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Amazon ECS now enables you to update services from short to long ARNs

You can now update your existing Amazon Elastic Container Service (Amazon ECS) services that use a short Amazon Resource Name (ARN) to use a long ARN without needing to re-create the service. This enables you to tag your long-running Amazon ECS services, letting you better allocate cost, improve visibility, and define fine-grained resource-level permissions for these services.

Since 2018, customers have been able to tag Amazon ECS services that use the long ARN format (which includes the cluster name in the ARN) but if they wanted to tag services that were created with the old short ARN format, they had to delete and re-create the service. Now, ECS enables you to tag services that were created with the old short ARN format without needing to re-create the service. To enable this, you need to complete 2 steps: 1/opt-in your account to the long Amazon Resource Names (ARN) format for tasks and services and 2/tag the service you want to migrate to the long ARN format using the TagResource API action. Once you complete these steps, ECS updates the ARN of the service to the long ARN format and tags the service. Updating the service to use the long ARN format allows you to define resource-based access policies in IAM and granularly monitor the cost of your services in the Cost & Usage Report and Cost Explorer.

You can update your services with short ARNs to long ARNs in all AWS regions using the AWS Console, CLI, and API. To learn more, please read our documentation.

 

​You can now update your existing Amazon Elastic Container Service (Amazon ECS) services that use a short Amazon Resource Name (ARN) to use a long ARN without needing to re-create the service. This enables you to tag your long-running Amazon ECS services, letting you better allocate cost, improve visibility, and define fine-grained resource-level permissions for these services. Since 2018, customers have been able to tag Amazon ECS services that use the long ARN format (which includes the cluster name in the ARN) but if they wanted to tag services that were created with the old short ARN format, they had to delete and re-create the service. Now, ECS enables you to tag services that were created with the old short ARN format without needing to re-create the service. To enable this, you need to complete 2 steps: 1/opt-in your account to the long Amazon Resource Names (ARN) format for tasks and services and 2/tag the service you want to migrate to the long ARN format using the TagResource API action. Once you complete these steps, ECS updates the ARN of the service to the long ARN format and tags the service. Updating the service to use the long ARN format allows you to define resource-based access policies in IAM and granularly monitor the cost of your services in the Cost & Usage Report and Cost Explorer. You can update your services with short ARNs to long ARNs in all AWS regions using the AWS Console, CLI, and API. To learn more, please read our documentation.  

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Introducing Amazon EC2 C6in instances in Chicago and New York City Local Zones

Amazon Elastic Compute Cloud (Amazon EC2) C6in instances are now available in the Chicago and New York City Local Zones. C6in instances are powered by 3rd Generation Intel Xeon Scalable processors with an all-core turbo frequency of up to 3.5 GHz. They are x86-based Amazon EC2 compute-optimized instances offering up to 200 Gbps of network bandwidth. The instances are built on AWS Nitro System, which is a dedicated and lightweight hypervisor that delivers the compute and memory resources of the host hardware to your instances for better overall performance and security. You can take advantage of the higher network bandwidth to scale the performance for a broad range of workloads running in AWS Local Zones.

Local Zones are an AWS infrastructure deployment that place compute, storage, database, and other select services closer to large population, industry, and IT centers where no AWS Region exists. You can use Local Zones to run applications that require single-digit millisecond latency for use cases such as real-time gaming, hybrid migrations, media and entertainment content creation, live video streaming, engineering simulations, financial services payment processing, capital market operations, and AR/VR.

To get started, you can enable Chicago Local Zone us-east-1-chi-2a and New York City Local Zone us-east-1-nyc-2a , in the Amazon EC2 Console or the ModifyAvailabilityZoneGroup API, and deploy C6in instances. To learn more, visit AWS Local Zones overview page and see Amazon EC2 Instance types.

 

​Amazon Elastic Compute Cloud (Amazon EC2) C6in instances are now available in the Chicago and New York City Local Zones. C6in instances are powered by 3rd Generation Intel Xeon Scalable processors with an all-core turbo frequency of up to 3.5 GHz. They are x86-based Amazon EC2 compute-optimized instances offering up to 200 Gbps of network bandwidth. The instances are built on AWS Nitro System, which is a dedicated and lightweight hypervisor that delivers the compute and memory resources of the host hardware to your instances for better overall performance and security. You can take advantage of the higher network bandwidth to scale the performance for a broad range of workloads running in AWS Local Zones. Local Zones are an AWS infrastructure deployment that place compute, storage, database, and other select services closer to large population, industry, and IT centers where no AWS Region exists. You can use Local Zones to run applications that require single-digit millisecond latency for use cases such as real-time gaming, hybrid migrations, media and entertainment content creation, live video streaming, engineering simulations, financial services payment processing, capital market operations, and AR/VR. To get started, you can enable Chicago Local Zone us-east-1-chi-2a and New York City Local Zone us-east-1-nyc-2a , in the Amazon EC2 Console or the ModifyAvailabilityZoneGroup API, and deploy C6in instances. To learn more, visit AWS Local Zones overview page and see Amazon EC2 Instance types.  

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Amazon OpenSearch Serverless expands support for time-series workloads up to 100TB

We are excited to announce that Amazon OpenSearch Serverless now supports workloads up to 100TB of data for time-series collections. OpenSearch Serverless is a serverless deployment option for Amazon OpenSearch Service that makes it simple for you to run search and analytics workloads without having to think about infrastructure management. With the support for larger datasets, OpenSearch Serverless now enables more data-intensive use cases such as log analytics, security analytics, real-time application monitoring, and more.

OpenSearch Serverless’ compute capacity used for indexing and search are measured in OpenSearch Compute Units (OCUs). To accommodate for larger datasets, OpenSearch Serverless now allows customers to independently scale indexing and search operations to use up to 1700 OCUs. You configure the maximum OCU limits on search and indexing independently to manage costs. You can also monitor real-time OCU usage with CloudWatch metrics to gain a better perspective on your workload’s resource consumption.

Please refer to the AWS Regional Services List for more information about Amazon OpenSearch Service availability. To learn more about OpenSearch Serverless, see the documentation.

 

​We are excited to announce that Amazon OpenSearch Serverless now supports workloads up to 100TB of data for time-series collections. OpenSearch Serverless is a serverless deployment option for Amazon OpenSearch Service that makes it simple for you to run search and analytics workloads without having to think about infrastructure management. With the support for larger datasets, OpenSearch Serverless now enables more data-intensive use cases such as log analytics, security analytics, real-time application monitoring, and more. OpenSearch Serverless’ compute capacity used for indexing and search are measured in OpenSearch Compute Units (OCUs). To accommodate for larger datasets, OpenSearch Serverless now allows customers to independently scale indexing and search operations to use up to 1700 OCUs. You configure the maximum OCU limits on search and indexing independently to manage costs. You can also monitor real-time OCU usage with CloudWatch metrics to gain a better perspective on your workload’s resource consumption. Please refer to the AWS Regional Services List for more information about Amazon OpenSearch Service availability. To learn more about OpenSearch Serverless, see the documentation.  

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Amazon RDS for MySQL announces Extended Support minor 5.7.44-RDS.20250103

Amazon Relational Database Service (RDS) for MySQL announces Amazon RDS Extended Support minor version 5.7.44-RDS.20250103. We recommend that you upgrade to this version to fix known security vulnerabilities and bugs in prior versions of MySQL. Learn more about the bug fixes and patches in this version in the Amazon RDS User Guide.

Amazon RDS Extended Support provides you more time, up to three years, to upgrade to a new major version to help you meet your business requirements. During Extended Support, Amazon RDS will provide critical security and bug fixes for your RDS for MySQL databases after the community ends support for a major version. You can run your MySQL databases on Amazon RDS with Extended Support for up to three years beyond a major version’s end of standard support date. Learn more about Extended Support in the Amazon RDS User Guide and the Pricing FAQs.

Amazon RDS for MySQL makes it simple to set up, operate, and scale MySQL deployments in the cloud. See Amazon RDS for MySQL Pricing for pricing details and regional availability. Create or update a fully managed Amazon RDS database in the Amazon RDS Management Console.

 

​Amazon Relational Database Service (RDS) for MySQL announces Amazon RDS Extended Support minor version 5.7.44-RDS.20250103. We recommend that you upgrade to this version to fix known security vulnerabilities and bugs in prior versions of MySQL. Learn more about the bug fixes and patches in this version in the Amazon RDS User Guide. Amazon RDS Extended Support provides you more time, up to three years, to upgrade to a new major version to help you meet your business requirements. During Extended Support, Amazon RDS will provide critical security and bug fixes for your RDS for MySQL databases after the community ends support for a major version. You can run your MySQL databases on Amazon RDS with Extended Support for up to three years beyond a major version’s end of standard support date. Learn more about Extended Support in the Amazon RDS User Guide and the Pricing FAQs. Amazon RDS for MySQL makes it simple to set up, operate, and scale MySQL deployments in the cloud. See Amazon RDS for MySQL Pricing for pricing details and regional availability. Create or update a fully managed Amazon RDS database in the Amazon RDS Management Console.  

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Amazon Q generative SQL is now available in additional regions

Amazon Q generative SQL is now available in Amazon Redshift Query Editor for US East (Ohio) and Asia Pacific (Seoul) regions. This feature enhances SQL query authoring in the web-based Query Editor for Amazon Redshift, enabling you to write SQL queries using natural language and receive intelligent SQL code recommendations. Amazon Q generative SQL makes Amazon Redshift database querying more accessible and efficient for users, regardless of their SQL expertise.

Using generative AI, Amazon Q generative SQL analyzes user intent, SQL query patterns, and schema metadata to identify common query patterns within Amazon Redshift. The conversational interface allows users to submit SQL queries in natural language while maintaining their existing data permissions. For example, when asking «Find total revenue by region,» the system automatically suggests appropriate SQL code by joining relevant Amazon Redshift tables, reducing development time and potential errors. Users can accept suggested queries directly or iterate with follow-up questions to refine their results.

To learn more about pricing, visit the Amazon Q Developer pricing page. See the documentation to get started.
 

 

​Amazon Q generative SQL is now available in Amazon Redshift Query Editor for US East (Ohio) and Asia Pacific (Seoul) regions. This feature enhances SQL query authoring in the web-based Query Editor for Amazon Redshift, enabling you to write SQL queries using natural language and receive intelligent SQL code recommendations. Amazon Q generative SQL makes Amazon Redshift database querying more accessible and efficient for users, regardless of their SQL expertise. Using generative AI, Amazon Q generative SQL analyzes user intent, SQL query patterns, and schema metadata to identify common query patterns within Amazon Redshift. The conversational interface allows users to submit SQL queries in natural language while maintaining their existing data permissions. For example, when asking «Find total revenue by region,» the system automatically suggests appropriate SQL code by joining relevant Amazon Redshift tables, reducing development time and potential errors. Users can accept suggested queries directly or iterate with follow-up questions to refine their results. To learn more about pricing, visit the Amazon Q Developer pricing page. See the documentation to get started.    

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Amazon RDS for PostgreSQL supports minor versions 17.3, 16.7, 15.11, 14.16, 13.19

Amazon Relational Database Service (RDS) for PostgreSQL now supports the latest minor versions 17.3, 16.7, 15.11, 14.16, and 13.19. We recommend that you upgrade to the latest minor versions to fix known security vulnerabilities in prior versions of PostgreSQL, and to benefit from the bug fixes added by the PostgreSQL community. This release also includes updates for PostgreSQL extensions such as pg_active 2.1.4, pg_cron 1.6.5, pg_partman 5.2.4, and others.

You can use automatic minor version upgrades to automatically upgrade your databases to more recent minor versions during scheduled maintenance windows. You can also use Amazon RDS Blue/Green deployments for RDS for PostgreSQL using physical replication for your minor version upgrades. Learn more about upgrading your database instances, including automatic minor version upgrades and Blue/Green Deployments in the Amazon RDS User Guide.

Amazon RDS for PostgreSQL makes it simple to set up, operate, and scale PostgreSQL deployments in the cloud. See Amazon RDS for PostgreSQL Pricing for pricing details and regional availability. Create or update a fully managed Amazon RDS database in the Amazon RDS Management Console.
 

 

​Amazon Relational Database Service (RDS) for PostgreSQL now supports the latest minor versions 17.3, 16.7, 15.11, 14.16, and 13.19. We recommend that you upgrade to the latest minor versions to fix known security vulnerabilities in prior versions of PostgreSQL, and to benefit from the bug fixes added by the PostgreSQL community. This release also includes updates for PostgreSQL extensions such as pg_active 2.1.4, pg_cron 1.6.5, pg_partman 5.2.4, and others. You can use automatic minor version upgrades to automatically upgrade your databases to more recent minor versions during scheduled maintenance windows. You can also use Amazon RDS Blue/Green deployments for RDS for PostgreSQL using physical replication for your minor version upgrades. Learn more about upgrading your database instances, including automatic minor version upgrades and Blue/Green Deployments in the Amazon RDS User Guide. Amazon RDS for PostgreSQL makes it simple to set up, operate, and scale PostgreSQL deployments in the cloud. See Amazon RDS for PostgreSQL Pricing for pricing details and regional availability. Create or update a fully managed Amazon RDS database in the Amazon RDS Management Console.    

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Cómo la unificación de datos mejora las experiencias de los compradores

febrero 13, 2025

Cómo la unificación de datos mejora las experiencias de los compradores

Por: Lindsay Berg, gerente general de marketing de la industria global.

Transformar la experiencia del cliente requiere una base sólida de datos que sean precisos, accesibles y seguros. Un patrimonio de datos sólido también ayuda a las organizaciones a prepararse para el futuro, lo que le permite aprovechar todo el potencial de las últimas innovaciones tecnológicas, como la IA, y garantizar una experiencia unificada y eficaz en todo el recorrido del cliente.

Los minoristas recopilan grandes cantidades de datos de múltiples fuentes: inventario y personal, desarrollo de productos, ventas, marketing y más. Al unificar estos datos, los minoristas pueden comprender mejor las preferencias de los clientes, anticiparse a sus necesidades y ofrecer experiencias de compra memorables que generen lealtad. Mientras tanto, las empresas de bienes de consumo (CG, por sus siglas en inglés) pueden monitorear mejor los equipos de fabricación para reducir el tiempo de inactividad, monitorear las cadenas de suministro, anticipar nuevas tendencias de productos y satisfacer mejor las necesidades de los clientes. También aumenta de manera eficaz los ingresos y equilibra los costos al proporcionar a los líderes empresariales información que impulsa una mejor toma de decisiones y gestión de recursos.

Obtengan el libro electrónico para optimizar las experiencias de los compradores >

Los desafíos de los datos frenan a las organizaciones

Obtener una visión unificada de los datos conlleva varios desafíos clave. Los datos fragmentados son un desafío común en todas las industrias, tanto para los minoristas como para las empresas de CG. Los minoristas extraen datos omnicanal de varias fuentes, incluidos los sitios de comercio electrónico, las ventas en la tienda, las redes sociales, los sistemas de la cadena de suministro y las interacciones de servicio al cliente. Para las empresas de bienes de consumo, los datos provienen de la investigación y el desarrollo (I&D), el marketing, las ventas, los equipos industriales (incluidos los datos de sostenibilidad) y las herramientas de gestión de la cadena de suministro. Todos estos datos están dispersos en muchas fuentes y vienen en una variedad de formatos, lo que hace que la integración sea una tarea compleja y que requiere mucho tiempo.

¿El resultado? Información inconexa que impide a los líderes empresariales tomar decisiones oportunas e informadas.

Sin una fuente de datos unificada, los minoristas luchan por comprender las preferencias de los clientes, predecir las tendencias de compra o administrar el inventario con precisión, mientras que las empresas de CG enfrentan tiempo de inactividad de las máquinas, interrupciones de la cadena de suministro y ciclos prolongados de gestión del ciclo de vida del producto. Esta falta de cohesión dificulta el crecimiento del negocio, ya que es más difícil ofrecer ofertas personalizadas o almacenar los productos adecuados. También afecta a los márgenes de beneficio, ya que los silos de datos provocan ineficiencias y redundancias que podrían eliminarse.

Además, los datos fragmentados pueden debilitar la fidelidad de los clientes cuando la experiencia de compra se vuelve incoherente y carece de personalización. También dificulta que los empleados de atención al cliente de todos los niveles accedan, gestionen y almacenen la información con precisión, lo que plantea problemas de seguridad y cumplimiento.

En el comercio minorista, consideren una tienda de muebles como ejemplo. Un comprador navega por el sitio web, muestra interés en artículos específicos y agrega algunos a su carrito. Más tarde, visitan la tienda física, con la esperanza de ver esos artículos en persona. Sin embargo, el empleado de la tienda no tiene registro de la actividad en línea del comprador y no puede ofrecer recomendaciones personalizadas. Frustrado por la falta de conectividad entre las experiencias en línea y en la tienda, el comprador se va sin comprar, lo que afecta los ingresos y la lealtad del cliente.

En el sector de los bienes de consumo, una empresa que opera grandes fábricas puede tener dificultades para realizar un seguimiento del rendimiento en tiempo real y las necesidades de mantenimiento sin datos conectados en los equipos. Cuando una máquina se descompone, la producción se detiene, lo que provoca costosos retrasos. Al integrar datos en tiempo real en un sistema unificado, la empresa pudo anticipar mejor los problemas, programar el mantenimiento preventivo, reducir el tiempo de inactividad y mejorar la eficiencia y la rentabilidad.

Estos desafíos pueden obstaculizar de manera significativa el crecimiento de los minoristas, las empresas de CG y las de ambas categorías. Para los minoristas, la desconexión entre las experiencias en línea y en la tienda puede provocar la pérdida de oportunidades de venta, la frustración de los clientes y la disminución de la lealtad a la marca. Para las empresas de CG, la incapacidad de pronosticar con precisión la demanda, realizar un seguimiento de los datos de sostenibilidad y obtener información procesable crea ineficiencias que perjudican la rentabilidad, la reputación y la competitividad. En última instancia, la falta de una estrategia de datos unificada sofoca el crecimiento al impedir que las empresas tomen decisiones informadas, optimicen las operaciones y ofrezcan experiencias fluidas a los clientes.

Uso de datos para crear experiencias de cliente fluidas y conectadas

Los datos operativos fragmentados tienen un impacto significativo en la experiencia del cliente, y los minoristas y las empresas de CG necesitan un patrimonio de datos completo para seguir competitivos y cumplir con las crecientes expectativas.

Una plataforma unificada para datos ayuda a consolidar todos los datos relevantes en una única fuente de verdad, lo que brinda una visión de 360 grados del negocio y sus clientes. Esta sólida base de datos permite a las empresas integrar la IA y otras tecnologías avanzadas para estar mejor equipadas para desbloquear información, mejorar la personalización y optimizar el recorrido del cliente.

Una vista completa de los datos también permite a los minoristas anticiparse mejor y satisfacer las necesidades de los clientes. De vuelta al escenario de la tienda de muebles, imaginen si el historial de compras en línea del comprador estuviera disponible para el empleado de la tienda. Cuando llega el comprador, el asociado puede guiarlo sin problemas a sus artículos preferidos en la tienda e incluso ofrecer una promoción relevante.

En el escenario de CG, tener una única fuente de verdad para los datos facilitaría la predicción de las necesidades de mantenimiento de los equipos, lo que reduciría el costoso tiempo de inactividad y garantizaría que la producción se mantenga en el camino correcto para satisfacer la demanda. En ambos escenarios, reunir los datos ayuda a crear una experiencia más fluida y receptiva que impulsa la satisfacción del cliente, la eficiencia operativa y el rendimiento general del negocio.

Activación del poder de los datos en toda la organización minorista

El valor de la unificación de datos va mucho más allá de las tiendas minoristas y las fábricas. Una plataforma de datos única y unificada también simplifica el acceso y la gestión de datos en toda la organización. Ya sea que los empleados estén en ubicaciones físicas, en la sede central o que trabajen de forma remota, pueden acceder de forma segura a información relevante, lo que permite tomar mejores decisiones en todos los niveles y mejorar la eficiencia operativa.

Las ventajas de la unificación de datos se extienden más allá de las operaciones de primera línea, lo que brinda beneficios significativos tanto para el liderazgo como para los equipos de TI.

Exploren las soluciones de datos de Retail en Microsoft Fabric >

Empoderar a líderes y ejecutivos con información

Las plataformas de datos unificadas equipan a los ejecutivos de alto nivel con información en tiempo real sobre el comportamiento de los clientes, las tendencias de compra y el movimiento del inventario. Estas herramientas permiten a los líderes:

  • Tomar decisiones estratégicas basadas en datos que impulsen el crecimiento de los ingresos.
  • Identificar los productos de alto rendimiento y las demandas de los mercados emergentes.
  • Identificar nuevas fuentes de ingresos, como ofertas de servicios personalizados o programas de fidelización específicos.
  • Asignar recursos de manera efectiva, centrándose en áreas impactantes como la expansión de líneas de productos populares o la mejora de los diseños de las tiendas en función de los datos de tráfico peatonal.

Desbloqueo de capacidades avanzadas para equipos de TI

Una base de datos consolidada para los equipos de TI abre las puertas a tecnologías innovadoras que mejoran las experiencias de los clientes. Con datos completos a su disposición, los equipos de TI pueden:

  • Implementar soluciones impulsadas por IA, como recomendaciones inteligentes de productos y alertas predictivas de reabastecimiento.
  • Desarrollar herramientas digitales sofisticadas, como servicios de conserjería basados en la web, para ofrecer asistencia personalizada en tiempo real.
  • Garantizar interacciones fluidas y eficientes con los clientes que fortalezcan la satisfacción y la lealtad.

Al aprovechar todo el poder de sus datos, su organización puede capacitar a todos los empleados para que tomen más decisiones basadas en datos, mejoren la eficiencia operativa y mejoren las experiencias de los clientes.

Transformen un sólido patrimonio de datos en innovación

En el panorama de compras actual, lo más probable es que tengan todos los datos necesarios para atender a sus clientes mejor que nunca. Pueden convertir esos datos en información clara y procesable con una estrategia sólida y las soluciones tecnológicas adecuadas. Una plataforma de datos unificada les permite aprovechar todo el potencial de su información, lo que les ayuda a optimizar las operaciones, mejorar las experiencias de los clientes e impulsar el crecimiento.

Para obtener más información sobre cómo los datos unificados pueden transformar su negocio, consulten nuestro libro electrónico completo. Para obtener más información sobre cómo las soluciones de Microsoft ayudan a las empresas a impulsar la eficiencia y el crecimiento, visiten Microsoft Cloud for Retail y obtengan más información sobre Microsoft para bienes de consumo.

Regístrense para una versión de prueba gratuita de Microsoft Fabric para organizar y unificar sus datos y comenzar a desbloquear su verdadero potencial.

The post Cómo la unificación de datos mejora las experiencias de los compradores appeared first on Source LATAM.

 

​The post Cómo la unificación de datos mejora las experiencias de los compradores appeared first on Source LATAM.  

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Amazon FSx for Lustre now supports Lustre version upgrades

Amazon FSx for Lustre, a service that provides high-performance, cost-effective, and scalable file storage for compute workloads, now enables you to upgrade the Lustre version of your FSx for Lustre file systems. This feature allows you to benefit from the enhancements available in newer Lustre versions on your existing file systems.

FSx for Lustre provides fully-managed file systems built on Lustre, the world’s most popular open-source high performance file system. FSx for Lustre supports multiple long-term support Lustre versions released by the Lustre community. Newer Lustre versions provide benefits such as performance enhancements, new features, and support for the latest Linux kernel versions for your client instances. Starting today, you can upgrade your file systems to newer Lustre versions within minutes using the AWS management console or the AWS CLI/SDK .

The feature is now available on all file systems at no additional cost in all AWS Regions where FSx for Lustre is available. For more information, see Amazon FSx for Lustre documentation.

 

​Amazon FSx for Lustre, a service that provides high-performance, cost-effective, and scalable file storage for compute workloads, now enables you to upgrade the Lustre version of your FSx for Lustre file systems. This feature allows you to benefit from the enhancements available in newer Lustre versions on your existing file systems. FSx for Lustre provides fully-managed file systems built on Lustre, the world’s most popular open-source high performance file system. FSx for Lustre supports multiple long-term support Lustre versions released by the Lustre community. Newer Lustre versions provide benefits such as performance enhancements, new features, and support for the latest Linux kernel versions for your client instances. Starting today, you can upgrade your file systems to newer Lustre versions within minutes using the AWS management console or the AWS CLI/SDK . The feature is now available on all file systems at no additional cost in all AWS Regions where FSx for Lustre is available. For more information, see Amazon FSx for Lustre documentation.  

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AWS AppSync enhances resolver testing with comprehensive context object mocking

AWS AppSync, a fully managed GraphQL service that helps customers build scalable APIs, announces improvements to its EvaluateCode and EvaluateMappingTemplate APIs. This update enables developers to comprehensively mock all properties of the context object during resolver and function unit testing, including identity information, stash variables, and error handling. The enhancement also introduces improved JSON input validation with clear, actionable error messages, making it easier for developers to identify and fix issues in their context setup.

These improvements simplify the setup and configuration requirements. Developers can now efficiently test functions and resolvers by accessing and validating resolver stash (ctx.stash) and error tracking (ctx.outErrors) in their test environments. The update also simplifies identity mocking by allowing developers to include only the relevant caller information in ctx.identity. The updated console experience provides better visibility into the resolver test results, helping developers troubleshoot and optimize their resolver implementations more effectively.

This enhancement is available in all AWS Regions where AWS AppSync is currently supported.

To learn more about these new features, visit the AWS AppSync documentation and explore the context object reference. You can also explore examples and best practices in the AWS AppSync Developer Guide or get started by visiting the AWS AppSync console.

 

​AWS AppSync, a fully managed GraphQL service that helps customers build scalable APIs, announces improvements to its EvaluateCode and EvaluateMappingTemplate APIs. This update enables developers to comprehensively mock all properties of the context object during resolver and function unit testing, including identity information, stash variables, and error handling. The enhancement also introduces improved JSON input validation with clear, actionable error messages, making it easier for developers to identify and fix issues in their context setup. These improvements simplify the setup and configuration requirements. Developers can now efficiently test functions and resolvers by accessing and validating resolver stash (ctx.stash) and error tracking (ctx.outErrors) in their test environments. The update also simplifies identity mocking by allowing developers to include only the relevant caller information in ctx.identity. The updated console experience provides better visibility into the resolver test results, helping developers troubleshoot and optimize their resolver implementations more effectively. This enhancement is available in all AWS Regions where AWS AppSync is currently supported.
To learn more about these new features, visit the AWS AppSync documentation and explore the context object reference. You can also explore examples and best practices in the AWS AppSync Developer Guide or get started by visiting the AWS AppSync console.  

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AWS HealthScribe now supports GIRPP note template for behavioral health

AWS HealthScribe is a generative AI-powered service that automatically generates summarized clinical notes and transcripts from patient-clinician conversations. Documentation for behavioral health related encounters follows a goal centric format based on GIRPP (Goal, Intervention, Response, Progress, Plan) format. With this launch, AWS HealthScribe customers can directly convert a behavioral health related patient-clinician conversation to a GIRPP format note. This can potentially save clinicians hours daily in manually documenting behavioral health related encounters.

Customers using the HealthScribe StartMedicalScribeJob and StartMedicalScribeStream API can simply set note template type parameter as “GIRPP” in the ClinicalNoteGenerationSettings for both async and streaming jobs and will share the output note in GIRPP format as the conversation ends.

This feature is available in US East (N.Virginia) Region. To learn more refer to our documentation.

 

​AWS HealthScribe is a generative AI-powered service that automatically generates summarized clinical notes and transcripts from patient-clinician conversations. Documentation for behavioral health related encounters follows a goal centric format based on GIRPP (Goal, Intervention, Response, Progress, Plan) format. With this launch, AWS HealthScribe customers can directly convert a behavioral health related patient-clinician conversation to a GIRPP format note. This can potentially save clinicians hours daily in manually documenting behavioral health related encounters. Customers using the HealthScribe StartMedicalScribeJob and StartMedicalScribeStream API can simply set note template type parameter as “GIRPP” in the ClinicalNoteGenerationSettings for both async and streaming jobs and will share the output note in GIRPP format as the conversation ends. This feature is available in US East (N.Virginia) Region. To learn more refer to our documentation.