Remove 2014 Remove Explainability Remove Natural Language Processing
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Mastering Visual Question Answering with Deep Learning and Natural Language Processing: A Pocket-friendly Guide

John Snow Labs

Visual question answering (VQA), an area that intersects the fields of Deep Learning, Natural Language Processing (NLP) and Computer Vision (CV) is garnering a lot of interest in research circles. A VQA system takes free-form, text-based questions about an input image and presents answers in a natural language format.

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Explain text classification model predictions using Amazon SageMaker Clarify

AWS Machine Learning Blog

Model explainability refers to the process of relating the prediction of a machine learning (ML) model to the input feature values of an instance in humanly understandable terms. This field is often referred to as explainable artificial intelligence (XAI). In this post, we illustrate the use of Clarify for explaining NLP models.

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Ivan Crewkov CEO & Co-Founder of Buddy AI – Interview Series

Unite.AI

In 2014, you launched Cubic.ai, one of the first smart speakers and voice-assistant apps for smart homes. in 2014 and brought my family with me. My older daughter Sofia started learning English as a second language when she went to a preschool in Mountain View, California, at the age of 4.

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Ashish Nagar, CEO & Founder of Level AI – Interview Series

Unite.AI

I started working in AI in 2014, when we were building a next-generation mobile search company called Rel C, which was similar to what Perplexity AI is today. There were rapid advancements in natural language processing with companies like Amazon, Google, OpenAI, and Microsoft building large models and the underlying infrastructure.

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Can ChatGPT Compete with Domain-Specific Sentiment Analysis Machine Learning Models?

Topbots

SA is a very widespread Natural Language Processing (NLP). Also, since at least 2018, the American agency DARPA has delved into the significance of bringing explainability to AI decisions. Outstandingly, ChatPGT presents such a capacity: it can explain its decisions. finance, entertainment, psychology).

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Deep Learning for NLP: Word2Vec, Doc2Vec, and Top2Vec Demystified

Mlearning.ai

NLP A Comprehensive Guide to Word2Vec, Doc2Vec, and Top2Vec for Natural Language Processing In recent years, the field of natural language processing (NLP) has seen tremendous growth, and one of the most significant developments has been the advent of word embedding techniques.

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A Guide to Convolutional Neural Networks

Heartbeat

GoogLeNet: is a highly optimized CNN architecture developed by researchers at Google in 2014. Applications of Convolutional Neural Networks Convolutional neural networks (CNNs) have been employed in various domains, including computer vision, natural language processing, voice recognition, and audio analysis.