{"id":150,"date":"2024-06-19T08:13:03","date_gmt":"2024-06-19T11:13:03","guid":{"rendered":"http:\/\/triunfolarshop.com.br\/?p=150"},"modified":"2024-11-12T10:44:34","modified_gmt":"2024-11-12T13:44:34","slug":"deep-reinforcement-learning-symbolic-learning-and","status":"publish","type":"post","link":"http:\/\/triunfolarshop.com.br\/?p=150","title":{"rendered":"Deep reinforcement learning, symbolic learning and the road to AGI by Jeremie Harris"},"content":{"rendered":"<p><h1>How AI agents can self-improve with symbolic learning<\/h1>\n<\/p>\n<p><img decoding=\"async\" class='wp-post-image' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"306px\" alt=\"symbolic artificial intelligence\"\/><\/p>\n<p><p>\u201cThe same tools are also, ironically, used in the specification and execution of virtually all of the world\u2019s neural networks,\u201d Marcus notes. Connectionists, the proponents of pure neural network\u2013based approaches, reject any return to symbolic AI. Hinton has compared hybrid AI to combining electric motors and internal combustion engines.<\/p>\n<\/p>\n<p><p>Dual-process theory of thought models and examples of similar approaches in the neuro-symbolic AI domain (described by Chaudhuri et al., 2021; Manhaeve et al., 2022). Neural networks and other statistical techniques excel when there is a lot of pre-labeled data, such as whether a cat is in a video. However, they struggle with long-tail knowledge around edge cases or step-by-step reasoning. In this post, I discuss how the current hurdles of Generative AI systems could be (have been?) mitigated with the help of the good old symbolic reasoning.<\/p>\n<\/p>\n<p><p>OpenAI&#8217;s ChatGPT-4o, for instance, dropped from 95.2 percent accuracy on GSM8K to a still-impressive 94.9 percent on GSM-Symbolic. \u201cCLEVRER is a first visual reasoning dataset that is designed for casual reasoning in videos. Previous visual reasoning datasets mostly focus on factual questions, such as what, when, where, and is\/are.<\/p>\n<\/p>\n<p><h2>How AI agents can self-improve with symbolic learning<\/h2>\n<\/p>\n<p><p>Apple\u2019s study is part of a growing body of research questioning the robustness of LLMs in complex tasks that require formal reasoning. While models have shown remarkable abilities in areas such as natural language processing and creative generation, their limitations become evident when tasked with reasoning that involves multiple steps or irrelevant contextual information. This is particularly concerning for applications that require high reliability, such as coding or scientific problem-solving. This approach helps avoid any potential &#8220;data contamination&#8221; that can result from the static GSM8K questions being fed directly into an AI model&#8217;s training data. At the same time, these incidental changes don&#8217;t alter the actual difficulty of the inherent mathematical reasoning at all, meaning models should theoretically perform just as well when tested on GSM-Symbolic as GSM8K.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"303px\" alt=\"symbolic artificial intelligence\"\/><\/p>\n<p><p>A new approach to artificial intelligence combines the strengths of two leading methods, lessening the need for people to train the systems. It incorporates a more sophisticated interaction with information sources and actively and logically reasons in a human-like manner, engaging in dialogue with both document sources and users to gather context. It then employs logical reasoning to produce answers with a causal rationale. RAG is powerful because it can point at the areas of the document sources that it referenced, signposting the human so they can check the accuracy of the output. Yet LLMs, even with the benefit of RAG, are not really reasoning logically. When utilized carefully, LLMs massively augment the efficiency of experts, but humans must remain &#8220;to the right&#8221; of each prediction.<\/p>\n<\/p>\n<p><h2>A stepping stone toward more generalizable AI systems<\/h2>\n<\/p>\n<p><p>AlphaGo used symbolic-tree search, an idea from the late 1950s (and souped up with a much richer statistical basis in the 1990s) side by side with deep learning; classical tree search on its own wouldn\u2019t suffice for Go, and nor would deep learning alone. \u2022&nbsp;Deep learning systems are black boxes; we can look at their inputs, and their outputs, but we have a lot of trouble peering inside. We don\u2019t know exactly why they make the decisions they do, and often don\u2019t know what to do about them (except to gather more data) if they come up with the wrong answers. This makes them inherently unwieldy and uninterpretable, and in many ways unsuited for \u201caugmented cognition\u201d in conjunction with humans.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"306px\" alt=\"symbolic artificial intelligence\"\/><\/p>\n<p><p>The MAE values are low for all the nodes, which indicates a good performance along the network. As reported in the introduction section, the assumption about consumers\u2019 demand stationarity is determine the timestep of hydraulic modelling. For the  aim of the analysis, the timestep equal to one hour is a good accuracy; Therefore, the hydraulic analysis refers to a consumers\u2019 demand varying hour by hour, according to the demand factors in the demand patterns of Fig.<\/p>\n<\/p>\n<p><h2>Cell meets robot in hybrid microbots<\/h2>\n<\/p>\n<p><p>WTSs facilitate the transfer of water volumes to consumption centres (towns or cities). WDSs, also called Water Distribution Networks (WDNs), because of their networked structure, <a href=\"https:\/\/play.google.com\/store\/apps\/datasafety?id=pl.edu.pg.chatpg&amp;hl=cs&amp;gl=US\">ChatGPT App<\/a> transfer water to end consumers. Therefore, the issue of water quality with respect to the contamination and disinfection for people health is mainly related to WDNs.<\/p>\n<\/p>\n<div style='border: grey dashed 1px;padding: 12px;'>\n<h3>Symbolica hopes to head off the AI arms race by betting on symbolic models &#8211; TechCrunch<\/h3>\n<p>Symbolica hopes to head off the AI arms race by betting on symbolic models.<\/p>\n<p>Posted: Tue, 09 Apr 2024 07:00:00 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMirgFBVV95cUxQN0RKQ0FrOWotUGxPWlRndE1MRlRxeWJGd2Vxa2NDRERPbXEwS2RpSnIyeDBpTHpRM1JxSEQ2NldBVklETmZBSmxDdWw0OGlJS1BxVV9IVDl1Zk40XzFlYUtJNDZEYmVWNzdwSE1oSjRWeEJpdXctenFQNGRGLXBfZ3hOZ0RjSFdsaHE4MXNIQ3VjSFZCaGxiaHpSSy1SdXFzMGYzN2NuR0V1N0ljYmc?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>There isn\u2019t currently a common sign to indicate content produced by artificial intelligence. Ai-Da is urging governments worldwide to come together behind a universal symbol that can be watermarked on all AI-generated content in order to prevent people from being misled into believing deep fakes. Since at least 1950, when Alan Turing\u2019s famous \u201cComputing Machinery and Intelligence\u201d paper was first published in the journal Mind, computer scientists interested in artificial intelligence have been fascinated by the notion of coding the mind. The mind, so the theory goes, is substrate independent, meaning that its processing ability does not, by necessity, have to be attached to the wetware of the brain.<\/p>\n<\/p>\n<p><h2>Fundamentals of neural networks<\/h2>\n<\/p>\n<p><p>Thus, it is useful for the reader to report EPR in the context of machine learning. EPR is founded on the idea of evolutionary optimization integrated with machine learning. John Koza was <a href=\"https:\/\/www.metadialog.com\/blog\/symbolic-ai\/\">symbolic artificial intelligence<\/a> the pioneer who developed the paradigm of genetic programming, showing in a book4 the possibility of creating machines that program themselves to solve problems postulated by humans.<\/p>\n<\/p>\n<p><p>This means that the proposed approach based on EPR-MOGA can distinguish between first and second order decay process since the selected inputs within the monomials correspond to the relative analytical solution, e.g. first or second order equations. (22), that incorporates both type of terms with little difference in the R2 in contrast with Eq. Therefore, EPR may be useful to identify the type of decay that best fits measured data.<\/p>\n<\/p>\n<p><img decoding=\"async\" class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"307px\" alt=\"symbolic artificial intelligence\"\/><\/p>\n<p><p>One of the key components in Tenenbaum\u2019s neuro-symbolic AI concept is a physics simulator that helps predict the outcome of actions. Physics simulators are quite common in game engines and different branches of reinforcement learning and robotics. Our minds are built not just to see patterns in pixels and soundwaves but to understand the world through models.<\/p>\n<\/p>\n<p><h2>Startup gives surgeons a real-time view of breast cancer during surgery<\/h2>\n<\/p>\n<p><p>Narrow AI systems are good at performing a single task, or a limited range of tasks. But as soon as they are presented with a situation that falls outside their problem space, they fail. Creating an AI system that satisfies all those requirements is very difficult, researchers have learned throughout the decades. The original vision of AI, computers that imitate the human thinking process, has become known as artificial general intelligence. CLEVRER is one of several efforts that aim to push research toward artificial general intelligence.<\/p>\n<\/p>\n<p><p>Humans reason about the world in symbols, whereas neural networks encode their models using pattern activations. The first framework for cognition is symbolic AI, which is the approach based on assuming that intelligence can be achieved by the manipulation of symbols, through rules and logic operating on those symbols. The second framework is connectionism, the approach that intelligent thought can be derived from weighted combinations of activations of simple neuron-like processing units. When applied to natural language, hybrid AI greatly simplifies valuable tasks such as categorization and data extraction.<\/p>\n<\/p>\n<p><p>Every great technological leap is preceded by a period of frustration and false starts, but when it hits an inflection point, it leads to breakthroughs that change everything. When the next S-curve hits, it will make today\u2019s technology look primitive by comparison. The lemmings may have run off a cliff with their investments,  but for those paying attention, the real AI revolution is just beginning.<\/p>\n<\/p>\n<p><h2>TDWI Training &#038; Research Business Intelligence, Analytics, Big Data, Data Warehousing<\/h2>\n<\/p>\n<p><p>Roughly speaking, the hybrid uses deep nets to replace humans in building the knowledge base and propositions that symbolic AI relies on. It harnesses the power of deep nets to learn about the world from raw data and then uses the symbolic components to reason about it. We have had a &#8220;data fetish&#8221; with artificial intelligence (AI) for over 20 years\u2014so long that many have forgotten our AI history. Our saturated mindset states that all AI must start with data, yet back in the 1990s, there wasn&#8217;t any data and we lacked the computing power to build machine learning models.<\/p>\n<\/p>\n<ul>\n<li>Like in the case of Network A, the coefficients of determination of all the expressions are high, which indicates a satisfactory performance of all Paretian models despite the loops.<\/li>\n<li>AlphaGeometry marks a leap toward machines with human-like reasoning capabilities.<\/li>\n<li>Alessandro holds a PhD in Cognitive Science from the University of Trento (Italy).<\/li>\n<li>Some people suspect it is because of how Hinton himself was often dismissed in subsequent years, particularly in the early 2000s, when deep learning again lost popularity; another theory might be that he became enamored by deep learning\u2019s success.<\/li>\n<\/ul>\n<p><p>However, they often function as \u201cblack boxes,\u201d with decision-making processes that lack transparency. AlphaGeometry 2 is the latest iteration of the AlphaGeometry series, designed to tackle geometric problems with enhanced precision and efficiency. Building on the foundation of its predecessor, AlphaGeometry 2 employs a neuro-symbolic approach that <a href=\"https:\/\/chat.openai.com\/\">ChatGPT<\/a> merges neural large language models (LLMs) with symbolic AI. This integration combines rule-based logic with the predictive ability of neural networks to identify auxiliary points, essential for solving geometry problems. The LLM in AlphaGeometry predicts new geometric constructs, while the symbolic AI applies formal logic to generate proofs.<\/p>\n<\/p>\n<div style='border: grey solid 1px;padding: 13px;'>\n<h3>UCLA Computer Scientist Receives $2.8M DARPA Grant to Demonstrate New AI Model &#8211; UCLA Samueli School of Engineering Newsroom<\/h3>\n<p>UCLA Computer Scientist Receives $2.8M DARPA Grant to Demonstrate New AI Model.<\/p>\n<p>Posted: Tue, 02 Jul 2024 07:00:00 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMipgFBVV95cUxNMXJDVjBiOTRfZ0tFYldNZ0hZN19feFYtcTctSFhEb3FPcWt6QzBEN3N6MHg5X0ZHV292WDluaThFZF9KM250UGZUYVNHYkNKU3NCX21jZVNDUnprQmIwV3NwLWNicUVjNGhZb05pU213bWEwMXQtNG10bTZwT2tROHJBT2lZVEsySVdsYmpPWkdxbnZaT0hkS2QtTzY1djg2T1RKNUxB?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>However, due to the statistical nature of LLMs, they face significant limitations when handling structured tasks that rely on symbolic reasoning (Binz and Schulz, 2023; Chen X. et al., 2023; Hammond and Leake, 2023; Titus, 2023). For example, ChatGPT 4 (with a Wolfram plug-in that allows to solve math problems symbolically) when asked (November 2023) \u201cHow many times does the digit 9 appear from 1 to 100? Nevertheless, if we say that the answer is wrong and there are 19 digits, the system corrects itself and confirms that there are indeed 19 digits.<\/p>\n<\/p>\n<p><p>Consequently, calibrating chlorine decay models is generally computationally expensive, which has limited the use of chlorine decay models for modelling purposes15. You can foun additiona information about <a href=\"https:\/\/thinkml.ai\/metadialog-ai-for-sales-benefits-use-cases-and-challenges\/\">ai customer service<\/a> and artificial intelligence and NLP. Mathematical reasoning and learning meet intricate demands, setting crucial benchmarks in the quest to develop artificial general intelligence (AGI) capable of matching or surpassing human intellect. The company is aiming to tackle the expensive mechanisms behind training and deploying large language models such as OpenAI\u2019s ChatGPT that are based on Transformer architecture. In recent years, subsymbolic-based artificial intelligence has developed significantly, both from a theoretical and an applied perspective.<\/p><\/p>\n","protected":false},"excerpt":{"rendered":"<p>How AI agents can self-improve with symbolic learning \u201cThe same tools are also, ironically, used in the specification and execution of virtually all of the world\u2019s neural networks,\u201d Marcus notes. Connectionists, the proponents of pure neural network\u2013based approaches, reject any return to symbolic AI. Hinton has compared hybrid AI to combining electric motors and internal [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":[],"categories":[8],"tags":[],"_links":{"self":[{"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=\/wp\/v2\/posts\/150"}],"collection":[{"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=150"}],"version-history":[{"count":1,"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=\/wp\/v2\/posts\/150\/revisions"}],"predecessor-version":[{"id":151,"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=\/wp\/v2\/posts\/150\/revisions\/151"}],"wp:attachment":[{"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=150"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=150"},{"taxonomy":"post_tag","embeddable":true,"href":"http:\/\/triunfolarshop.com.br\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=150"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}