{"id":5777,"date":"2023-09-13T16:09:34","date_gmt":"2023-09-13T16:09:34","guid":{"rendered":"http:\/\/silverioevianna.com.br\/home\/?p=5777"},"modified":"2023-12-27T09:26:41","modified_gmt":"2023-12-27T09:26:41","slug":"the-4-biggest-open-problems-in-nlp","status":"publish","type":"post","link":"http:\/\/silverioevianna.com.br\/home\/?p=5777","title":{"rendered":"The 4 Biggest Open Problems in NLP"},"content":{"rendered":"<p><h1>10 Major Challenges of Using Natural Language Processing<\/h1>\n<\/p>\n<p><img class='wp-post-image' style='display: block;margin-left:auto;margin-right:auto;' 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width=\"300px\" alt=\"nlp challenges\"\/><\/p>\n<p><p>And it\u2019s downright amazing at how accurate translation systems have become. However, many languages, especially those spoken by people with less access to technology often go overlooked and under processed. For example, by some estimations, (depending on language vs. dialect) there are over 3,000 languages in Africa, alone. Many experts in our survey argued that the problem of natural language understanding (NLU) is central as it is a prerequisite for many tasks such as natural language generation (NLG).<\/p>\n<\/p>\n<div style='border: black dashed 1px;padding: 13px;'>\n<h3>Where&#8217;s AI up to, where&#8217;s AI headed? &#8211; Lexology<\/h3>\n<p>Where&#8217;s AI up to, where&#8217;s AI headed?.<\/p>\n<p>Posted: Mon, 30 Oct 2023 00:33:45 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMiU2h0dHBzOi8vd3d3LmxleG9sb2d5LmNvbS9saWJyYXJ5L2RldGFpbC5hc3B4P2c9ODdhMDlmNDYtYzBhMS00ZTA1LWJmZTgtZmE1NTQwYTA0Mjk00gEA?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>Similarly, \u2018There\u2019 and \u2018Their\u2019 sound the same yet have different spellings and meanings to them. In the case that a team, entity or individual who does not qualify to win a cash prize is selected as a prize winner, NCATS will award said winner a recognition-only prize. A total of up to $100,000 will <a href=\"https:\/\/www.metadialog.com\/blog\/problems-in-nlp\/\">be awarded by<\/a> NCATS to the top performers of this challenge. Participants must sign up for this competition through a joint page created by the challenge administrator, CrowdPlat, and its partner, bitgrit. Artificial intelligence is all set to bring desired changes in the business-consumer relationship scene. \u201d, the intent of the user is clearly to know the date of Halloween, with Halloween being the entity that is talked about.<\/p>\n<\/p>\n<p><h2>Text Analysis with Machine Learning<\/h2>\n<\/p>\n<p><p>For instance, Felix Hill recommended to go to cognitive science conferences. Navigating through foreign lands or steering through global business ventures often posed linguistic challenges. But in today\u2019s world, where technological wonders break barriers, translation devices are leading a linguistic renaissance. Named Entity Recognition (NER) is the process of detecting the named entity such as person name, movie name, organization name, or location. It is used to group different inflected forms of the word, called Lemma.<\/p>\n<\/p>\n<p><p>NCATS will share with the participants an open repository containing abstracts derived from published scientific research articles and knowledge assertions between concepts within these abstracts. The participants will use this data repository to design and train their NLP systems to generate knowledge assertions from the text of abstracts and other short biomedical publication formats. Other open biomedical data sources may be used to supplement this training data at the participants\u2019 discretion. Biomedical researchers need to be able to use open scientific data to create new research hypotheses and lead to more treatments for more people more quickly.<\/p>\n<\/p>\n<p><h2>Explore the first generative pre-trained forecasting model and apply it in a project with Python<\/h2>\n<\/p>\n<p><p>All these forms the situation, while selecting subset of propositions that speaker has. The only requirement is the speaker must make sense of the situation [91]. NLU is a subtopic of Natural Language Processing that uses AI to comprehend input made in the form of sentences in text or speech format.<\/p>\n<\/p>\n<ul>\n<li>Semantic analysis focuses on literal meaning of the words, but pragmatic analysis focuses on the inferred meaning that the readers perceive based on their background knowledge.<\/li>\n<li>Few of the examples of discriminative methods are Logistic regression and conditional random fields (CRFs), generative methods are Naive Bayes classifiers and hidden Markov models (HMMs).<\/li>\n<li>So, for building NLP systems, it\u2019s important to include all of a word\u2019s possible meanings and all possible synonyms.<\/li>\n<li>When a sentence is not specific and the context does not provide any specific information about that sentence, Pragmatic ambiguity arises (Walton, 1996) [143].<\/li>\n<\/ul>\n<p><p>So, for building NLP systems, it\u2019s important to include all of a word\u2019s possible meanings and all possible synonyms. Text analysis models may still occasionally make mistakes, but the more relevant training data they receive, the better they will be able to understand synonyms. Homonyms \u2013 two or more words that are pronounced the same but have different definitions \u2013 can be problematic for question answering and speech-to-text applications because they aren\u2019t written in text form. Usage of their and there, for example, is even a common problem for humans.<\/p>\n<\/p>\n<p><h2>Learn how to build a powerful chatbot in just a few simple steps using Python\u2019s ChatterBot library.<\/h2>\n<\/p>\n<p><p>This is where training and regularly updating custom models can be helpful, although it oftentimes requires quite a lot of data. Ansible code bot helps teams keep their automation code bases updated with accepted best practices. It scans existing content and automatically provides update recommendations that are ready to review, test, and apply, making it easier to maintain quality and consistency across the development life cycle. Create Ansible content more quickly and accurately with reliable code recommendations\u2014served directly in your code editing environment via the Ansible VS Code extension. Ansible Lightspeed with watsonx Code Assistant can generate multiple tasks from a single request for a playbook or role.<\/p>\n<\/p>\n<p><img class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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width=\"302px\" alt=\"nlp challenges\"\/><\/p>\n<p><p>The problem is that supervision with large documents is scarce and expensive to obtain. Similar to language modelling and skip-thoughts, we could imagine a document-level unsupervised task that requires predicting the next paragraph or chapter of a book  or deciding which chapter comes next. However, this objective is likely too sample-inefficient to enable learning of useful representations.<\/p>\n<\/p>\n<p><h2>Improve Chatbot Resilience With An Initial High-Pass NLP Layer<\/h2>\n<\/p>\n<p><p>In image generation problems, the output resolution and ground truth are both fixed. As a result, we can calculate the loss at the pixel level using ground truth. But in NLP, though output format is predetermined in the case of NLP, dimensions cannot be specified. It is because a single statement can be expressed in multiple ways without changing the intent and meaning of that statement.<\/p>\n<\/p>\n<p><a href=\"https:\/\/www.metadialog.com\/\"><\/p>\n<figure><img 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' alt='https:\/\/www.metadialog.com\/' class='aligncenter' style='display:block;margin-left:auto;margin-right:auto;' width='409px'\/><\/figure>\n<p><\/a><\/p>\n<p><p>The primary point of natural language processing is to make computers able to understand human language. NLP scientists will try to create models with even better performance and more capabilities. The extracted information can be applied for a variety of purposes, for example to prepare a summary, to build databases, identify keywords, classifying text items according to some pre-defined categories etc. For example, CONSTRUE, it was developed for Reuters, that is used in classifying news stories (Hayes, 1992) [54]. It has been suggested that many IE systems can successfully extract terms from documents, acquiring relations between the terms is still a difficulty.<\/p>\n<\/p>\n<p><p>As an example, several models have sought to imitate humans&#8217; ability to think fast and slow. AI and neuroscience are complementary in many directions, as Surya Ganguli illustrates in this post. This article is mostly based on the responses from our experts (which are well worth reading) and thoughts of my fellow panel members Jade Abbott, Stephan Gouws, Omoju Miller, and Bernardt Duvenhage.<\/p>\n<\/p>\n<p><img class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"303px\" alt=\"nlp challenges\"\/><\/p>\n<p><p>Yesterday I met my friend who is using chatbot for mobile recharge . If you look at whats going on IT sectors ,you will see ,\u201dSuddenly  the IT Industry is taking a sharp turn where machine are more human like \u201c. All this fun is just because of Implementation of&nbsp; deep learning into NLP . NLP seems a complete suits of rocking features like Machine Translation , Voice Detection , Sentiment Extractions . It seems that most of things are finish and nothing to do more with NLP .<\/p>\n<\/p>\n<p><p>Sonnhammer mentioned that Pfam holds multiple alignments and hidden Markov model-based profiles (HMM-profiles) of entire protein domains. HMM may be used for a variety of NLP applications, including word prediction, sentence production, quality assurance, and intrusion detection systems [133]. Ambiguity is one of the major problems of natural language which occurs when one sentence can lead to different interpretations. In case of syntactic level ambiguity, one sentence can be parsed into multiple syntactical forms.<\/p>\n<\/p>\n<p><p>To generate a text, we need to have a speaker or an application and a generator or a program that renders the application\u2019s intentions into a fluent phrase relevant to the situation. Connect and share knowledge within a single location that is structured and easy to search. Stack Exchange network consists of 183 Q&amp;A communities including Stack Overflow, the largest, most trusted online community for developers to learn, share their knowledge, and build their careers. If the user utterances just bounce off the the chatbot and the user needs to figure out how to approach the conversation, without any guidance, the conversation is bound to be abandoned.<\/p>\n<\/p>\n<p><p>However, this is a major challenge for computers as they don\u2019t have the same ability to infer what the word was actually meant to spell. They literally take it for what it is \u2014 so NLP is very sensitive to spelling mistakes. Sorry, a shareable link is not currently available for this article. An HMM is <a href=\"https:\/\/www.metadialog.com\/blog\/problems-in-nlp\/\">a system<\/a> where a shifting takes place between several states, generating feasible output symbols with each switch.<\/p>\n<\/p>\n<p><p>Read more about <a href=\"https:\/\/www.metadialog.com\/\">https:\/\/www.metadialog.com\/<\/a> here.<\/p>\n<\/p>\n<p><img class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' src=\"https:\/\/www.metadialog.com\/wp-content\/uploads\/feed_images\/ai-chatbot-7-benefits-and-challenges-for-your-business-img-3.webp\" width=\"302px\" alt=\"nlp challenges\"\/><\/p>\n","protected":false},"excerpt":{"rendered":"<p>10 Major Challenges of Using Natural Language Processing And it\u2019s downright amazing at how accurate translation systems have become. However, many languages, especially those spoken by people with less access to technology often go overlooked and under processed. For example, by some estimations, (depending on language vs. dialect) there are over 3,000 languages in Africa,&hellip;<\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"closed","ping_status":"open","sticky":false,"template":"","format":"standard","meta":[],"categories":[193],"tags":[],"_links":{"self":[{"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=\/wp\/v2\/posts\/5777"}],"collection":[{"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=5777"}],"version-history":[{"count":1,"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=\/wp\/v2\/posts\/5777\/revisions"}],"predecessor-version":[{"id":5778,"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=\/wp\/v2\/posts\/5777\/revisions\/5778"}],"wp:attachment":[{"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=5777"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=5777"},{"taxonomy":"post_tag","embeddable":true,"href":"http:\/\/silverioevianna.com.br\/home\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=5777"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}