

https://oagi.orghttps://industrialontologies.org

Weaviate releases generative search module

Weaviate announced the release of a generative search module for OpenAI’s GPT-3, and other generative AI models (Cohere, LaMDA) to follow. The module allows Weaviate users and customers to integrate with those models and eliminates hurdles that currently limit the utility of such models in business use cases.

Generative models have so far been limited by a centralized and generic knowledge base that leaves them unable to answer business-specific questions. Weaviate’s generative module removes this limitation by allowing users to specify that the model work from users’ own Weaviate vector database. The solution combines language abilities like those of ChatGPT with a vector database that is relevant, secure, updated in real time, and less prone to hallucination.

Weaviate’s open-source generative AI module is now available to download. The new model also integrates with the company’s SaaS and hybrid SaaS products for use by clients with service-level agreements.

The Weaviate vector-search engine is a “third wave” database technology. Data is processed by a machine learning model first, and AI models help process, store, and search through it. As a result, Weaviate is not limited to natural language; Weaviate can also search images, audio, video, or even genetic information.

https://weaviate.io

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