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	<title>delhi Archives - Artificial Intelligence</title>
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		<title>Top 10 Places to Visit in Delhi with Motoshare Rentals</title>
		<link>https://www.aiuniverse.xyz/top-10-places-to-visit-in-delhi-with-motoshare-rentals/</link>
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		<dc:creator><![CDATA[vijay]]></dc:creator>
		<pubDate>Tue, 24 Dec 2024 08:58:21 +0000</pubDate>
				<category><![CDATA[Uncategorized]]></category>
		<category><![CDATA[10]]></category>
		<category><![CDATA[cars]]></category>
		<category><![CDATA[delhi]]></category>
		<category><![CDATA[MotoShare]]></category>
		<category><![CDATA[Rentals]]></category>
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		<category><![CDATA[Visit]]></category>
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					<description><![CDATA[<p>Discover the charm of Delhi, India&#8217;s bustling capital, with Motoshare&#8217;s newly launched bike and car rental services. Whether you’re a local looking to explore the city or <a class="read-more-link" href="https://www.aiuniverse.xyz/top-10-places-to-visit-in-delhi-with-motoshare-rentals/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/top-10-places-to-visit-in-delhi-with-motoshare-rentals/">Top 10 Places to Visit in Delhi with Motoshare Rentals</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
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<figure class="wp-block-image size-large"><img fetchpriority="high" decoding="async" width="1024" height="581" src="https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-5-1024x581.png" alt="" class="wp-image-19519" srcset="https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-5-1024x581.png 1024w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-5-300x170.png 300w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-5-768x436.png 768w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-5.png 1221w" sizes="(max-width: 1024px) 100vw, 1024px" /></figure>



<p>Discover the charm of Delhi, India&#8217;s bustling capital, with Motoshare&#8217;s newly launched bike and car rental services. Whether you’re a local looking to explore the city or a traveler eager to soak in Delhi’s rich culture, Motoshare offers a hassle-free solution for all your transportation needs. Here’s how Motoshare can elevate your experience in Delhi.</p>



<h2 class="wp-block-heading">Motoshare Services: Seamless Rentals at Your Fingertips</h2>



<p>Motoshare is your go-to platform for renting bikes and cars directly from vehicle owners in Delhi. With its user-friendly interface, booking a vehicle is now just a few clicks away. Whether you need a car for a family outing or a bike for solo adventures, Motoshare ensures seamless, efficient, and affordable rentals.</p>



<ul class="wp-block-list">
<li><strong>Car Rentals in Delhi:</strong> <a href="https://motoshare.in/delhi/car-rentals">Explore car rental options</a> for a comfortable and spacious ride.</li>



<li><strong>Bike Rentals in Delhi:</strong> <a href="https://motoshare.in/delhi/bike-rentals">Discover bike rental options</a> for quick and adventurous commutes.</li>
</ul>



<h3 class="wp-block-heading">Why Choose Motoshare?</h3>



<ul class="wp-block-list">
<li><strong>Convenience:</strong> Save time with our easy-to-use platform.</li>



<li><strong>Direct Owner Rentals:</strong> Get the best deals by renting directly from owners.</li>



<li><strong>Variety:</strong> Select from a wide range of vehicles to match your journey.</li>



<li><strong>Safety:</strong> Our secure platform ensures reliable transactions and vetted vehicles.</li>
</ul>



<h2 class="wp-block-heading">Top 10 Places to Visit in Delhi</h2>



<p>Once you’ve rented your ideal bike or car, it’s time to explore Delhi! Here’s a curated list of must-visit attractions:</p>



<ol start="1" class="wp-block-list">
<li><strong>India Gate</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Evening for the illuminated view.</li>



<li>Why Go: A historic landmark that stands as a tribute to India&#8217;s soldiers.</li>
</ul>
</li>



<li><strong>Red Fort</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Morning for guided tours.</li>



<li>Why Go: Dive into India&#8217;s rich Mughal history.</li>
</ul>
</li>



<li><strong>Qutub Minar</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Early morning for a serene experience.</li>



<li>Why Go: Marvel at this UNESCO World Heritage Site.</li>
</ul>
</li>



<li><strong>Lotus Temple</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Afternoon for peaceful meditation.</li>



<li>Why Go: Experience architectural beauty and tranquility.</li>
</ul>
</li>



<li><strong>Humayun’s Tomb</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Winter mornings for pleasant weather.</li>



<li>Why Go: A stunning blend of Persian and Mughal architecture.</li>
</ul>
</li>



<li><strong>Akshardham Temple</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Evening for the light and sound show.</li>



<li>Why Go: A spiritual oasis with intricate craftsmanship.</li>
</ul>
</li>



<li><strong>Connaught Place</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Evening for dining and shopping.</li>



<li>Why Go: A hub of modern culture and colonial charm.</li>
</ul>
</li>



<li><strong>Chandni Chowk</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Morning for food and shopping.</li>



<li>Why Go: A paradise for foodies and shopaholics.</li>
</ul>
</li>



<li><strong>Lodhi Garden</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Early morning for nature walks.</li>



<li>Why Go: A lush green escape in the heart of Delhi.</li>
</ul>
</li>



<li><strong>Hauz Khas Village</strong>
<ul class="wp-block-list">
<li>Best Time to Visit: Evening for nightlife.</li>



<li>Why Go: A perfect blend of history, art, and entertainment.</li>
</ul>
</li>
</ol>



<h3 class="wp-block-heading">Additional Recommendations</h3>



<p>For adventurers looking to delve deeper, consider these offbeat gems:</p>



<ul class="wp-block-list">
<li><strong>Agrasen ki Baoli:</strong> A historic stepwell in the heart of Delhi.</li>



<li><strong>Majnu ka Tilla:</strong> Experience Tibetan culture and cuisine.</li>



<li><strong>National Rail Museum:</strong> A unique destination for history buffs and families.</li>
</ul>



<h2 class="wp-block-heading">Advantages of Renting with Motoshare</h2>



<ol start="1" class="wp-block-list">
<li><strong>Wide Range of Options:</strong> Choose from a variety of bikes and cars to suit your needs.</li>



<li><strong>Affordable Rates:</strong> Direct rentals from owners ensure cost-effective options.</li>



<li><strong>User-Friendly Platform:</strong> Easy-to-navigate website for quick bookings.</li>



<li><strong>Flexible Rentals:</strong> Rent for hours, days, or weeks as per your requirement.</li>



<li><strong>Secure Transactions:</strong> Enjoy safe and reliable payment options.</li>



<li><strong>Local Experience:</strong> Connect directly with vehicle owners for personalized insights and tips.</li>
</ol>



<figure class="wp-block-image size-large"><img decoding="async" width="1024" height="334" src="https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-6-1024x334.png" alt="" class="wp-image-19520" srcset="https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-6-1024x334.png 1024w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-6-300x98.png 300w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-6-768x250.png 768w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-6-1536x501.png 1536w, https://www.aiuniverse.xyz/wp-content/uploads/2024/12/image-6.png 1877w" sizes="(max-width: 1024px) 100vw, 1024px" /></figure>



<h3 class="wp-block-heading">How to Rent with Motoshare</h3>



<ol start="1" class="wp-block-list">
<li><strong>Sign Up:</strong> Create an account on <a href="https://www.motoshare.in">Motoshare’s website</a>.</li>



<li><strong>Browse Vehicles:</strong> Explore the extensive range of bikes and cars available.</li>



<li><strong>Book Online:</strong> Select your preferred vehicle, choose rental dates, and confirm your booking.</li>



<li><strong>Pick Up &amp; Enjoy:</strong> Coordinate with the owner for a hassle-free handover.</li>
</ol>



<h2 class="wp-block-heading">Plan Your Delhi Adventure Today!</h2>



<p>With Motoshare, your journey in Delhi begins the moment you book your ride. Whether you’re planning a historical tour, a shopping spree, or a spiritual retreat, our bike and car rentals make it all possible. Start your adventure now by visiting:</p>



<ul class="wp-block-list">
<li><a href="https://motoshare.in/delhi/car-rentals">Car Rentals in Delhi</a></li>



<li><a href="https://motoshare.in/delhi/bike-rentals">Bike Rentals in Delhi</a></li>
</ul>



<p>Experience Delhi like never before with Motoshare’s convenient and reliable rental services. Happy exploring!</p>
<p>The post <a href="https://www.aiuniverse.xyz/top-10-places-to-visit-in-delhi-with-motoshare-rentals/">Top 10 Places to Visit in Delhi with Motoshare Rentals</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>IIT Delhi Invites Registrations for a Free Online Course on Artificial Intelligence on NPTEL</title>
		<link>https://www.aiuniverse.xyz/iit-delhi-invites-registrations-for-a-free-online-course-on-artificial-intelligence-on-nptel/</link>
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		<dc:creator><![CDATA[aiuniverse]]></dc:creator>
		<pubDate>Wed, 18 Nov 2020 05:33:18 +0000</pubDate>
				<category><![CDATA[Artificial Intelligence]]></category>
		<category><![CDATA[course]]></category>
		<category><![CDATA[delhi]]></category>
		<category><![CDATA[IIT]]></category>
		<category><![CDATA[NPTEL]]></category>
		<category><![CDATA[Online]]></category>
		<category><![CDATA[Registrations]]></category>
		<category><![CDATA[rtificial intelligence]]></category>
		<guid isPermaLink="false">http://www.aiuniverse.xyz/?p=12374</guid>

					<description><![CDATA[<p>Source: dqindia.com IIT Delhi, like various other Indian Institutes of Technology (IITs) and Indian Institute of Science (IISc), is offering several free online courses on the NPTEL <a class="read-more-link" href="https://www.aiuniverse.xyz/iit-delhi-invites-registrations-for-a-free-online-course-on-artificial-intelligence-on-nptel/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/iit-delhi-invites-registrations-for-a-free-online-course-on-artificial-intelligence-on-nptel/">IIT Delhi Invites Registrations for a Free Online Course on Artificial Intelligence on NPTEL</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[
<p>Source: dqindia.com</p>



<p>IIT Delhi, like various other Indian Institutes of Technology (IITs) and Indian Institute of Science (IISc), is offering several free online courses on the NPTEL platform at present. One such course is a free online course on “Introduction to Artificial Intelligence”, which interested learners can enroll for. The course, however, can be especially beneficial for undergraduate students in computer science with a fair knowledge of data structures and probability.</p>



<p>The course will be conducted by Prof Mausam who is an Associate Professor of Computer Science department at IIT Delhi, and an affiliate faculty member at the University of Washington, Seattle. He received his PhD from the University of Washington in 2007 and a BTech from IIT Delhi in 2001. He is an awardee of the prestigious AAAI Senior Member status for his long-term participation in AAAI and excellence in the field of artificial intelligence.</p>



<h4 class="wp-block-heading">What the IIT Delhi Free Online Course on Artificial Intelligence will Cover?</h4>



<p>Participants who enroll for this course will get an understanding of the following topics: Introduction to hilosophy of AI, definitions, modeling a problem as search problem, uninformed search, heuristic search, domain relaxations, local search, genetic algorithms, adversarial search, constraint satisfaction, propositional logic and satisfiability, uncertainty in AI, Bayesian networks, Bayesian networks learning and inference, decision theory, Markov decision processes, reinforcement learning, and introduction to deep learning and deep RL.</p>



<h4 class="wp-block-heading">Other Important Details of the IIT Delhi Free Online Course on Artificial Intelligence</h4>



<p>The 12-week long course will be conducted from 18 January to 9 April 2021, and the last date to enroll for the course is 25 January 2021. Although the course is free to enroll and learn from, to receive certificates from NPTEL and IIT Delhi, participants will have to register and write the proctored exam to be conducted by NPTEL in person at any of the designated exam centres on 25 April 2021 in morning and afternoon sessions.</p>



<h4 class="wp-block-heading">Criteria to Receive Certificates for IIT Delhi Free Online Course on Artificial Intelligence</h4>



<p>Certificates will be rewarded based on the participant’s performance in exam, as well as their average assignment score. The average assignment score will be 25% of average of best 8 assignments out of the total 12 assignments given in the course, and exam score consists of 75% of the proctored certification exam score out of 100.</p>
<p>The post <a href="https://www.aiuniverse.xyz/iit-delhi-invites-registrations-for-a-free-online-course-on-artificial-intelligence-on-nptel/">IIT Delhi Invites Registrations for a Free Online Course on Artificial Intelligence on NPTEL</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>Tamil Nadu to highlight initiatives in Artificial Intelligence at global summit in Delhi</title>
		<link>https://www.aiuniverse.xyz/tamil-nadu-to-highlight-initiatives-in-artificial-intelligence-at-global-summit-in-delhi/</link>
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		<dc:creator><![CDATA[aiuniverse]]></dc:creator>
		<pubDate>Wed, 07 Oct 2020 07:10:18 +0000</pubDate>
				<category><![CDATA[Artificial Intelligence]]></category>
		<category><![CDATA[cybersecurity]]></category>
		<category><![CDATA[delhi]]></category>
		<category><![CDATA[RAISE 2020]]></category>
		<category><![CDATA[Tamil Nadu]]></category>
		<guid isPermaLink="false">http://www.aiuniverse.xyz/?p=12017</guid>

					<description><![CDATA[<p>Source: newindianexpress.com CHENNAI: Tamil Nadu will be offering insights into its initiatives in Artificial Intelligence (AI) on Friday during the global virtual summit on Responsible AI for <a class="read-more-link" href="https://www.aiuniverse.xyz/tamil-nadu-to-highlight-initiatives-in-artificial-intelligence-at-global-summit-in-delhi/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/tamil-nadu-to-highlight-initiatives-in-artificial-intelligence-at-global-summit-in-delhi/">Tamil Nadu to highlight initiatives in Artificial Intelligence at global summit in Delhi</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[
<p>Source: newindianexpress.com</p>



<p>CHENNAI: Tamil Nadu will be offering insights into its initiatives in Artificial Intelligence (AI) on Friday during the global virtual summit on Responsible AI for Social Empowerment or RAISE 2020 in New Delhi.</p>



<p>Santosh Mishra, Chief Executive Officer of the Tamil Nadu e-Governance Agency (TNeGA), told The New Indian Express that only Tamil Nadu and Telangana have been given slots on highlighting their initiatives in Artificial Intelligence during the global summit.</p>



<p>&#8220;We have been given a two-hour slot where Information Technology Minister R B Udaya Kumar would be highlighting the state&#8217;s initiatives in tapping Artificial Intelligence as well as becoming the first state to come out with ethical AI, cybersecurity and blockchain policies. We will also be having a panel discussion during the event,&#8221; said Mishra.</p>



<p>Additional chief secretary Hans Raj Verma, who heads the Information Technology department along with Mishra, Sridhar Vembu, chief executive officer of Zoho Corporation, Raj Cherubal, chief executive officer of Chennai Smart City, Jitender Singh Minhas, CEO IAMAI Start-up Foundation, Dr Ashfaq Bhat, Director of Norway India Partnership Initiative (NIPI) and Tathagato Rao Dastidar, CEO of Sig-Tupple will be participating in the discussion which focuses on Artificial Intelligence in governance.</p>



<p>Interestingly, this comes after Union Minister for Communications and Information Technology Ravi Shankar Prasad appreciated Tamil Nadu for bringing out policies on ethical Artificial Intelligence (AI) and cybersecurity during RAISE 2020, which was inaugurated by Prime Minister Narendra Modi on Monday.</p>



<p>Tamil Nadu has been using Artificial Intelligence on pest identification in agriculture, said Mishra adding that it is benefitting five lakh farmers. &#8220;We have been using artificial intelligence-based pest identification in crops which was developed in-house and integrated into the Uzhavan app,&#8221; he said.</p>



<p>Under this, a farmer can take a picture of the crop affected by pests and upload it on the app. Following this, agriculture department officials will come out with a solution, he added.</p>



<p>The other major successful project using artificial intelligence is marking attendance of government school students using facial recognition system. The project helped in saving time of teachers in marking attendance, said Mishra.</p>



<p>Similarly, the state has also come out with a Tamil chatbot named Anil (squirrel in Tamil). Mishra said using Natural Language Processing and Artificial Intelligence technology development in collaboration with Anna University, the chatbot will guide and advise people on services offered by various government departments.</p>



<p>RAISE 2020, the biggest artificial intelligence summit, seeks global collaboration for the development of an artificial intelligence ecosystem that is responsible for humanity and committed towards social empowerment.</p>
<p>The post <a href="https://www.aiuniverse.xyz/tamil-nadu-to-highlight-initiatives-in-artificial-intelligence-at-global-summit-in-delhi/">Tamil Nadu to highlight initiatives in Artificial Intelligence at global summit in Delhi</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>What Is Deep Reinforcement Learning?</title>
		<link>https://www.aiuniverse.xyz/what-is-deep-reinforcement-learning/</link>
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		<dc:creator><![CDATA[aiuniverse]]></dc:creator>
		<pubDate>Wed, 26 Jun 2019 06:45:07 +0000</pubDate>
				<category><![CDATA[Deep Learning]]></category>
		<category><![CDATA[bengaluru]]></category>
		<category><![CDATA[chennai]]></category>
		<category><![CDATA[delhi]]></category>
		<category><![CDATA[DevOps]]></category>
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		<category><![CDATA[India]]></category>
		<category><![CDATA[mumbai]]></category>
		<category><![CDATA[netherlands]]></category>
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		<guid isPermaLink="false">http://www.aiuniverse.xyz/?p=3993</guid>

					<description><![CDATA[<p>Source:- One of the most intriguing areas of artificial intelligence today is the concept of deep reinforcement learning, where machines can teach themselves based upon the results <a class="read-more-link" href="https://www.aiuniverse.xyz/what-is-deep-reinforcement-learning/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/what-is-deep-reinforcement-learning/">What Is Deep Reinforcement Learning?</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>Source:-</p>
<p>One of the most intriguing areas of artificial intelligence today is the concept of deep reinforcement learning, where machines can teach themselves based upon the results of their own actions. It is one of the areas of artificial intelligence that shows great promise, so let’s look at what it is and explore some real-world applications.</p>
<p>What is deep reinforcement learning?</p>
<p>Deep reinforcement learning is a category of machine learning and artificial intelligence where intelligent machines can learn from their actions similar to the way humans learn from experience. Inherent in this type of machine learning is that an agent is rewarded or penalised based on their actions. Actions that get them to the target outcome are rewarded (reinforced).</p>
<p>Through a series of trial and error, a machine keeps learning, making this technology ideal for dynamic environments that keep changing. Although reinforcement learning has been around for decades, it was much more recently combined with deep learning, which yielded phenomenal results. The &#8220;deep&#8221; portion of reinforcement learning refers to a multiple (deep) layers of artificial neural networks that replicate the structure of a human brain. Deep learning requires large amounts of training data and significant computing power. Over the last few years, the volumes of data have exploded while the costs for computing power have dramatically reduced, which has enabled the explosion of deep learning applications.</p>
<p>From gameplay to profit-making deep reinforcement learning</p>
<p>The possibilities of deep reinforcement learning came to the attention of many during the well-publicised defeat of a Go grandmaster by DeepMind’s AlphaGo. In addition to playing Go, deep reinforcement learning has achieved human-level prowess in other games such as chess, poker, Atari games and several other competitive video games. It’s taken the technology a bit of time to move from board games to boardrooms for a couple of reasons including:</p>
<p>There needed to be products and services to support deep reinforcement learning. For example, simulation technology helps provide a trial-and-error environment for deep reinforcement learning that is scalable and where mistakes won’t cause real-world damage. Services needed to be available to offer simulation technology for multiple interacting machines.<br />
Subject matter experts need an easy-to-use deep reinforcement learning (DRL) interface—rather than be DRL experts—to fully leverage the technology for business problems.<br />
Practical applications of deep reinforcement learning</p>
<p>AI toolkits for training</p>
<p>AI toolkits such as OpenAI Gym, DeepMind Lab and Psychlab are providing the training environment that was necessary to catapult large-scale innovation for deep reinforcement learning. These open-source tools train DRL agents. As more organisations apply deep reinforcement learning to their own unique business use cases, we will continue to see dramatic growth in practical applications.</p>
<p>Manufacturing</p>
<p>Intelligent robots are becoming more commonplace in warehouse and fulfilment centres to sort out millions of products and deliver them to the right people. When a robot picks a device to put in a container, deep reinforcement learning helps it gain knowledge based on whether it succeeded or failed. It uses this knowledge to perform more efficiently in the future.</p>
<p>Automotive</p>
<p>The automotive industry has a diverse and large dataset that will power deep reinforcement learning. Already in use for autonomous vehicles, it will help transform factories, vehicle maintenance and overall automation in the industry. The industry is driven by safety, quality and cost and DRL with data from customers, dealers and warranties will provide new ways to improve quality, save money and have a higher safety record.</p>
<p>Finance</p>
<p>Using artificial intelligence, including deep reinforcement learning, to be better investment managers than humans and to evaluate trading strategies is the core objective of Pit.AI.</p>
<p>Healthcare</p>
<p>From determining the optimal treatment plans and diagnosis to clinical trials, new drug development and automatic treatment, there is great potential for deep reinforcement learning to improve healthcare.</p>
<p>Bots</p>
<p>The conversational UI paradigm that makes AI bots possible leverages the power of deep reinforcement learning. The bots are rapidly learning the nuances and semantics of language over many domains for automated speech and natural language understanding thanks to deep reinforcement learning.</p>
<p>There is much excitement about the potential for deep reinforcement learning. Since this segment of artificial intelligence learns by interacting with its environment, there is really no limit to the possible applications.</p>
<p>The post <a href="https://www.aiuniverse.xyz/what-is-deep-reinforcement-learning/">What Is Deep Reinforcement Learning?</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>Amazon researchers boost multilabel classification efficiency</title>
		<link>https://www.aiuniverse.xyz/amazon-researchers-boost-multilabel-classification-efficiency/</link>
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		<pubDate>Wed, 26 Jun 2019 06:42:37 +0000</pubDate>
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					<description><![CDATA[<p>Source:-venturebeat.com KYLE WIGGERS@KYLE_L_WIGGERS JUNE 25, 2019 6:59 AM Above: A graph illustrating Amazon&#8217;s multilabel classification approach. Image Credit: Amazon MOST READ Machine learning helps Microsoft’s AI realistically <a class="read-more-link" href="https://www.aiuniverse.xyz/amazon-researchers-boost-multilabel-classification-efficiency/">Read More</a></p>
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<article id="post-2509587" class="border-top clearfix article-wrapper post-2509587 post type-post status-publish format-standard has-post-thumbnail category-ai category-big-data category-dev tag-ai tag-amazon tag-artificial-intelligence tag-category-science-computer-science tag-classifiers tag-machine-learning tag-multilabel-classification tag-research vb_post_designations-homepage has-thumbnail">
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<p>Source:-venturebeat.com</p>
<p>KYLE WIGGERS@KYLE_L_WIGGERS JUNE 25, 2019 6:59 AM</p>
<p>Above: A graph illustrating Amazon&#8217;s multilabel classification approach.</p>
<p>Image Credit: Amazon</p>
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<p>Multilabel classifiers are the bedrock of autonomous cars, apps like Google Lens, and intelligent assistants from Amazon’s Alexa to Google Assistant. They map input data into multiple categories at once — classifying, say, a picture of the ocean as containing “sky” and “boats” but not “desert.”</p>
<p>In pursuit of more computationally efficient classifiers, scientists at Amazon’s Alexa AI division recently experimented with an approach they describe in a preprint paper (“Learning Context-Dependent Label Permutations for Multi-Label Classification”). They claim that in tests their multilabel classification technique outperforms four leading alternatives using three data sets and demonstrates improvements on five different performance measures.</p>
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<p>“The need for multilabel classification arises in many different contexts. Originally, it was investigated as a means of doing text classification [but since then], it’s been used for everything from predicting protein function from raw sequence data to classifying audio files by genre,” wrote Alexa AI group applied scientist Jinseok Nam in a blog post. “The challenge of multilabel classification is to capture dependencies between different labels.”</p>
<p>These dependencies are often captured with a joint probability, which represents the likelihood of any combination of probabilities for all labels. However, Nam notes that calculating accurate joint probabilities for more than a handful of annotations requires an “impractically” large corpus.</p>
<p>Instead, he and colleagues used a recurrent neural network (RNN) — a type of AImodel that processes sequenced inputs in order so that the output corresponds to given input factors and thus automatically considers dependencies — to efficiently chain single-label classifiers. To prevent errors from occurring when the order of classifiers is rearranged, they trained a system to dynamically vary the order in which the chained classifiers process the inputs (according to the input data’s features), ensuring that the most error-prone classifiers relative to a particular input moved to the back of the chain.</p>
<p>The team explored two different techniques, the first of which used an RNN to generate a sequence of labels for a particular input. Erroneous labels were discarded while preserving the order of correct ones, and omitted labels were appended to the resulting sequence. The new sequence became the target output, which the researchers used to retrain the RNN on the same input data.</p>
<p>“By preserving the order of the correct labels, we ensure that classifiers later in the chain learn to take advantage of classifications earlier in the chain,” wrote Nam. “Initially, the output of the RNN is entirely random, but it eventually learns to tailor its label sequences to the input data.”</p>
<p>The second technique leveraged reinforcement learning — an AI training technique that employs rewards to drive software policies toward goals — to train an RNN to perform dynamic classifier chaining.</p>
<p>In the aforementioned validation tests, which measured the accuracy of the classifiers’ various labels, the researchers say their best-performing system — which combined the outputs of two dynamic-chaining algorithms to produce a composite classification — outperformed four baselines by a minimum of 2% and in one instance by nearly 5%.</p>
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		<title>Argo AI, CMU developing autonomous vehicle research center</title>
		<link>https://www.aiuniverse.xyz/argo-ai-cmu-developing-autonomous-vehicle-research-center/</link>
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		<pubDate>Wed, 26 Jun 2019 06:39:31 +0000</pubDate>
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					<description><![CDATA[<p>Source:- therobotreport.com Argo AI, a Pittsburgh-based autonomous vehicle company, has donated $15 million to Carnegie Mellon University (CMU) to fund a new research center. The Carnegie Mellon University <a class="read-more-link" href="https://www.aiuniverse.xyz/argo-ai-cmu-developing-autonomous-vehicle-research-center/">Read More</a></p>
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]]></description>
										<content:encoded><![CDATA[<p>Source:- therobotreport.com</p>
<p>Argo AI, a Pittsburgh-based autonomous vehicle company, has donated $15 million to Carnegie Mellon University (CMU) to fund a new research center. The Carnegie Mellon University Argo AI Center for Autonomous Vehicle Research will “pursue advanced research projects to help overcome hurdles to enabling self-driving vehicles to operate in a wide variety of real-world conditions, such as winter weather or construction zones.”</p>
<p>Argo was founded in 2016 by a team with ties to CMU (more on that later). The five-year partnership between Argo and CMU will fund research into advanced perception and next-generation decision-making algorithms for autonomous vehicles. The center’s research will address a number of technical topics, including smart sensor fusion, 3D scene understanding, urban scene simulation, map-based perception, imitation and reinforcement learning, behavioral prediction and robust validation of software.</p>
<p>“We are thrilled to deepen our partnership with Argo AI to shape the future of self-driving technologies,” CMU President Farnam Jahanian said. “This investment allows our researchers to continue to lead at the nexus of technology and society, and to solve society’s most pressing problems.”</p>
<p>In February 2017, Ford announced that it was investing $1 billion over five years in Argo, combining Ford’s autonomous vehicle development expertise with Argo AI’s robotics experience. Earlier this month, Argo unveiled its third-generation test vehicle, a modified Ford Fusion Hybrid. Argo is now testing its autonomous vehicles in Detroit, Miami, Palo Alto, and Washington, DC.</p>
<p>Argo last week released its HD maps dataset, Argoverse. Argo said this will help the research community “compare the performance of different (machine learning – deep net) approaches to solve the same problem.</p>
<p>“Argo AI, Pittsburgh and the entire autonomous vehicle industry have benefited from Carnegie Mellon’s leadership. It’s an honor to support development of the next-generation of leaders and help unlock the full potential of autonomous vehicle technology,” said Bryan Salesky, CEO and co-founder of Argo AI. “CMU and now Argo AI are two big reasons why Pittsburgh will remain the center of the universe for self-driving technology.”</p>
<p>Deva Ramanan, an associate professor in the CMU Robotics Institute, who also serves as machine learning lead at Argo AI, will be the center’s principal investigator. The center’s research will involve faculty members and students from across CMU. The center will give students access to the fleet-scale data sets, vehicles and large-scale infrastructure that are crucial for advancing self-driving technologies and that otherwise would be difficult to obtain.</p>
<p>CMU’s other autonomous vehicle partnerships<br />
This isn’t the first autonomous vehicle company to see potential in CMU. In addition to Argo AI, CMU performs related research supported by General Motors, Uber and other transportation companies.</p>
<p>Its partnership with Uber is perhaps CMU’s most high-profile autonomous vehicle partnership, and it’s for all the wrong reasons. In 2015, Uber announced a strategic partnership with CMU that included the creation of a research lab near campus aimed at kick starting autonomous vehicle development.</p>
<p>But that relationship ended up gutting CMU’s National Robotics Engineering Center (NREC). More than a dozen CMU researchers, including the NREC’s director, left to work at the Uber Advanced Technologies Center.</p>
<p>Argo’s connection to CMU<br />
As mentioned earlier, Argo’s co-founders have strong ties to CMU. Argo Co-founder and president Peter Rander earned his masters and PhD degrees at CMU. Salesky graduated from the University of Pittsburgh in 2002, but worked at the NREC for a number of years, managing a portfolio of the center’s largest commercial programs that included autonomous mining trucks for Caterpillar. In 2007, Salesky led software engineering for Tartan Racing, CMU’s winning entry in the DARPA Urban Challenge.</p>
<p>Salesky departed NREC and joined the Google self-driving car team in 2011 to continue the push toward making self-driving cars a reality. While at Google, Bryan he responsible for the development and manufacture of their hardware portfolio, which included self-driving sensors, computers and several vehicle development programs.</p>
<p>Brett Browning, Argo’s VP of Robotics, received his Ph.D. (2000) and bachelor’s degree in electrical engineering and science from the University of Queensland. He was a senior faculty member at the NREC for 12-plus years, pursuing field robotics research in defense, oil and gas, mining and automotive applications.</p>
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		<title>Thanks to AI, we know we can teleport qubits in the real world</title>
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		<pubDate>Wed, 26 Jun 2019 06:36:47 +0000</pubDate>
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					<description><![CDATA[<p>Source:-cosmosmagazine.com Deep learning shows its worth in the word of quantum computing. Gabriella Bernardi reports. talian researchers have shown that it is possible to teleport a quantum <a class="read-more-link" href="https://www.aiuniverse.xyz/thanks-to-ai-we-know-we-can-teleport-qubits-in-the-real-world/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/thanks-to-ai-we-know-we-can-teleport-qubits-in-the-real-world/">Thanks to AI, we know we can teleport qubits in the real world</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>Source:-cosmosmagazine.com</p>
<h6 class="page-standfirst">Deep learning shows its worth in the word of quantum computing. Gabriella Bernardi reports.</h6>
<p>talian researchers have shown that it is possible to teleport a quantum bit (or <i>qubit</i>) in what might be called a real-world situation.</p>
<p>And they did it by letting artificial intelligence do much of the thinking.</p>
<p>The phenomenon of qubit transfer is not new, but this work, which was led by Enrico Prati of the Institute of Photonics and Nanotechnologies in Milan, is the first to do it in a situation where the system deviates from ideal conditions.</p>
<p>Moreover, it is the first time that a class of machine-learning algorithms known as deep reinforcement learning has been applied to a quantum computing problem.</p>
<p>The findings are published in a paper in the journal <i>Communications Physics</i>.</p>
<p>One of the basic problems in quantum computing is finding a fast and reliable method to move the qubit – the basic piece of quantum information – in the machine. This piece of information is coded by a single electron that has to be moved between two positions without passing through any of the space in between.</p>
<p>In the so-called “adiabatic”, or thermodynamic, quantum computing approach, this can be achieved by applying a specific sequence of laser pulses to a chain of an odd number of quantum dots – identical sites in which the electron can be placed.</p>
<p>It is a purely quantum process and a solution to the problem was invented by Nikolay Vitanov of the Helsinki Institute of Physics in 1999. Given its nature, rather distant from the intuition of common sense, this solution is called a “counterintuitive” sequence.</p>
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<p>However, the method applies only in ideal conditions, when the electron state suffers no disturbances or perturbations.</p>
<p>Thus, Prati and colleagues Riccardo Porotti and Dario Tamaschelli of the University of Milan and Marcello Restelli of the Milan Polytechnic, took a different approach.</p>
<p>“We decided to test the deep learning’s artificial intelligence, which has already been much talked about for having defeated the world champion at the game Go, and for more serious applications such as the recognition of breast cancer, applying it to the field of quantum computers,” Prati says.</p>
<p>Deep learning techniques are based on artificial neural networks arranged in different layers, each of which calculates the values for the next one so that the information is processed more and more completely.</p>
<p>Usually, a set of known answers to the problem is used to “train” the network, but when these are not known, another technique called “reinforcement learning” can be used.</p>
<p>In this approach two neural networks are used: an “actor” has the task of finding new solutions, and a “critic” must assess the quality of these solution. Provided a reliable way to judge the respective results can be given by the researchers, these two networks can examine the problem independently.</p>
<p>The researchers, then, set up this artificial intelligence method, assigning it the task of discovering alone how to control the qubit.</p>
<p>“So, we let artificial intelligence find its own solution, without giving it preconceptions or examples,” Prati says. “It found another solution that is faster than the original one, and furthermore it adapts when there are disturbances.”</p>
<p>In other words, he adds, artificial intelligence “has understood the phenomenon and generalised the result better than us”.</p>
<p>“It is as if artificial intelligence was able to discover by itself how to teleport qubits regardless of the disturbance in place, even in cases where we do not already have any solution,” he explains.</p>
<p>“With this work we have shown that the design and control of quantum computers can benefit from the using of artificial intelligence.”</p>
<p>The post <a href="https://www.aiuniverse.xyz/thanks-to-ai-we-know-we-can-teleport-qubits-in-the-real-world/">Thanks to AI, we know we can teleport qubits in the real world</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>Want to learn how to train an artificial intelligence model? Ask a friend.</title>
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		<pubDate>Wed, 26 Jun 2019 06:33:33 +0000</pubDate>
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					<description><![CDATA[<p>Source:- mit.edu The MIT Machine Intelligence Community began with a few friends meeting over pizza to discuss landmark papers in machine learning. Three years later, the undergraduate club boasts <a class="read-more-link" href="https://www.aiuniverse.xyz/want-to-learn-how-to-train-an-artificial-intelligence-model-ask-a-friend/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/want-to-learn-how-to-train-an-artificial-intelligence-model-ask-a-friend/">Want to learn how to train an artificial intelligence model? Ask a friend.</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>Source:- mit.edu</p>
<p>The MIT Machine Intelligence Community began with a few friends meeting over pizza to discuss landmark papers in machine learning. Three years later, the undergraduate club boasts 500 members, an active Slack channel, and an impressive lineup of student-led reading groups and workshops meant to demystify machine learning and artificial intelligence (AI) generally. This year, MIC and MIT Quest for Intelligence joined forces to advance their common cause of making AI tools accessible to all.</p>
<p>Starting last fall, the MIT Quest opened its offices to MIC members and extended access to IBM and Google-donated cloud credits, providing a boost of computing power to students previously limited to running their AI models on desktop machines loaded with extra graphics processors. The MIT Quest and MIC are now collaborating on a host of projects, independently and through MIT’s Undergraduate Research Opportunities Program (UROP).</p>
<p>“We heard about their mission to spread machine learning to all undergrads and thought, ‘That’s what we’re trying to do — let’s do it together!” says Joshua Joseph, chief software engineer with the MIT Quest Bridge.</p>
<p>A makerspace for AI</p>
<p>U.S. Army ROTC students Ian Miller and Rishi Shah came to MIC for the free cloud credits, but stayed for the workshop on neural computing sticks. A compute stick allows mobile devices to do image processing on the fly, and when the cadets learned what one could do, they knew their idea for a portable computer vision system would work.</p>
<p>“Without that, we’d have to send images to a central place to do all this computing,” says Miller, a rising junior. “It would have been a logistical headache.”</p>
<p>Built in two months, for $200, their wallet-sized device is designed to plug into a tablet strapped to an Army soldier’s chest and scan the surrounding area for cars and people. With more training, they say, it could learn to spot cellphones and guns. In May, the cadets demo&#8217;d their device at MIT’s Soldier Design Competition and were invited by an Army sergeant to visit Fort Devens to continue working on it.</p>
<p>Machine Intelligence Community members and ROTC students Ian Miller and Rishi Shah present a portable computer vision system they built to help soldiers detect cars and people in their field of view.</p>
<p>Photo: Kim Martineau</p>
<p>FULL SCREEN<br />
Rose Wang, a rising senior majoring in computer science, was also drawn to MIC by the free cloud credits, and a chance to work on projects with quest and other students. This spring, she used IBM cloud credits to run a reinforcement learning model that’s part of her research with MIT Professor Jonathan How, training robot agents to cooperate on tasks that involve limited communication and information. She recently presented her results at a workshop at the International Conference on Machine Learning.</p>
<p>“It helped me try out different techniques without worrying about the compute bottleneck and running out of resources,” she says.</p>
<p>Improving AI access at MIT</p>
<p>The MIC has launched several AI projects of its own. The most ambitious is Monkey, a container-based, cloud-native service that would allow MIT undergraduates to log in and train an AI model from anywhere, tracking the training as it progresses and managing the credits allotted to each student. On a Friday afternoon in April, the team gathered in a quest conference room as Michael Silver, a rising senior, sketched out the modules Monkey would need.</p>
<p>As Silver scrawled the words &#8220;Docker Image Build Service&#8221; on the board, the student assigned to research the module apologized. “I didn’t make much progress on it because I had three midterms!” he said.</p>
<p>The planning continued, with Steven Shriver, a software engineer with the Quest Bridge, interjecting bits of advice. The students had assumed the container service they planned to use, Docker, would be secure. It isn’t.</p>
<p>“Well, I guess we have another task here,” said Silver, adding the word “security” to the white board.</p>
<p>Later, the sketch would be turned into a design document and shared with the two UROP students helping to execute Monkey. The team hopes to launch sometime next year.</p>
<p>“The coding isn’t the difficult part,” says UROP student Amanda Li, a member of MIC Dev-Ops. “It’s the exploring the server side of machine learning — Docker, Google Cloud, and the API. The most important thing I’ve learned is how to efficiently design and pipeline a project as big as this.”</p>
<p>Silver knew he wanted to be an AI engineer in 2016, when the computer program AlphaGo defeated the world’s reigning Go champion. As a senior at Boston University Academy, Silver worked on natural language processing in the lab of MIT Professor Boris Katz, and has continued to work with Katz since coming to MIT. Seeking more coding experience, he left HackMIT, where he had been co-director, to join MIC Dev-Ops.</p>
<p>“A lot of students read about machine learning models, but have no idea how to train one,” he says. “Even if you know how to train one, you’d need to save up a few thousand dollars to buy the GPUs to do it. MIC lets students interested in machine learning reach that next level.”</p>
<p>Conceived by MIC members, a second project is focused on making AI research papers posted on arXiv easier to explore. Nearly 14,000 academic papers are uploaded each month to the site, and although papers are tagged by field, drilling into subtopics can be overwhelming.</p>
<p>Wang, for one, grew frustrated while doing a basic literature search on reinforcement learning. “You have a ton of data and no effective way of representing it to the user,” she says. “It would have been useful to see the papers in a larger context, and to explore by number of citations or their relevance to each other.”</p>
<p>A third MIC project focuses on crawling MIT’s hundreds of listservs for AI-related talks and events to populate a Google calendar. The tool will be closely patterned after an app Silver helped build during MIT’s Independent Activities Period in January. Called Dormsp.am, the app classifies listserv emails sent to MIT undergraduates and plugs them into a calendar-email client. Students can then search for events by day or by a color-coded topic, such as tech, food, or jobs. Once Dormsp.am launches, Silver will adapt it to search for and post AI-related events at MIT to an MIC calendar.</p>
<p>Silver says the team spent extra time on the user interface, taking a page from MIT Professor Daniel Jackson’s Software Studio class. “This is an app that can live or die on its usability, so the front end is really important,” he says.</p>
<p>Wang is now collaborating with Moin Nadeem, MIC’s outgoing president, to build the visualization tool. It’s exactly the kind of hands-on experience MIC was intended to provide, says Nadeem, a rising senior. “Students learn fundamental concepts in class but don’t know how to implement them,” he says. “I’m trying to build what freshman me would have liked to have had: a community of people excited to do interesting stuff with machine learning.”</p>
<p>&nbsp;</p>
<p>The post <a href="https://www.aiuniverse.xyz/want-to-learn-how-to-train-an-artificial-intelligence-model-ask-a-friend/">Want to learn how to train an artificial intelligence model? Ask a friend.</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>NEW NSR Report: Satellite Data Value Continues Moving Downstream Towards Big Data Analytics</title>
		<link>https://www.aiuniverse.xyz/new-nsr-report-satellite-data-value-continues-moving-downstream-towards-big-data-analytics/</link>
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		<dc:creator><![CDATA[aiuniverse]]></dc:creator>
		<pubDate>Wed, 26 Jun 2019 06:29:24 +0000</pubDate>
				<category><![CDATA[Big Data]]></category>
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					<description><![CDATA[<p>Source:- globenewswire.co CAMBRIDGE, Mass., June 25, 2019 (GLOBE NEWSWIRE) &#8212; NSR’s Big Data Analytics via Satellite, 3rd Edition (BDvS3) report, published today, finds continued growth for downstream Big Data applications through the <a class="read-more-link" href="https://www.aiuniverse.xyz/new-nsr-report-satellite-data-value-continues-moving-downstream-towards-big-data-analytics/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/new-nsr-report-satellite-data-value-continues-moving-downstream-towards-big-data-analytics/">NEW NSR Report: Satellite Data Value Continues Moving Downstream Towards Big Data Analytics</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>Source:- globenewswire.co</p>
<p>CAMBRIDGE, Mass., June 25, 2019 (GLOBE NEWSWIRE) &#8212; NSR’s <strong><em><u>Big Data Analytics via Satellite, 3</u><sup><u>rd</u></sup><u> Edition</u></em></strong><strong><em> <u>(BDvS3)</u></em></strong> report, published today, finds continued growth for downstream Big Data applications through the next decade, driven by applications built on Earth Observation and M2M/IoT satcom data across multiple market verticals. Big Data analytics via satellite will generate close to $17.7 billion in cumulative revenues by 2028, owing to increasing demand from end users in the Transportation, Government &amp; Military, Energy and Enterprise sectors.</p>
<p>Revenue generated from applications deriving value from EO imagery data are expected to grow at 30% CAGR from 2018 to 2028. “Across all use cases, we expect to see a shift in usage towards data analytics applications, driven in particular by increasing adoption of satellite imagery to meet end user business cases,” stated <u>Shivaprakash Muruganandham</u>, NSR Analyst and report author. On the other hand, M2M and IoT communications via satellite will continue to drive the more mature markets of land/maritime transportation and government and military applications. “This demand manifests itself in different ways, be it for fleet management solutions, financial instruments, competitive intelligence or business decision tools. Multiple players continue to focus on squeezing maximum value out of data obtained through satellites,” Muruganandham adds.</p>
<p>Growth in the Enterprise Services market is expected to outpace other verticals, as newer datasets and applications come online. Industry incumbents continue to partner and evolve their businesses towards offering data applications as part of their services, even as newer startups tackling niche problems find importance in the ecosystem. The line between EO and M2M/IoT data applications is expected to blur further in the future, as highly integrated datasets become prevalent, and becoming data-agnostic will be a key differentiator for Big Data companies.</p>
<p>Overall, satellite Big Data analytics will reach close to a $3.1 billion revenue opportunity by 2028, with 56% from EO applications and the rest, driven by M2M/IoT satcom applications. While North America’s presence as an established market continues through the decade, other regions are expected to eat into its market share as companies globally adopt Big Data solutions into their businesses.</p>
<p><strong>About the Report</strong><br />
NSR’s <strong><em><u>Big Data Analytics via Satellite, 3</u><sup><u>rd</u></sup><u> Edition</u> <u>(BDvS3)</u></em></strong> is built on NSR’s research in the EO and M2M/IoT satellite markets, alongside an understanding of newer trends in Big Data analytics. With coverage of vertical markets ranging from Transportation to Weather &amp; Environment, it provides a comprehensive analysis of the growth opportunity across regions, delving into key verticals that account for nearly 80% of this opportunity.</p>
<p>For additional information on this report, including a full table of contents, list of exhibits and executive summary, please visit <u>www.nsr.com</u> or call <strong>NSR at +1-617-674-7743</strong>.</p>
<p align="justify"><strong>About NSR</strong><br />
NSR is the leading global market research and consulting firm focused on the satellite and space sectors. NSR’s global team, unparalleled coverage and anticipation of trends with a higher degree of confidence and precision than the competition is the cornerstone of all NSR offerings.  First to market coverage and a transparent, dependable approach sets NSR apart as the key provider of critical insight to the satellite and space industries.</p>
<p>Contact us at info@nsr.com to discuss how we can assist your business.</p>
<p><strong>Companies and Organizations Mentioned in the Report</strong><br />
Planet, Airbus, Earth-i, Maxar, Spire, BlackSky, Inmarsat, Orbcomm, Globalstar, Iridium, Thuraya, iDirect, Integrasys, Kratos, Globecomm, RS Metrics, Ursa Space, 20tree, Orbital Insight, SatSure, Bird-i, VanderSat, Rezatec, TellusLabs, Indigo, SpaceKnow, Descartes Labs, IHS Markit, Harris Corporation, Microsoft, Bluefield, Kleos Space, HawkEye 360, ICEYE, Novara GeoSolutions, ESRI, ExactEarth, Savi, GE, Omnitracs, Bosch, Aeris, CloudEO, Cloudera, Google, SAP, Amazon, IBM, Honeywell, Spire, UrtheCast, GHGSat, RigNet, Planetek Italia, SkyWatch, and VMWare.</p>
<p>The post <a href="https://www.aiuniverse.xyz/new-nsr-report-satellite-data-value-continues-moving-downstream-towards-big-data-analytics/">NEW NSR Report: Satellite Data Value Continues Moving Downstream Towards Big Data Analytics</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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		<title>Trending Technologies: How Big Data Is Impacting Estate Agencies</title>
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		<dc:creator><![CDATA[aiuniverse]]></dc:creator>
		<pubDate>Wed, 26 Jun 2019 06:23:38 +0000</pubDate>
				<category><![CDATA[Deep Learning]]></category>
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					<description><![CDATA[<p>Source:- forbes.com According to IDC&#8217;s Data Age 2025 research, the amount of data across the globe that’s open to analysis is set to grow by a factor of 50 <a class="read-more-link" href="https://www.aiuniverse.xyz/trending-technologies-how-big-data-is-impacting-estate-agencies/">Read More</a></p>
<p>The post <a href="https://www.aiuniverse.xyz/trending-technologies-how-big-data-is-impacting-estate-agencies/">Trending Technologies: How Big Data Is Impacting Estate Agencies</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>Source:- forbes.com</p>
<p><img decoding="async" class="alignnone size-medium wp-image-3976" src="https://www.aiuniverse.xyz/wp-content/uploads/2019/06/blog-imnages-300x200.jpg" alt="" width="300" height="200" srcset="https://www.aiuniverse.xyz/wp-content/uploads/2019/06/blog-imnages-300x200.jpg 300w, https://www.aiuniverse.xyz/wp-content/uploads/2019/06/blog-imnages-768x512.jpg 768w, https://www.aiuniverse.xyz/wp-content/uploads/2019/06/blog-imnages.jpg 960w" sizes="(max-width: 300px) 100vw, 300px" /></p>
<p class="speakable-paragraph">According to IDC&#8217;s Data Age 2025 research, the amount of data across the globe that’s open to analysis is set to grow by a factor of 50 within just six years. As such, in 2025, the world is set to be creating 163 zetabytes (163 trillion gigabytes) of data a year.</p>
<p>That data comes from consumers, increasingly holding more and more of their information on cloud services. But an even bigger driver is business. Enterprises storing, interrogating and accessing more information will account for nearly 60% of data generated in 2025.</p>
<p>Manufacturing is often seen to be at the front driving this, but the property industry certainly isn’t far behind.</p>
<p><strong>How data makes the property industry tick</strong></p>
<div id="article-0-inread"></div>
<p>When a potential homebuyer applies for a mortgage, the financial institution in question will – with a few key presses &#8211; dig into their credit background. They do this via systems that seamlessly interrogate big data to come up with a recommended course of action. Already, one single mortgage application, processed in a matter of seconds, draws on around 30 years of research and analysis.</p>
<p>Separately, that same homebuyer is likely to be hitting Google, and getting detailed statistical information about the area they want to live in, the quality of the schools, the local crime rate, and fluctuations in average property prices. The property portals they’ll be using, like Zoopla – holding information on 27 million homes in the U.K. alone, coupled to over a decade of house selling price data – will be churning through their own data sets to output results.</p>
<p>The post <a href="https://www.aiuniverse.xyz/trending-technologies-how-big-data-is-impacting-estate-agencies/">Trending Technologies: How Big Data Is Impacting Estate Agencies</a> appeared first on <a href="https://www.aiuniverse.xyz">Artificial Intelligence</a>.</p>
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