{"id":4252,"date":"2023-10-25T01:03:01","date_gmt":"2023-10-24T17:03:01","guid":{"rendered":"https:\/\/www.sunsylux.com\/blog\/?p=4252"},"modified":"2023-11-24T18:05:23","modified_gmt":"2023-11-24T10:05:23","slug":"artificial-intelligence-in-manufacturing-types","status":"publish","type":"post","link":"https:\/\/www.sunsylux.com\/blog\/?p=4252","title":{"rendered":"Artificial Intelligence in Manufacturing: Types, Challenges, and Uses"},"content":{"rendered":"<p><h1>Artificial Intelligence in Manufacturing<\/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=\"ai in manufacturing industry\"\/><\/p>\n<p><p>There are many applications for AI in manufacturing as industrial IoT and smart factories generate large amounts of data daily. AI in manufacturing is the use of machine learning (ML) solutions and deep learning neural networks to optimize manufacturing processes with improved data analysis and decision-making. By applying AI to manufacturing data, companies can better predict and prevent  machine failure. AI in manufacturing has many other potential uses and benefits, such as improved demand forecasting and reduced waste of raw materials.<\/p>\n<\/p>\n<p><img class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"304px\" alt=\"ai in manufacturing industry\"\/><\/p>\n<p><p>It\u2019s imperative to recognize that diverse and representative datasets are the cornerstone of unbiased AI. After estimating the overall market size, the total market was split into several segments. The market breakdown and data triangulation procedures were employed wherever applicable to complete the overall market engineering process and gauge exact statistics for all segments.<\/p>\n<\/p>\n<p><p>The digital twin of their manufacturing facilities can precisely identify energy losses and point out places where energy can be saved, and overall production line performance increased. The data collected in production processes mainly stem from frequently sampling sensors to estimate the state of a product, a process, or the environment in the real world. Sensor readings are susceptible to noise and represent only an estimate of the reality under uncertainty. The inconsistencies in data acquisition lead to low signal-to-noise ratios, low data quality and great effort in data integration, cleaning and management. In addition, as a result from mechanical and chemical wear of production equipment, process data is subject to various forms of data drifts. Samsung uses AI in quality control to improve production procedures and guarantee superior products.<\/p>\n<\/p>\n<p><h2>Market Adaptation<\/h2>\n<\/p>\n<p><p>Manufacturers are increasingly turning to artificial intelligence (AI) solutions like machine learning (ML) and deep learning neural networks to better analyse data and make decisions. Some examples of AI in the manufacturing industry include predictive maintenance, quality control, demand forecasting, supply chain management, autonomous robots, and collaborative robots. The U.S. Department of Energy data shows that predictive maintenance can save 8% to 12 percent over preventive care, and decrease downtime by between 35% and 45%. Executing AI-powered manufacturing solutions may aid in the automation of processes, allowing firms to create smart operations that cut costs and downtime.<\/p>\n<\/p>\n<p><img class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"307px\" alt=\"ai in manufacturing industry\"\/><\/p>\n<p><p>An AI solution can be used by manufacturers to find inefficiencies in factory layouts, eliminate bottlenecks and increase throughput. Once changes have been made, AI can give managers a real-time view of site traffic. However, it is vital to know that businesses are now implementing AI in manufacturing software. So if you are also thinking of investing in custom manufacturing software development then you must first go through its benefits. It can detect potential dangers and alert workers to them, as well as identify lapses in efficiency. These manufacturing yard systems provide data and analytics that can be used to give enterprise-level visibility of key indicators and other useful decision-making information.<\/p>\n<\/p>\n<p><h2>Predictive Maintenance: Employing IIoT and Machine Learning to Prevent Equipment Failures<\/h2>\n<\/p>\n<p><p>Using predictive maintenance technology helps businesses lower maintenance costs and avoid unexpected production downtime. One of the best examples of AI-powered predictive maintenance in manufacturing is the application of digital twin technology in the Ford factory. Every twin deals with a distinct area of production, from concept to build to operation. For the manufacturing procedure, the production facilities, and the customer experience, they also use digital models.<\/p>\n<\/p>\n<p><p>Using the machine learning models, they can plan the production ahead of time, taking the demand into account. The forecasting methods may involve neural networks as well as regression analysis, SVR, or SVM. Visual inspection powered by machine learning algorithms can also track whether workers on the production floor are wearing safety gear and adhere to health and safety regulations. The technology can also monitor the workers\u2019 fatigue levels and take necessary measures if they appear to be exhausted. Manufacturing companies can use AI in various ways to improve safety on the production floor.<\/p>\n<\/p>\n<p><p>UVeye&#8217;s system uses AI, machine learning, and high-definition cameras to quickly and accurately check vehicles for defects, missing parts, and other safety-related issues. By analyzing this data, AI algorithms can anticipate potential problems and schedule maintenance to prevent unexpected downtime. This approach also allows manufacturers to reduce the frequency of unnecessary preventive maintenance and save operating costs while enabling factories to operate more efficiently and double their production capacity.<\/p>\n<\/p>\n<p><p>AI extends its capabilities to identify anomalies that may be imperceptible to human inspectors. By analyzing data from various sensors and stages of production, AI can pinpoint deviations that may indicate underlying issues. This proactive approach prevents defective products from progressing further down the line. The integration of AI in manufacturing and especially into quality control revolutionizes how manufacturers ensure product excellence.<\/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='406px'\/><\/figure>\n<p><\/a><\/p>\n<p><p>AI and ML are already an essential element of Factory 4.0, but they also can improve supply chains, making them interactive to changes on the market beforehand. Thus, managers can improve their strategic vision by relying on AI suggestions. Estimates are generated by AI based on linking together a number of <a href=\"https:\/\/www.metadialog.com\/blog\/ai-in-the-manufacturing-industry\/\">factors such as<\/a> political situations, weather, consumer behavior, and the status of the economy. Staff, inventory, and the supply of materials could be calculated according to predictions.<\/p>\n<\/p>\n<p><p>Although these are much more infrequent than humans, it can be costly to allow defective products to roll off the assembly line and ship to consumers. Humans can manually watch assembly lines and catch defective products, but no matter how attentive they are, some defective products will always slip through the cracks. Instead, artificial intelligence can benefit the manufacturing process by inspecting products for us. Moreover, AI trends in the manufacturing sector are enhancing predictive quality assurance. By analyzing historical data and real-time sensor data, ML algorithms detect patterns and trends that may indicate potential quality issues. This enables manufacturers to proactively address potential defects and take corrective actions before they impact the final product quality.<\/p>\n<\/p>\n<p><p>With the help of AI technology, manufacturers can employ computer vision algorithms FOR analyzing pictures or videos of manufactured products and components. Predictive maintenance is like predicting when things machines might break down. Instead of waiting for a problem, it checks the health of equipment and machinery and predicts their life. Cobots learn different tasks, unlike autonomous robots that are programmed to perform a specific task. They&#8217;re also skilled at identifying and moving around obstacles, which lets them work side by side and cooperatively with humans. Once a futuristic sci-fi movie scene, factories with robot workers are now a real-life use case of manufacturers using artificial intelligence (AI) to their advantage.<\/p>\n<\/p>\n<p><h2>Customer management<\/h2>\n<\/p>\n<p><p>Supply chain management plays a crucial role in the manufacturing industry, and artificial intelligence has emerged as a game changer in this field. By harnessing the power of AI and ML in manufacturing, companies are revolutionizing their supply chain processes and achieving significant improvements in efficiency, accuracy, and cost-effectiveness. Manufacturers are frequently facing different challenges such as unexpected machinery failure or defective product delivery.<\/p>\n<\/p>\n<p><img class='aligncenter' style='display: block;margin-left:auto;margin-right:auto;' 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\" width=\"306px\" alt=\"ai in manufacturing industry\"\/><\/p>\n<p><p>Much of the power of AI comes from the ability of machine learning, neural networks, deep learning, and other self-organizing systems to learn from their own experience, without human intervention. These systems can rapidly discover significant patterns in volumes of data that would be beyond the capacity of human analysts. In manufacturing today, though, human experts are still largely directing AI application development, encoding their expertise from previous systems they\u2019ve engineered. Human experts bring their ideas of what has happened, what has gone wrong, what has gone well. As computer technology progresses to be more capable of doing things <a href=\"https:\/\/www.metadialog.com\/blog\/ai-in-the-manufacturing-industry\/\">humans have traditionally<\/a> done for themselves, AI has been a natural development. It doesn\u2019t necessarily replace people; the ideal applications help people do what they\u2019re uniquely good at\u2014in manufacturing, that could be making a component in the factory or designing a product or part.<\/p>\n<\/p>\n<p><p>When an end-product is of lower quality than expected, AI systems trigger an alert to users so that they can react to make adjustments. Manufacturers can use automated visual inspection tools to search for defects on production lines. Visual inspection equipment &#8212; such as machine vision cameras &#8212; is able to detect faults in real time, often more  quickly and accurately than the human eye. Supported by the data collected from industrial sensors, AI helps to eliminate unplanned downtime and optimize process effectiveness.<\/p>\n<\/p>\n<p><p>Recognizing recurring patterns and complex relationships, machine learning systems process historical sales and supply chain data, and analyze thousands of factors that drive buying behavior. Unlike traditional forecasting, ML forecasting can work with large amounts of data. Consequently, it can be a solution for both short-term and mid-term planning of new products.<\/p>\n<\/p>\n<div style='border: black dashed 1px;padding: 11px;'>\n<h3>As Manufacturing Returns Home &#8211; Here Is How AI Can Help Ensure Better Collaboration Between Suppliers &#8211; Forbes<\/h3>\n<p>As Manufacturing Returns Home &#8211; Here Is How AI Can Help Ensure Better Collaboration Between Suppliers.<\/p>\n<p>Posted: Tue, 10 Oct 2023 07:00:00 GMT [<a href='https:\/\/news.google.com\/rss\/articles\/CBMilQFodHRwczovL3d3dy5mb3JiZXMuY29tL3NpdGVzL3BhdWxub2JsZS8yMDIzLzEwLzEwL2FzLW1hbnVmYWN0dXJpbmctcmV0dXJucy1ob21laGVyZS1pcy1ob3ctYWktY2FuLWhlbHAtZW5zdXJlLWJldHRlci1jb2xsYWJvcmF0aW9uLWJldHdlZW4tc3VwcGxpZXJzL9IBmQFodHRwczovL3d3dy5mb3JiZXMuY29tL3NpdGVzL3BhdWxub2JsZS8yMDIzLzEwLzEwL2FzLW1hbnVmYWN0dXJpbmctcmV0dXJucy1ob21laGVyZS1pcy1ob3ctYWktY2FuLWhlbHAtZW5zdXJlLWJldHRlci1jb2xsYWJvcmF0aW9uLWJldHdlZW4tc3VwcGxpZXJzL2FtcC8?oc=5' rel=\"nofollow\">source<\/a>]<\/p>\n<\/div>\n<p><p>While some AI models can show sources or calculations for their output, others more resemble a black box. After all, if a human is required to have the final sign-off on a critical business process, they need to understand what they are signing. That means the results need to be presented in a way that is easily intelligible. Still, more importantly, every process needs to be auditable \u2013 and that will also necessitate human involvement. If a machine in the manufacturing process runs hot and creates a fire, it will be a human safety officer, and not the AI, who will ultimately need to take responsibility. BMW has been using Big Data for detecting flaws in their prototypes since 2014.<\/p>\n<\/p>\n<p><p>Robotic process automation (RPA) is the process by which AI-powered robots handle repetitive tasks such as assembly or packaging. AI-powered vision systems can recognize defects, pull products or fix issues before the product is shipped to customers. Today, image processing algorithms can automatically validate whether an item has been perfectly produced. By installing cameras at key points along the factory floor, this sorting can happen automatically and in real-time.<\/p>\n<\/p>\n<ul>\n<li>Since their calculations rely on constant parameters and the infinite capacity principle, they do not allow the manufacturers to make realistic predictions.<\/li>\n<li>After estimating the overall market size, the total market was split into several segments.<\/li>\n<li>Implementing AI in manufacturing facilities is getting popular among manufacturers.<\/li>\n<li>Every second the AI software system calculates the optimal use of resources and route for the transporters.<\/li>\n<\/ul>\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>Artificial Intelligence in Manufacturing There are many [&hellip;]<\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":[],"categories":[168],"tags":[],"_links":{"self":[{"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=\/wp\/v2\/posts\/4252"}],"collection":[{"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=4252"}],"version-history":[{"count":1,"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=\/wp\/v2\/posts\/4252\/revisions"}],"predecessor-version":[{"id":4253,"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=\/wp\/v2\/posts\/4252\/revisions\/4253"}],"wp:attachment":[{"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=4252"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=%2Fwp%2Fv2%2Fcategories&post=4252"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.sunsylux.com\/blog\/index.php?rest_route=%2Fwp%2Fv2%2Ftags&post=4252"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}