{"id":2695,"date":"2023-09-06T20:28:18","date_gmt":"2023-09-06T15:28:18","guid":{"rendered":"http:\/\/solutionspk.com.pk\/estore\/?p=2695"},"modified":"2023-12-27T14:23:12","modified_gmt":"2023-12-27T09:23:12","slug":"natural-language-processing-functionality-in-ai","status":"publish","type":"post","link":"https:\/\/solutionspk.com.pk\/estore\/natural-language-processing-functionality-in-ai\/","title":{"rendered":"Natural Language Processing Functionality in AI"},"content":{"rendered":"<p><h1>What is Natural Language Processing? Introduction to NLP<\/h1>\n<\/p>\n<p><img decoding=\"async\" class='wp-post-image' style='margin-left:auto;margin-right:auto' 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width=\"300px\" alt=\"nlp algorithm\" \/><\/p>\n<p><p>The algorithm for TF-IDF calculation for one word is shown on the diagram. In other words, text vectorization method is transformation of the text to numerical vectors. You can use various text features or characteristics as vectors describing this text, for example, by using text vectorization methods.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='margin-left:auto;margin-right:auto' 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\" width=\"300px\" alt=\"nlp algorithm\" \/><\/p>\n<p><p>There are several classifiers available, but the simplest is the k-nearest neighbor algorithm (kNN). The challenge is that the human speech mechanism is difficult to replicate using computers because of the complexity of the process. It involves several steps such as acoustic analysis, feature extraction and language modeling.<\/p>\n<\/p>\n<p><h2>Develop Your First Reinforcement Learning Algorithm for Video Games (from scratch!!!).<\/h2>\n<\/p>\n<p><p>Still, eventually, we\u2019ll have to consider the hashing part of the algorithm to be thorough enough to implement \u2014 I\u2019ll cover this after going over the more intuitive part. So far, this language may seem rather abstract if one isn\u2019t used to mathematical language. However, when dealing with tabular data, data professionals have already been exposed to this type of data structure with spreadsheet programs and relational databases. So, NLP-model will train by vectors of words in such a way that the probability assigned by the model to a word <a href=\"https:\/\/www.metadialog.com\/blog\/algorithms-in-nlp\/\">will be close<\/a> to the probability of its matching in a given  context (Word2Vec model).<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='margin-left:auto;margin-right:auto' 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\" width=\"305px\" alt=\"nlp algorithm\" \/><\/p>\n<p><p>Big data and the integration of big data with machine learning allow developers to create and train a chatbot. Language is complex and full of nuances, variations, and concepts that machines cannot easily understand. Many characteristics of natural language are high-level and abstract, such as sarcastic remarks, homonyms, and rhetorical speech. The nature of human language differs from the mathematical ways machines function, and the goal of NLP is to serve as an interface between the two different modes of communication. An NLP-centric workforce is skilled in the natural language processing domain. Your initiative benefits when your NLP data analysts follow clear learning pathways designed to help them understand your industry,  task, and tool.<\/p>\n<\/p>\n<p><h2>Tagging Parts of Speech<\/h2>\n<\/p>\n<p><p>A subfield of NLP called natural language understanding (NLU) has begun to rise in popularity because of its potential in cognitive and AI applications. NLU goes beyond the structural understanding of language to interpret intent, resolve context and word ambiguity, and even generate well-formed human language on its own. To understand further how it is used in text classification, let us assume the task is to find whether the given sentence is a statement or a question. Like all machine learning models, this Naive Bayes model also requires a training dataset that contains a collection of sentences labeled with their respective classes. In this case, they are \u201cstatement\u201d and \u201cquestion.\u201d Using the Bayesian equation, the probability is calculated for each class with their respective sentences.<\/p>\n<\/p>\n<p><p>IE helps to retrieve predefined information such as a person\u2019s name, a date of the event, phone number, etc., and organize it in a database. Now that you\u2019ve done some text processing tasks with small example texts, you\u2019re ready to analyze a bunch of texts at once. NLTK provides several corpora covering everything from novels hosted by Project Gutenberg to inaugural speeches by presidents of the United States. Breaking sentences into tokens, Parts of speech tagging, Understanding&nbsp;the context, Linking components of a created vocabulary, and Extracting semantic meaning are currently some of the main challenges of NLP.<\/p>\n<\/p>\n<p><h2>What is Natural Language Processing? Introduction to NLP<\/h2>\n<\/p>\n<p><p>Syntax analysis is analyzing strings of symbols in text, conforming to the rules of formal grammar. Intent recognition is identifying words that signal user intent, often to determine actions to take based on users\u2019 responses. Data enrichment is deriving and determining structure from text to enhance and augment data. In an information retrieval case, a form of augmentation might be expanding user queries to enhance the probability of keyword matching. Another major benefit of NLP is that you can use it to serve your customers in real-time through chatbots and sophisticated auto-attendants, such as those in contact centers.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='margin-left:auto;margin-right:auto' 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\" width=\"301px\" alt=\"nlp algorithm\" \/><\/p>\n<p><p>Human languages are difficult to understand for machines, as it involves a  acronyms, different meanings, sub-meanings, grammatical rules, context, slang, and many other aspects. Neural machine translation, based on then-newly-invented sequence-to-sequence transformations, made obsolete the intermediate steps, such as word alignment, previously necessary for statistical machine translation. NER systems are typically trained on manually annotated texts so that they can learn the language-specific patterns for each type of named entity. Named entity recognition\/extraction aims to extract entities such as people, places, organizations from text. This is useful for applications such as information retrieval, question answering and summarization, among other areas.<\/p>\n<\/p>\n<p><h2>Eight great books about natural language processing for all levels<\/h2>\n<\/p>\n<p><p>Deep Learning<\/p>\n<p>Deep Learning is a subset of machine learning that involves training neural networks on large amounts of data. In the case of ChatGPT, deep learning is used to train the model\u2019s transformer architecture, which is a type of neural network that has been successful in various NLP tasks. The transformer architecture enables ChatGPT to understand and generate text in a way that is coherent and natural-sounding. Although businesses have an inclination towards structured data for insight generation and decision-making, text data is one of the vital information generated from digital platforms. However, it is not straightforward to extract or derive insights from a colossal amount of text data.<\/p>\n<\/p>\n<p><p>For example, tokenization (splitting text data into words) and part-of-speech tagging (labeling nouns, verbs, etc.) are successfully performed by rules. The complex process of cutting down the text to a few key informational elements can be done by extraction method as well. But to create a true abstract that will produce the summary, basically generating a new text, will require sequence to sequence modeling. This can help create automated reports, generate a news feed, annotate texts, and more. Virtual assistants like Siri and Alexa and ML-based chatbots pull answers from unstructured sources for questions posed in natural language. Such dialog systems are the hardest to pull off and are considered an unsolved problem in NLP.<\/p>\n<\/p>\n<p><p>Extraction and abstraction are two wide approaches to text summarization. Methods of extraction establish a rundown by removing fragments from the text. By creating fresh text that conveys the crux of the original text, abstraction strategies produce summaries. For text summarization, such as LexRank, TextRank, and Latent Semantic Analysis, different NLP algorithms can be used. This algorithm ranks the sentences using similarities between them, to take the example of LexRank. A sentence is rated higher because more sentences are identical, and those sentences are identical to other sentences in turn.<\/p>\n<\/p>\n<p><a href=\"https:\/\/www.metadialog.com\/\"><\/p>\n<figure><img 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5JBLeR1wJYsokfUkFS20vxXg2yUqSQQokgEc\/lg\/2rBN8YcMF91aSuMrYptbedyc9Qfp6V6RZdC6TEDS9+7l+3wLktEeU9NklpUp1bLqu6aUtPclBcbSguJUS3vT3iR6pbeE1klzGId9ssuwTjc7bGkRHJwX3TTzjoXuSRvRuShBG7mM56KTTikUoDEGzSzIQtUcqUsqC217QlG3ykA+ueoprNssAEmFLS0lBCVF5eUklORg4r1Cfwd0zFvF\/tl9clacEaAhVuXJZfbQmQZDaEqdS+hLhaUFKBWBhP4uYBzDXHhrBiLvEG32aVdTBusyDJktTR3dubbQjunVqSCkhalLAKjhWzCeZqJfTBSV6b76E0qJIbW+dwISrKVkH0PpyIpu\/pC7NO90gNOnbu8q\/wC3P1q\/6\/4e3nRsCwv2W1vNRplqiTDJJkEPOuxGVuhJcQGzha18m1KwBg+maZHuuokvNhyHuLnlBW3t3f1o5Sj0TsiDYrkmKqWuMtKUqCcY8xJ9hTRUd5tRSttaSOoKcEVak6hnNd5IetS8pUULWCdqdp5g\/TNaJep47zcjw4Ulx1CQCpI6j0+1WM5N9F4lbKVEHGcDrWO05zVgtK7XFSouvpcD7B71C08kqB6U+Tb7JOCGmUpCW3ClS0LwdpGRVeSnVCrKn0pA4pBCgSCPY1aZlggtJdQ0grwkOoXnKtoOFDl8qYKsMae5tskjeUpJUhw4PWrHIpOkKoiRJeGCHFZByDn1p1FvlwiBSW3NwUckK586fytKvNNNKjPh5xxRR3W3aoEDnTNdguLbaVqZxlzuiknBSr51pxT7ImbU6llqCkvNJWlQIx0rK1agMJazJbLqVdATnFRkiK7GfVGeQUuoOCn51gtpTatriFJPsRg1IwjF6KXZq\/2KclKJLCQccgpA5E1ki1acfUhxKG+Ss8lYB+tUYEg1ml51P4VkfQ1ozRb5OnGt\/eRbgtsKVzAOQB7CmNqVIiXxcRuSVgAgqI9qgvHy08g+v70keY\/HkCUlZ3pOc+9XXoUWmc1qBaloSlCm15SDu54+lRVsen2Vb\/fR1FtRKCn2VTlvWD3hlBxkFwnAx0xSx9QQe8WuShQ3lKsdRkUbCscxrvblIAkNYcIwrcK2twrBKQpLaWgTzVWK7tYpWErSggnJykVpfi2da1mO\/sccxjCuQ\/pTsLQj2n7W4oFp0oGOiVUUymx0JlONsvqCUHAANFZ0e7H4mTJFSTK\/RRRWj59BRRQKFNsaK\/LdDMdsrWegFP3tN3ZgJLjABWQANwzTW3z3oEgPMEbsY586s8LVEd8gz2huRzBA9a2kqIrIKZYJEFaWnXEFak7iB6fKmDbboO9HIpPWpGRc1S7k7KdJAVySD6J9KyhqjoUr+YMKOefpWPZ78Xj48sE26e7HULUr6QI9xSH2uWQRzxWq43xM+4KfIIaSNqE+w96k7k7pt6EO+cQqQlOEqbThWf8Aj\/WqgeprTdHkxzeKfOPolPHR1PYB2oKdpJqVXcdOG2IjzEeIeSnAKEbSD9aqtKpWTyrJ0zeRLOvkBPM7cgelJRRQ4Bk0oWoEEKI\/rSUVKQHDc6W0T3chxGR6KNbBd7k2yI7ctYQOgBpnRU4olIcvXGbLCUy5TjoRnaFKzipO26kTAt6oLkMOZCwFBWM7h6++Kg6KrSfZpaLEdSN+Oj3FLslK0rQXGsgt7QMHb9hREmQ3ZFwD1yb2SmilKnGyDn09OWKhnLbcWbexdnYMhEKS4tlmQpshtxaAkrSlXQlIWnIHTcPem2T71OIstEVjT0juDIKAqQ6lC0pXgI2pIJ\/7KjitVwFotj6mfAuLQ6C4N2Mo5FOAfUZwax0hw919r52S3oXRN\/1GuEEqkptNtellgKztKw0lW0HacZ64PtUddbRdLJcZNovltl2+4Q3FMyYstlTTzLgOChaFAKSoexGanEJ0SA0tJkRmZMSUgoeA8kghChn29CKby7HMgyFRvEtKWEBSghR+3Mc+lTFu4V8UrxptzWdq4b6rm6eYacfcu0ezyXITbbee8WXkoKAlODk5wMHNV1N4mgIQ4+p1LfJIWc4FbpUbxOHL59D5m63i4vR4bb6G1tJIQQMZwOh+uK0eKvDbi2nUKWoOpkKyjJ3DofpTa3SnGJ7cltresObggf5ifSvUxwS7QpjqDXAfiOhxTAbS4nTU3qFkg\/6L2JFcpJp6Obf0eeN32Qt5Kn4wcB7wFKMpKgs5P96fPamQqF4FyG62tpKQkKPMFJGM\/apHU0O\/6Qkx7ZqzTdwsV1j7CqHc7e5GeSOhO1wA4OD6VGty9PynZL9xH87vSW1pCgFJ9On\/AJVhLk9oqk0M5l9Wh1zwLuWpJUtxpaOSSr8Q+dS0J+wquMU29CN7w2yElOG8Y9M9Dn2phHmWy9XFpiXbkN796coOPMehpRptpMFyeVPJUytRLKxglCTz5joa2momiUGlbZMYK1PKbkqUd3drG3r6D6Voc0UpoqMe4EJOAgKTzJ+eKYKgNJlS2Yj7yVIZ8QwUq6jGSDWyxXO9szGu\/wC8KHQEoL6VbMnpg\/OrakZ2hvc7ReLG01NXLBB8vkVzST6U3bTcremNIhvKK5yCU7Bz5HBFOLncb3OiOsSIxUy26cud2TtIPTNEC9pgR2GZFvLq4yi4ysqKSkn\/AIVr4rouzKLdrvAcSmVDdWWXC4vek55jnW6VqWPL79D8ZxtLiUqTg8wtPQ1MwNT264OKacHdJCMlThzu+X96bTLvph9TbkhhL6grCQEY2j5+4rRKIK4zYcuWxcmM96dpdSRyyPWrRLFhvTbanXWu8wMc8H3IqEuDdsTDZajrbUmQ+p07RgpT0ApW7Bb5EQPNz\/DuA48ysg1Lo6PE3jWS9XQ+ctNjddaCWP5ZJaKkrGM+hNNEaNLzQW3KKCSchQ6DNYvadEIPLVNcUy0yHd6OSSvOMUxanXNtRajzF4UkLAJzmoIYp5F8TWuxvIugti1JClDKV+hGOVLM05c4uSI5dQAMlApZjt2iymJktCgpAGxfoR1xn+tSDGtHtmyTHB680+tDGyDNvnJCh4RwFA3KyMYHvTYpV6g1dGdWW13CXWSkKGDyz\/Stcy52J5LjobQVqbxnZzpRb\/Cn4V86VJWFAgkYNWZMayuIXJiBOxtg7kq\/NTOHZ2JiVAP7FJGRnpUOsYOUXJeiLS65kkrJJ96KkZNkdjBH80LKxnyjpRSjSySS0yDBooorZ5QooooB\/ZmIcialE1zaj64zVludvtMaMlUNlvdnqFc8VSwSk5FbBJfxguqIHQZq3qjeOXCak\/RICKlcs7k8iKZPoCH3EYxhRxWSJ76TkqzWC3S8suK61ivZ6\/IzYskKhp3ZJ\/wB5uKiU9JbQF9EnrSTbGUdwYZU4Xs8jywaVy+pXFTGfjBwpGAT0p3D1DFQ20JEckt9D7fSvM3lW6Pm3KyIds9wZWG1RXNx5jHP\/ZWgxXUkpLSwU9eXSrgnUluW4kc0gDmTSsXe1rXISh5KUKPPPU\/Siz5F\/wBRHJrspiWitQSkEk9AKzXEeb\/0jLifqKuCrrplDRW2lguoHlJbGc1qtF8\/i0sR5LDaEBJOfevRNuPR0jspygB0NJV3\/wAKWiSsOtocSlac7Ur5A0xf0ew3HeU1KcW83kpSAMY9Aaz\/AFRaKtRUsjTF2cWlIZThXqFAgU5b0lJcaeLclpbrRGAlXI88HJ9DWucboUQFFSJsUxEZ+U6O7DDgbUFdc5xWudapMFTSVlLgeRvQUHIIq8kSjq38MPgzw748djnWOgOJmnWLtapWqXykK8rsdzwzQDrLg5tuDPJQ+hyMivjftk9hDiJ2Ur4q5I76\/wChZrhEC+NN5LJJ5MygBhtzpg\/hV6HOUjoL8GyI\/D7OWpG32ylStTurA+Rjs4qE7KXxD9B8emZnZ77T8W1N3a4LdtcebMbSIF7bUopDTqT5WnjyA\/yqOMbTgHVg8y+B+P8A2k4u\/wDcbN\/vJVfFnbQUR2sOK599VTv94a7N9lvsYad7K\/FLiDqDQV1U7pPWUSB4O3yFFT9veZcfK29\/+dsh1O0nzDBBz1PGLto\/\/FjxXH\/Wqd\/vDQHTfsvH\/wB0nqYf9TtXf+CVXGCuz3Ze\/wDlKam\/\/h2rv93KrjDQD2yf9MQf+9M\/+MV+gDtsdrWX2QOG+ndcxNFM6lVersm1GO5NMYNAsOO79wQrP+jxjHrX5\/7J\/wBLwf8AvTP\/AIxXZ34u2gdc8QuA2irXoLRd91LMjanbkPR7RbXpjrbXg3071JaSohOVAZIxkgUBP8Cu0FwF+JloHUXDniJw5Zh3i2MByRbZKw8tppzKUyokgBKkqSoAHABB25yFVx87Q\/CG48B+M2rOEtzeU+5p2eWWX1AAvR1pS4w4QOhU042rHzro98JvspcXOFmqtRcY+KWl7hpSJLtX8Lt0C6MqjynypxK1uraWAptCQ2ANwBJV0wOfw329eJtn4u9rLiHrPTz6HrWZ7NuiOoOUuoiR24xcB9QpTSlA+xFKB4Alakc0kg+4p01c57bamkS3Nq+Shu600FZAfKo1fZUSDV5uDSmSl0Hw4KUApHQ8iD7isTdp+7IkKCQsKCAfKkg8sD5UxJxQAT61OKLZZo2q46CoOQVDJUvCVZBUrrn+vOpR282ja0488hSnepKQrYnIJSf9lUfH1pa5vCmUn4CrVFm9\/wB+hbT5cQWiMbU+hzT0W6xzWw2y0nKVpWShzzBKuv1x7VU8etAWpPRRBpLG\/st2WyVYbfHbcbYy7uR3iCo+YYIyBj5VHrs0W4uFq0SgVhJJbcJ6\/WoduVIbWlxD6wpPQhXSs482TFdLsd8oWsEKIPM560jFrti7VE8\/aJzMFMOHMU6qQru1NLGMFPMjNNU2i4R0NFezvC53JSo42H0BPzrRDvsuIpvJDgQ6XvNzOSMGncnUaZqnvERsJc2qTsVgpUnoa29lhOWN3EaXS4XGWE2p9tKe5WEhCRklQ5VGFpaSUqTgjkQeoqVnXCK\/OZuTCFh3yqcB6bh7fapuOrTzj0hx15pfiSFbVj8Hvzqi3dsqOwbcGj5Vd1WKxyGkvNNpCFDakhWMn3+1V+1Q4ary9bZLYeTlSWzn26GoOS6IlKlJ\/CcZpQ86Ojihn2NWJWjlKbQ4zLwVDKkqT+H5Uzd0rdEEBKW1k+gVjA9zQqkkR6LhNbTtTIVj0zzorYbNddykpgOq2nBI6ZooXRF0UUVs4BRRRQBRSpTuoUMHFAJWTfXnWNKlWDQF4t7WnVQkqQ2yXAnmVjJz\/WoN+JHS4paAkDPIJ6VDKWpPIHFbGlypLrcZgrUtxQQhI5lSicACkt9Hq8XPDBfJWWG3WeLdXVd9vR5QApJ9ajL3Z1WeSGfEJcSoZSRyP9ac6htuqtDXyfpXUUGVartbHlRpkR9JQ4y4OqVD0NQjr7shYU8tS1e5OaUjlnnHLkc4rswPInNKh1xvmhZSfcV6bwk7NHHHjxEuFw4ScPZ+o2LW6hmYuO8ygMrWCUg94tOcgHpmvP77Yrrpq9XDT17hORLjapTsKYwvBLT7SyhxBIyCQpJHI45U\/DmkzCPdZ8f\/AEUpYx863I1FdUtuN+Jz3nUlPOo2nlns131DdI1ksFrl3K4zXUsxokRlTrzzijgJQhIJUSfQCs8ULFiXWVEeQ+h5RKDnBPKpL\/E6E953UBtsukFZSSCSDnNe92v4bPbPu1pTeGeDE1hC0b0sSp0Vl8j2LanApJ+SsGvC+IPDLiDwpv7mluJGj7rpy6tjf4a4R1NKUj0WgnktJwcKSSD71HCLFswOoLdIamplMvJMzrtIOMdMVut98tSRDW+4tDsZCmR5M8j\/AJv6VVqf2HT991Td4tg01Zpt1uc5wNRocJhTzzyz0ShCQSo\/ICo8aYs7FfCo4mcPLDwHvsW\/67sNukK1C4oInXBmMtY7hobglagSM+tcqbkmwTZj8hthjf4pxaltLCSlXeE++cfSvWbf8NntoTrUm7t8F5jaVo3pjvz4rT+PYtqcBB+Rwa8K11w911wwv72leIek7rp27sAFcO4R1MubT0UAfxJOOShkH0NHDVBM6LdjL4mB4fG2cLOPlyel6cMgwbfqNxxTz1uSMBCZB5qcZ\/1\/xI9dw\/D8f9rCDZ9V9oniZqiw3Zl+LK1HNfZkJdStiQguEpU2tJ5gjFeClZUdp6Zr37T3YO7X2q7Bb9Sae4K3idarpHblw30y4oS6ytIUhYCnQQCCDzArcVSphnS7sGXThRqfsDQOE2teIdmtI1DBvdonM\/xaOxMZZkuvNqUhLhO1WxZKSUkdDgiqKr4XnYASopPaM1GCOo\/xdZuX\/wDVrnTxG7J\/aV4N206i4g8H9SWW3NkFc8Rw9HZ58t7rJUlGTy8xFeZLv895W6StLqgNu5Q54+vrVLBRcqk6RbdWaQsmnuNOoNHaVuSpdosmo5kK3ynXUuKkRo8lSW1laAEqKkIB3AAHOQAK7a9rnty6e7N2gbJqjREWwa9m3G5Jt70CLekBcdssuL7090FnGUBPMAebrXHDg72Ye0Dxcsy9dcLeGFw1FZ4UlcR6THfYQkOpQFKQQtaTkJWk9PWqPZ273fb4xpGyW19293Fxq2RmW1pCnJJd2pQCSBzJ29aw3JPRhvej6u7QfxUuPnG7TcjRGmrRA0HZ54LUtVtdcdnSW1DBaL6sbEH1CEhR6bscq+LJDDrKyy62UODmUqGDX1W72D+2W7b4xb4EXZMhjYSkyImcjqQe+xgj5Vkn4f8A2spMqS5c+AF5WpTp7pxL0X8HpnDwqRk29oJnyYW1J5K5fWlAV0yKuTLEyXrFOkLxa20zYs5yGplWArxCVd3sPPGdycdcZr0Hjd2cOK\/Am3RbrxR4UzNP226OqiQ5bjzCw4\/t3bQEKJBASo8+VXk7qjaR4ZtPypQMVboOjEOykJHeSg+j+RFCgh9azjCcf161eOKvZI47cGdNs6w4k8P52nrXLk+GjqlvMrKl7VLCf5a1c9qVH06VsWeNUVctL8Itfa4ucqy6MsD17nw4TtwdjQiHHQw0Ny1BHU4Sc4GTjNVpyz3JpWxcJ4KykbdvPKs4H9j9qFGRpMe9b1w5CFlC2HEqB2qBSRtPz9qm9N8Pdaauukmy6a05MuEuFCfuUlDCNwYistlx15auiUJSCSonHT1IrLBXOWKStm0Yr23hJ2Ku0vxv08NW8O+F9wm2VZIZnyHWorMgg4PdF1Se8AIIynIyMZzUNdHh1bR0q1cSuEvEbg9qNzSXE7R1z05dW094GJrJT3iM4C21fhcQSCNySRkEZ5VU95HLFAZEgdawKsnlnFClbvSsaAcGY+Wg13y9qfwpz0rFiQ7Hc75pxSFjooHnWmlAoOiRa1BdGjkSlnHoedSLOsZKGFh5oLeJ8qugA9qrpxWOTnFWzLplgXq6aVkhCAD6YoqBBxRV5AwoorJX4RVOdmNFFFCmTfU0i\/xUrfU0i\/xUAlA60UDrQGS+tfZ\/wtezcOM\/HhrXmo7X3+luHpbub5dRll+fk+GZOeRwpJdI9mxnrg\/HMKFLuUxi3W+M5IlSnUssMtp3LccUQEpAHUkkDFdrYvCLib2QuwA7w\/4QaNut+4m6ij7Zxs0VT7sefLSA+9lAzhlobEq\/MlB+VAeAfGE7OTEW62XtMaQtyVQ7uG7VqFyMncjvwn\/m0lRH50DuyrplDY6nnzr0zMs8Xc3NZR3hPJSk5FdneyJoviXxg7Hd87N\/ab4e6gsEiBGXZYkm7QVtqkwlDfGdSV43OMLGPo22eua486+4Paz4ccRL\/wANdSxUMXXTk1yFJOSEL2nyuIJGShScKSccwoVYg6kfBudjvaY4nKjOJWg3KB0HT+U5XNrjjGYkcfuI7brIWDrG85Gcf\/eu10c+C7anbTo\/iay86lalXOAfL6fynK5r8fWpTnHniYWVK3HWF5CQD\/8Amu1Htnr8Vu5Kr0QUnR9offCmpvhwo80ZB+1dcexVwN4Sdjns1SO0zr+Mg3y5Wr+MSbjISFPRoTgHh4scdEqc3J6c1KdAJwBjjRMjXSG6DLQ6nPNKs5B\/rXa3tQWi88cfhn224cM4q5rrWnrJeTDYGVOMRktqkNgDqWwlatvqWsDnitM8sa5Ll0fLupvjOccF6zP+FeG2jYen0vbW4s5uS\/KW3nkVOodSkKI9kYHzr0XtM9snswdo7sputa80e+\/ryU4uJbrVFx4q1TQAUy0SCMCPzTkYJX5kbeRI+MexDqzs4aU4u3a7dqezxLlpdywPMxGZVvXLSm4eIjlCghAJBDaXhn5ketdYeDPCLsJcftJv634dcEbDKsrMlUUS5dkcipccQlKlbO8wVJG4Akcs5HUHHGak38WMjXJ8ejhK9pi6oXsQ024fXa4OX1rsn2SeDvC\/sMdlh3tC8Q7chep7lakXe4y1oCpDaHkjw9vj\/lKipAPqVrO47QAnljxn1RpRvjpxAd0TbY8PTK9RTm7UxGGG24iHlJa2D0BSAf611l7dVsufGbsAwdV8NmVzYsaNadSqYjeZS4KG\/wCYAB17sOb1D0Davaswc7akYTZ8rXD4ynaAuGrivTfC\/RkWxh0lEGY3KckraGfxPh1KQrHsjGfQ19cuM8IPif8AZjlyZGn27VqiCHGG+9IVKsdzCQpG1wDzsrG0+ykkggKT5eLkzV6JEMtRmXG3ikALyORrqr8GrSWsLdw315xE1Gy7Gst+nRY1sW8koEgRkud66nPVALgTu6ZSsf5TXXaZU7ORl8sk7Tt6uGn7rHUxPtcp2HJaVyU262soWk\/MKBFd2NW8Z9T9nj4dVh4u6LgWyZeLDpfT4jsXJtxyMvvnYrCt6W1oUcJdURhQ5gdRyrkPx2uulNdcXeI+rLKmOYV31Rd50VxCQkltyW4ptX9QQf611z4h8LdVcY\/hz2ThtoS1t3C8XTTenFRYzj6WkrDL8R5eVq5DCG1Hn1xisqdmqPJ+xR8S2+9pfiSngtxj0Jp6JJvsV\/wMq1IdEd4oQVLYdZeW4SFICuYVjlgjnmviT4lvZ0092eu0O5H0XHRF07q6Cm+wYbYwmEtTi23mE\/6oWjcn2S4B6V9g9hP4cvEXg1xib41cX3rdbRZEyFWuBGlpeWtxxBRvcKfKhKUqX6kkkdBXzP8AE24wac449oPxelpiJ1k0ZbmrM28hWW5a++cW86hQ6pC17B793n1q80K2fY\/weQD2UdTZ9NUzv\/8AJHrkVZ9WXDQfE6Nra0sx3p1hvYuMZuQlSmluNPb0hYSQSklIzgg\/OuwnwkYbcLsx6sisghA1XOKMnPlMSMRXG2\/WG7L1HcWhBdyZb+CUnbyWr16VeSqyHXPsD\/EL4y9qXjLL4d6+0zo6325izP3FDtoiSW3u8QttIBLr7iduFnPlz051Xu2h8TDjp2c+0TqPhJorSmhptntDEBxh66QpbklReiNPL3KbkoScKcIGEjkB1614L8HSBMY7TtxkPMKQ2rTMxIJ5ZIdZz\/tFUv4pNquEntqa8lsRlKabiWc5wfN\/6vjjl786WhR80W29y9S8VI2pJ7bLcm7X5M55DIIQlbsjeoJBJIGVHGSTj1Ndb\/jH6S1Vq7hBoKJpTTN1vT7Go3XHWrfCckrQjwqxuUGwSBnlk1yJ0hbZzWs7T3kZY8Pc4ocz6ZdGK719trter7H2jdO6uRw\/Tqz+O3NdtMdV08D3O1pTm\/d3Lu78OMYHXOaKgcPtG8IuNMXV1llnhfrNotz45LirHKASO8TnJKOmK6lfGSnSLf2eNEpY2gvaqQ0vcnPlMGTmqBZvjYy7vdYdtHZobbEuQ0wXP8XFWzeoJzjwQzjPuKu\/xo3O97PuhHOQ36vQrH1gyatl\/D5L+E7Oky+2Pb+9I\/m2C4pXj12tDBr7s7X3w69KcYhM1\/wibh6c1vtDj0YYbhXRSTu84AIadOSN4GDnzD1HwV8JTP8A6Y9r\/wD0V0\/3Qr3rty9rji\/2W+20bloG8GRaJWnLYu42KYpSoUwBTvMp\/wAjmOQWnBHrkcqlijwngR2F+OXGTiBdtFX3RU\/RVrtEgNXq63eP5G1hIBbZSDh5ZGCnYSjHMqAIz05a7OfC3s49mDX2ltBWZtKxo+5ouF0kgLmT1Jhu+d5zH1wkYSPQCvj7jp8YuLc+HkG38CNJzLXqq6R83KZdUpcbtKuhQwByfX6hZASBjyk8h692StT6h1t8NnXeq9W3ybd7vc7bq1+XNmPKddeWWXslSlHJ9h7AADkKCmjlNwusOg9TcR9MaWui0NxLhf4UaY88ThcdchCV7SOQykkV2q7XHFjjz2e9L6OT2buDkPU1qSpyNcm0QnX0QI7SWww0hlhaVJCwXAF8wnuwMcxXAppxbTiXWlqQtJCkqScEEdCK++OB\/wAX7jBw6sUHTPE7RkHXcWC2hhuf41UKeW0gDLi9jiHVADqUpJ9T61LNq077PH+3F2k+LfaB1rB\/5R7Szp2LZkKTB08mKpt2EVAb1uLWN61Kx64SABhI5k\/MB6n61247Z2heF3a47E7vaCtdm8NdbZp86lsU95pKJTLSfO9FdI\/ElSQtOM4Ctqh8+I5qBdCUuD7UDFBOaCwx70HIGBSjFISfQ1SPYnp1owKXOetIelQCHr1oo2mihq0JWSh5RSfKlV0H0rZx0jGig0UKZN9TSL\/FSt9TSL60AlA60UDrQH1X8O22cD4vHWPxF48cQbJp2z6ObE+3xrk+EePuBOGhjHNLfNw\/6yUDoTX1bx3+MRedIcUL1png7pDTOp9LW5xLMW7yXnsy1BI3rRsIGzcSAfUDPrXKtR8pIrDcfegOmmhPjQ6+uOs7Jb9d8NNMQtPSZzLNylRHXy9HjqUAtxIUrBKQc4I9KrXxONV9nrX+oLHxq4IcV9OXy+PpFqv1shSQtx5tIJZkgY6gbm1fLu\/Y1zvqc0xBt0x9XjyClPIJJxVRH0dIfhV9pHg7wx01r9jitxDsml5Fwnw1xG58ju1PoS2sKUn5AkD+tew3vTfwfdRX+5anvOotEyLndpj0+a+dU3JPeyHVlbi9qXwkZUonAAHPkK5KXiHBilCYbTSUnqU9ahYsRC3FoWnkTWX2e\/B4znBTg6uz6K7Y957P2nuNci09nMW6XotMCItp2BNdlMmQUnvQFvKUsnOMjOB6V7h2H\/iOWTgjbkcLOKzEubot58riTGGu8etRcPnCkdXGSfMQMqSSrAVnFfDzujGZDCHYj5bURnC+YprK0iYUfvHJRUsn\/KnlW31s8UFykopbOw920Z8JDiLdjxJuU3hyqS6rxLuy9yIDbijzJcipdQjOeZBRz9c15x2p\/iI8LNO8OpXAzspJjtR34SoC7zBjiNDgsKBC24iSAVLIJG\/aEjOUlR5jlFLhriLGVbgr1NSrdgkyLc1NjOZUoZKSfT5V58skl3VlzQeKXGXZKiBZpU5MRUZGe77wq3c1H2NfePYZ7fls4H2dvgnxgblS9FoKzbrg213y7W2s+dpaOrjGSVYGVJ3KAChgDnmi03hIRNbbVkjykK832rNEPUT0tLKg6lSwRlR5Yrglx6kcdnZmXwx+FBrK5HibIRw9LjqvFObLzIiR1qPMlcRLqW855lJb5+oNeTdrL4jPDRGhn+AXZVeZaiS4ptsm9RIhjRYkUjCmYaCEncRlPeFISAcpycKHLaW5dYLq4a5C\/KMHYo4rIQLpalNXBTBSEEKCs5GT716ZNSWmdYqx4jS059x9MWU24hpW3cSQVH2+tdfdU9tLR\/DPsMWRrhBxT04riZabBZIcO3LUiQ4l4Ox25KC0sYJS0Xs+2M+lcjP8QzYRKpVu7tD\/AJ8DKcn3rU7qpp6AuIYqu8JJBKvw88iualJdFpHYLhF24+C3aQ4HXjhn2mdVQtG6jkxDbrkpuSqIichSeUuItOdpzzKD0VyIKTz5Sca9JJ4ea3u2kdLa9t+tNNtOd5AvVtcDjUlg8078c0OJ5hST6gkZBBNYN7t71yiz3PENuNjDmDkch6VLx9S2dpksd4spUonzJ9zk0cn9FWjpJ8MztPcFOF\/ZzvWm+KvFCxaevD1+lPsRZ73duOMGMwlK8eoJSoZ+Vcv7tfZ71\/uM+BIWWTKdfAbUdm0rJzj251PfxqyOLS85IaUM4aSpv8A24IPypmz4Ka4+WFx0iXFw7ghJDnPp7elOV9oVR9V\/DP458P8Ah72gpWouJupbZpe1\/wAAlx0Spr2xtTq3GilAPvhJ+1Vb4g3F3QfEXtQaw1PoPU7F7tEuFb2Yk6A5vYdUmEwlRB90rSpP9DXz\/JgQ7famrhFQ23KjFCi42rrzwodefKoy52lhVweffmIitPq7xkqQSlQIzyxVTTVEaJrS+qIMbUltucq4qaHfRi5vR5WihxBJz7HBNdDfir9ovgLxf4YaKtPDfiLZdVzYGoFyX49ulby02Y6071jH4STj+tc2XLNBj21q5MqMrYoB4H8BGcdOuKwNpim6S4ZCkfyyuOkA4VlO4c\/pVTVFqyxWGTa7brSzylyIzEOQ8hMgJI2IAUCFKx6f+VdG\/iicbOC3GngzorT\/AA64j2XUMu36pakTGLfJDi2WfCPoKz7DcpIz8xXMRnTTr8NK230KfWG1JRnG1Ks8z9qQ6euzby46QjKEhWd+ElJ5Z51E10Wj6x+HXqjQHCftM27Xeu9RxdN2hiyTYyn5y9iA4tG0An3JApp8TvX\/AA94q9otvWXDrWMHUFvcsMKKl+ErvGytC3QtO78wyMj518pW9V1kzQzFmuB9tC9nnPPA5pH2pHYt5QkyXmXv+bO9VDmlR5k4qp0Wtm1ixKmW9Mpl9CXUqWlbazg8sHly9v8AZXUbspcb+DGh\/h\/am4T6h4m2KJqmVatRIj2x2RtfcMhp0MgJ\/wBcqAH1rlzFk3x59wtt5dKlPqCkhOTjCsA49D0FZsXW4wWmpq4IUgIDYdIPmTnkkn+hFTk0w1ZnZLPBbvVrVe23pNvXJxNYYc7p0oQcuNpWUqCVFOQFYIya656Ot3woOMXD\/TlnuFo0pZk2NlLbUG6TX7XcWFqAKkPPIcQqQSeZVvWkk5BrkE7dUzG3w9CWO8X3iFIURsXjHXHQ+1Z2+\/KgRXmVsCSp0jHeqyhIA9vetxt9ka0dN+3124uEVq4Jr7MnZseiTINxjItU2db21Jg2+C2oborCiB3i1BISSnKQlSuZUeXK3aSoJSknPKrjC1JbVmOZHkUUL77KMpKzjn9Dimkyfa2O5TbGYitspSty2+YTkFJz7cz9q3RlOitFJBxg59qxq9RbXZi9IkOmMtfe980tDoOBgHnz6ZyK0T7RAaU7FiMIxNbWWhuCiFp5pKT6Ag4xUpiymgZoIxU7etPx7ZDjyWnnVKWB3iVp6Ej05e+eVZxrHEukGIqJuZdWtaHXFq3JylOenzo1RSvUVPu6MuqN3drZcwoJ5HHI+tNX9NXdhDjhjhaGhkqQoEEYzy96gIqinka1TZjAkRm+8SVFJweYIx1+9FAMknnSrpEfiFZOdBWzmYUUUUKZN9TQrqaG+ppF\/ioBKKKB1oDNX4TWFbFDymtdCJUFb4jbzqwhhC1L9Akc60VMacubNskKddSSFDHL0qoMycg3gAOSQ4gDpuP\/AArQ29LQ8pI5qSfarBdr7BnIT3ZIV86io62vEKcCh5qy7s+t4cVPEqdbZpkXq8ABKnFtpHTAxWY1JcVMhl5e8dDmrOl+yeCDc5TawRzCudK4ixmAtEBthO4EdOtdN0fNj8cvx7spMyaZakjZjFS0DUJjQ22CwVJb5ZHSmt3jNNxwtvAOccqltPxocqzlqQgKJVzzXjztcdnXzoThlf8AR2zSrU7ffR1pSQhBO4fWr\/o61RdVsGXFjXG4viY1CRGhKQktlxCyHHFLGAnKQBnAJJyR60VenLW20oubzuXhGFdM9K3f4fjwdqmpj7e\/yObV43oPocV5v8f08LaPV9KaJ07cDoWBcHpYkavu0eDIWkKPcJdnOxyR\/K2EgNj\/AOoTk\/hxUA1pOFebteIibn4SLa3Yqmm3FErmFxt1QaaDjbZLilNpQkFIGSeZxzpsq0zpfdxrXc3Y7EchaWg4raF5zuABwDnnmtEy1sltRuFzednJRzWp5SipQ\/D158vSvZcXBNI6wPQ7bo\/S1+j2W6T7r57tNRamIW3+YiQFoL6zkYCENOsY9Sp3lkJVh69wQ013b7UG6M3KS85dkMIg71EqiNMrSjCkJVuIcUSADyAx6ivHlabvrQZdbcyd2U7VkFBOOf8AYfalXB1Nb8PIeeSEK3hbbvRRxzHz5Dn8q5tL0zoj19vgbpm5Wp\/xV2NmuEFdmac8UQ2034qM+9IDmfMFNpayAAVHCk4KiBUfJ4DWTutSPxL7KAty3xakPFpLkwMYW8CnOdwaUFeXPMY9RXlXdalZbWVd+lvfvXlWcq5+Y+\/U8\/macXWffYa2VSbgp3vGyUKCjyB6iqm1pMrdnqDvZ+sfgYF5t+qJb9vlR7KqQpMcLejvTEMrcb7tPmUQl1Sm8Dz4x1CsQ+puDC7Pqq0WOKib4S54Ul8KDinGypaQU5SgpUpTSwlK0pVkcxXnsTUd0iR\/CNuFaEgAZBJSB0H0HpW+fqm93htDK3FF5bgWVgkrWoDaCT9OVafIi2XKHwsdlyZKlad1M2hqK08i2qAElxS3e7KslHJA65KOpA+dWGzdn6DcrtbbZcNUrjoOo3LVLSoo3+EBbSlxkE+Zze4EFHutJGQFEecwdaX+1OrVLckOS883XHFBwZGCM9elYHViEhtxMVaXkuodJC+WU+o9jijckzVIZO2++x7cG1d4GispLA5kcs5+laI16ujKkBuQVKQNiNyAoge3MVI2\/UrUXxjb7bqkSV7k8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alt='https:\/\/www.metadialog.com\/' class='aligncenter' style='margin-left:auto;margin-right:auto' width='401px' \/><\/figure>\n<p><\/a><\/p>\n<p><p>The process of dependency parsing can be a little complex considering how any sentence can have more than one dependency parses. Dependency parsing needs to resolve these ambiguities in order to effectively assign a syntactic structure to a sentence. Customer service chatbots are one of the fastest-growing use cases of NLP technology. The most common approach is to use NLP-based chatbots to begin interactions and address basic problem scenarios, bringing human operators into the picture only when necessary.<\/p>\n<\/p>\n<p><p>Read more about <a href=\"https:\/\/www.metadialog.com\/\">https:\/\/www.metadialog.com\/<\/a> here.<\/p><\/p>\n","protected":false},"excerpt":{"rendered":"<p>What is Natural Language Processing? Introduction to NLP The algorithm for TF-IDF calculation for one word is shown on the&hellip;<\/p>\n","protected":false},"author":9,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[197],"tags":[],"class_list":["post-2695","post","type-post","status-publish","format-standard","hentry","category-ai-news"],"_links":{"self":[{"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/posts\/2695","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/users\/9"}],"replies":[{"embeddable":true,"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/comments?post=2695"}],"version-history":[{"count":1,"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/posts\/2695\/revisions"}],"predecessor-version":[{"id":2696,"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/posts\/2695\/revisions\/2696"}],"wp:attachment":[{"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/media?parent=2695"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/categories?post=2695"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/solutionspk.com.pk\/estore\/wp-json\/wp\/v2\/tags?post=2695"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}