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Mettez en pratique vos compétences dans la console Google Cloud

Michael Verkruyse

Date d'abonnement : 2019

Ligue de bronze

24325 points
[CEPF L300 Course]: Artificial Intelligence and Machine Learning Earned août 3, 2024 EDT
Conversation Design Fundamentals Earned mai 13, 2024 EDT
Stateful Flows Earned mai 11, 2024 EDT
Advanced Webhook Concepts Earned mai 11, 2024 EDT
Webhook fundamentals Earned mai 11, 2024 EDT
Building Complex End to End Self-Service Experiences in Dialogflow CX Earned mai 11, 2024 EDT
Conversational Agents Quality Assurance and Deployment Lifecycle Earned mai 11, 2024 EDT
Building Complex Self-Service Experiences in Conversational Agents Earned mai 10, 2024 EDT
Conversational AI Voice and Chat Integrations Earned mai 10, 2024 EDT
Customer Engagement Suite with Google AI Architecture Earned mai 10, 2024 EDT
Intro to CCAI and CCAI Engagement Framework Earned mai 8, 2024 EDT
CCAI Academy - Bot Building with Gen AI Earned avr. 12, 2024 EDT
Introduction à Vertex AI Studio Earned mars 27, 2024 EDT
Créer des modèles de création de légendes pour les images Earned mars 27, 2024 EDT
Modèles Transformer et modèle BERT Earned mars 27, 2024 EDT
Mécanisme d'attention Earned mars 26, 2024 EDT
Architecture encodeur/décodeur Earned mars 26, 2024 EDT
Introduction à la génération d'images Earned mars 26, 2024 EDT
NCAA® March Madness®: Bracketology with Google Cloud Earned mars 18, 2019 EDT
[DEPRECATED] Data Engineering Earned mars 14, 2019 EDT

This Artificial Intelligence and Machine Learning course consists of a series of advanced-level labs designed to validate your proficiency in using AI and ML to extract, analyze, search, and store structured data from documents and improve customer service. Each lab presents a set of required tasks that you must complete with minimal assistance.You must score 80% or higher for each lab to complete this course, and fulfill your CEPF L300 Artificial Intelligence and Machine Learning requirement. For technical issues with a Challenge Lab, please raise a Buganizer ticket using this CEPF Buganizer template: go/cepfl300labsupport

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This course explores the foundational principles of conversation design to craft engaging and effective experiences that emulate human-like experiences specific to the Chat channel. Please note Dialogflow CX was recently renamed to Conversational Agents, Virtual agent renamed to Conversational agent, and CCAI Insights were renamed to Conversational Insights, and this course is in the process of being updated to reflect the new product names for Dialogflow CX, and Virtual Agent, CCAI Insights.

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Discover flows in Conversational Agents and learn how to build deterministic chat and voice experiences with language models. Explore key concepts like drivers, intents, and entities, and how to use them to create conversational agents.

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This course explores advanced technical considerations to optimize Webhook connectivity for comprehensive, end-to-end, Conversational Agent self-service experiences. Please note Dialogflow CX was recently renamed to Conversational Agents, Virtual agent renamed to Conversational agent, and CCAI Insights were renamed to Conversational Insights, and this course is in the process of being updated to reflect the new product names for Dialogflow CX, and Virtual Agent, CCAI Insights.

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In this course, you will learn the important role that different types of webhooks play in Conversational Agents development, and how to effectively integrate them into your routine configuration of a Conversational Agent. Please note Dialogflow CX was recently renamed to Conversational Agents, Virtual agent renamed to Conversational agent, and CCAI Insights were renamed to Conversational Insights, and this course is in the process of being updated to reflect the new product names for Dialogflow CX, and Virtual Agent, CCAI Insights.

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This course will equip you with the tools to develop complex conversational experiences in Dialogflow CX capable of identifying the user intent and routing it to the right self service flow.

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This course explores the quality assurance best practices and the tools available in Conversational Agents to ensure production grade quality during Conversational Agent development, as well as the key tenets for the creation of a robust end to end deployment lifecycle. Please note Dialogflow CX was recently renamed to Conversational Agents, Virtual agent renamed to Conversational agent, and CCAI Insights were renamed to Conversational Insights, and this course is in the process of being updated to reflect the new product names for Dialogflow CX, and Virtual Agent, CCAI Insights.

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This course will equip you with the tools to develop complex conversational experiences in Conversational Agents capable of identifying the user intent and routing it to the right self service flow. Please note Dialogflow CX was recently renamed to Conversational Agents, Virtual agent renamed to Conversational agent, and CCAI Insights were renamed to Conversational Insights, and this course is in the process of being updated to reflect the new product names for Dialogflow CX, and Virtual Agent, CCAI Insights.

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Learn about building conversational AI voice and chat integrations, including how telephony systems can connect with Google to enable phone-based interactions within the Conversational AI ecosystem. Explore key topics such as the differences between chat and voice conversations, the writing process for creating conversation scripts, and the beginning of the interrogative series and closing sequence.

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In this course you will learn the key architectural considerations that need to be taken into account when designing for the implementation of Conversational AI solutions. Please note Dialogflow CX was recently renamed to Conversational Agents and CCAI Insights was renamed to Conversational Insights.

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This is a introductory course to all solutions in the Contact Centre AI (CCAI) portfolio and the Generative AI features that are poised to transform them. The course also explores the CCAI go to market and engagement model, the business case around CCAI, as well as the use cases and user personas addressed by the solution.

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The objective of this course is to upsklill experienced conversational AI practitioners on how to deliver Dialogflow Bots with new Gen AI capabilities Brought to you by the GCC Tech Specialization Team (gcc-enablement-tech@). Share your request/feedback on go/learningpacks-feedback!

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Ce cours présente Vertex AI Studio, un outil permettant d'interagir avec des modèles d'IA générative, de prototyper des idées commerciales et de les envoyer en production. Au moyen d'un cas d'utilisation immersif, de leçons captivantes et d'un atelier pratique, vous allez découvrir le cycle de vie de la requête au produit. Vous apprendrez également à utiliser Vertex AI Studio pour les applications multimodales Gemini, la conception de requêtes, le prompt engineering (ingénierie des requêtes) et le réglage de modèles. L'objectif est de vous permettre d'exploiter tout le potentiel de l'IA générative dans vos projets avec Vertex AI Studio.

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Dans ce cours, vous allez apprendre à créer un modèle de sous-titrage d'images à l'aide du deep learning. Vous découvrirez les différents composants de ce type de modèle, comme l'encodeur et le décodeur, et comment l'entraîner et l'évaluer. À la fin du cours, vous serez en mesure de créer vos propres modèles de sous-titrage d'images et de les utiliser pour générer des sous-titres pour des images.

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Ce cours présente l'architecture Transformer et le modèle BERT (Bidirectional Encoder Representations from Transformers). Vous découvrirez quels sont les principaux composants de l'architecture Transformer, tels que le mécanisme d'auto-attention, et comment ils sont utilisés pour créer un modèle BERT. Vous verrez également les différentes tâches pour lesquelles le modèle BERT peut être utilisé, comme la classification de texte, les questions-réponses et l'inférence en langage naturel. Ce cours dure environ 45 minutes.

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Ce cours présente le mécanisme d'attention, une technique efficace permettant aux réseaux de neurones de se concentrer sur des parties spécifiques d'une séquence d'entrée. Vous découvrirez comment fonctionne l'attention et comment l'utiliser pour améliorer les performances de diverses tâches de machine learning, dont la traduction automatique, la synthèse de texte et les réponses aux questions.

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Ce cours offre un aperçu de l'architecture encodeur/décodeur, une architecture de machine learning performante souvent utilisée pour les tâches "seq2seq", telles que la traduction automatique, la synthèse de texte et les questions-réponses. Vous découvrirez quels sont les principaux composants de l'architecture encodeur/décodeur, et comment entraîner et exécuter ces modèles. Dans le tutoriel d'atelier correspondant, vous utiliserez TensorFlow pour coder une implémentation simple de cette architecture afin de générer un poème en partant de zéro.

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Ce cours présente les modèles de diffusion, une famille de modèles de machine learning qui s'est récemment révélée prometteuse dans le domaine de la génération d'images. Les modèles de diffusion trouvent leur origine dans la physique, et plus précisément dans la thermodynamique. Au cours des dernières années, ils ont gagné en popularité dans la recherche et l'industrie. Ils sont à la base de nombreux modèles et outils Google Cloud avancés de génération d'images. Ce cours vous présente les bases théoriques des modèles de diffusion, et vous explique comment les entraîner et les déployer sur Vertex AI.

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In this series of labs you will learn how to use BigQuery to analyze NCAA basketball data with SQL. Build a Machine Learning Model to predict the outcomes of NCAA March Madness basketball tournament games.

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This advanced-level quest is unique amongst the other catalog offerings. The labs have been curated to give IT professionals hands-on practice with topics and services that appear in the Google Cloud Certified Professional Data Engineer Certification. From Big Query, to Dataprep, to Cloud Composer, this quest is composed of specific labs that will put your Google Cloud data engineering knowledge to the test. Be aware that while practice with these labs will increase your skills and abilities, you will need other preparation, too. The exam is quite challenging and external studying, experience, and/or background in cloud data engineering is recommended. Looking for a hands on challenge lab to demonstrate your skills and validate your knowledge? On completing this quest, enroll in and finish the additional challenge lab at the end of the Engineer Data in the Google Cloud to receive an exclusive Google Cloud digital badge.

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