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nventrai · 18 days ago
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AI’s Potential: Comparing Dynamic Retrieval and Model Customization in Language Models
Artificial Intelligence has come a long way in understanding and generating human language, thanks largely to advancements in large language models. Among the leading techniques that elevate these models’ capabilities are Retrieval-Augmented Generation and Fine-Tuning. Although both aim to improve AI responses, they do so through very different approaches, each with its own strengths, challenges, and ideal use cases.
The Basics: Tailoring Intelligence vs. Fetching Fresh Knowledge
At its core, Fine-Tuning is about customization. Starting with a broadly trained LLM, fine-tuning adjusts the model’s internal parameters using a specialized dataset. This helps the AI learn domain-specific terminology, nuances, and context, enabling it to understand and respond accurately within a particular field. For example, a fine-tuned model in healthcare would grasp medical abbreviations, treatment protocols, and patient communication subtleties far better than a general-purpose model.
In contrast, Retrieval-Augmented Generation enhances an AI’s answers by combining a pre-trained language model with a dynamic retrieval system. Instead of relying solely on what the model “knows” from training, RAG actively searches external knowledge bases or documents in real-time, pulling in up-to-date or proprietary information. This enables the AI to generate answers grounded in the latest data- even if that data wasn’t part of the original training corpus.
How Fine-Tuning Shapes AI Understanding
Fine-tuning involves carefully retraining the model on a curated dataset, often domain-specific. The process tweaks the model’s neural network weights to improve accuracy and reduce errors like hallucinations or irrelevant responses. Importantly, it uses a lower learning rate than the initial training to preserve the model’s general language capabilities while specializing it.
This method excels when the task demands deep familiarity with specialized language. For instance, healthcare fine-tuning enables the model to correctly interpret abbreviations like “MI” as “Myocardial Infarction” and provide contextually precise answers about diagnosis or treatment. However, fine-tuning can be resource-intensive and might not adapt quickly to new information after training.
Why RAG Brings Real-Time Intelligence
RAG models address a key limitation of static LLMs: outdated or missing knowledge. Since it retrieves relevant documents on demand, RAG allows AI to incorporate fresh, specific data into its responses. This is invaluable in fast-evolving domains or cases requiring access to confidential enterprise data not included during model training.
Imagine querying about the interactions of a novel drug in a healthcare assistant. A fine-tuned model may understand the medical terms well, but might lack details on the latest drug interactions. RAG can fetch current research, patient records, or updated guidelines instantly, enriching the answer with real-world, dynamic information.
The Power of Combining Both Approaches
The real magic happens when fine-tuning and RAG are combined. Fine-tuning equips the model with a strong grasp of domain language and concepts, while RAG supplements it with the freshest and most relevant data.
Returning to the healthcare example, the fine-tuned model decodes complex medical terminology and context, while the RAG system retrieves up-to-date clinical studies or patient data about the drug’s effects. Together, they produce responses that are both accurate in language and comprehensive in knowledge.
This hybrid strategy balances the strengths and weaknesses of each technique, offering an AI assistant capable of nuanced understanding and adaptive learning—perfect for industries with complex, evolving needs.
Practical Takeaways
Fine-Tuning is best when deep domain expertise and language understanding are critical, and training data is available.
RAG shines in scenarios needing up-to-the-minute information or when dealing with proprietary, external knowledge.
Combining them provides a robust solution that ensures both contextual precision and knowledge freshness.
Final Thoughts
Whether you prioritize specialization through fine-tuning or dynamic information retrieval with RAG, understanding their distinct roles helps you design more intelligent, responsive AI systems. And when combined, they open new horizons in creating AI that is both knowledgeable and adaptable—key for tackling complex real-world challenges.
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electronicsbuzz · 2 months ago
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findurfuture · 3 months ago
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Artificial Intelligence (AI) and Machine Learning (ML) have moved from being abstract ideas to real-world technologies that are reshaping how we live, work, and connect with the world around us. No longer confined to the realm of science fiction, AI and ML are now woven into the fabric of our daily lives. From revolutionizing healthcare to transforming how businesses operate, these technologies are driving changes we could hardly have imagined a few decades ago. But what exactly do AI and ML mean, and how are they shaping our future?
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govindhtech · 1 year ago
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Aurora Supercomputer Sets a New Record for AI Tragic Speed!
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Intel Aurora Supercomputer
Together with Argonne National Laboratory and Hewlett Packard Enterprise (HPE), Intel announced at ISC High Performance 2024 that the Aurora supercomputer has broken the exascale barrier at 1.012 exaflops and is now the fastest AI system in the world for AI for open science, achieving 10.6 AI exaflops. Additionally, Intel will discuss how open ecosystems are essential to the advancement of AI-accelerated high performance computing (HPC).
Why This Is Important:
From the beginning, Aurora was intended to be an AI-centric system that would enable scientists to use generative AI models to hasten scientific discoveries. Early AI-driven research at Argonne has advanced significantly. Among the many achievements are the mapping of the 80 billion neurons in the human brain, the improvement of high-energy particle physics by deep learning, and the acceleration of drug discovery and design using machine learning.
Analysis
The Aurora supercomputer has 166 racks, 10,624 compute blades, 21,248 Intel Xeon CPU Max Series processors, and 63,744 Intel Data Centre GPU Max Series units, making it one of the world’s largest GPU clusters. 84,992 HPE slingshot fabric endpoints make up Aurora’s largest open, Ethernet-based supercomputing connection on a single system.
The Aurora supercomputer crossed the exascale barrier at 1.012 exaflops using 9,234 nodes, or just 87% of the system, yet it came in second on the high-performance LINPACK (HPL) benchmark. Aurora supercomputer placed third on the HPCG benchmark at 5,612 TF/s with 39% of the machine. The goal of this benchmark is to evaluate more realistic situations that offer insights into memory access and communication patterns two crucial components of real-world HPC systems. It provides a full perspective of a system’s capabilities, complementing benchmarks such as LINPACK.
How AI is Optimized
The Intel Data Centre GPU Max Series is the brains behind the Aurora supercomputer. The core of the Max Series is the Intel X GPU architecture, which includes specialised hardware including matrix and vector computing blocks that are ideal for AI and HPC applications. Because of the unmatched computational performance provided by the Intel X architecture, the Aurora supercomputer won the high-performance LINPACK-mixed precision (HPL-MxP) benchmark, which best illustrates the significance of AI workloads in HPC.
The parallel processing power of the X architecture excels at handling the complex matrix-vector operations that are a necessary part of neural network AI computing. Deep learning models rely heavily on matrix operations, which these compute cores are essential for speeding up. In addition to the rich collection of performance libraries, optimised AI frameworks, and Intel’s suite of software tools, which includes the Intel oneAPI DPC++/C++ Compiler, the X architecture supports an open ecosystem for developers that is distinguished by adaptability and scalability across a range of devices and form factors.
Enhancing Accelerated Computing with Open Software and Capacity
He will stress the value of oneAPI, which provides a consistent programming model for a variety of architectures. OneAPI, which is based on open standards, gives developers the freedom to write code that works flawlessly across a variety of hardware platforms without requiring significant changes or vendor lock-in. In order to overcome proprietary lock-in, Arm, Google, Intel, Qualcomm, and others are working towards this objective through the Linux Foundation’s Unified Acceleration Foundation (UXL), which is creating an open environment for all accelerators and unified heterogeneous compute on open standards. The UXL Foundation is expanding its coalition by adding new members.
As this is going on, Intel Tiber Developer Cloud is growing its compute capacity by adding new, cutting-edge hardware platforms and new service features that enable developers and businesses to assess the newest Intel architecture, innovate and optimise workloads and models of artificial intelligence rapidly, and then implement AI models at scale. Large-scale Intel Gaudi 2-based and Intel Data Centre GPU Max Series-based clusters, as well as previews of Intel Xeon 6 E-core and P-core systems for certain customers, are among the new hardware offerings. Intel Kubernetes Service for multiuser accounts and cloud-native AI training and inference workloads is one of the new features.
Next Up
Intel’s objective to enhance HPC and AI is demonstrated by the new supercomputers that are being implemented with Intel Xeon CPU Max Series and Intel Data Centre GPU Max Series technologies. The Italian National Agency for New Technologies, Energy and Sustainable Economic Development (ENEA) CRESCO 8 system will help advance fusion energy; the Texas Advanced Computing Centre (TACC) is fully operational and will enable data analysis in biology to supersonic turbulence flows and atomistic simulations on a wide range of materials; and the United Kingdom Atomic Energy Authority (UKAEA) will solve memory-bound problems that underpin the design of future fusion powerplants. These systems include the Euro-Mediterranean Centre on Climate Change (CMCC) Cassandra climate change modelling system.
The outcome of the mixed-precision AI benchmark will serve as the basis for Intel’s Falcon Shores next-generation GPU for AI and HPC. Falcon Shores will make use of Intel Gaudi’s greatest features along with the next-generation Intel X architecture. A single programming interface is made possible by this integration.
In comparison to the previous generation, early performance results on the Intel Xeon 6 with P-cores and Multiplexer Combined Ranks (MCR) memory at 8800 megatransfers per second (MT/s) deliver up to 2.3x performance improvement for real-world HPC applications, such as Nucleus for European Modelling of the Ocean (NEMO). This solidifies the chip’s position as the host CPU of choice for HPC solutions.
Read more on govindhtech.com
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placement-india · 1 year ago
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𝐖𝐡𝐲 𝐀𝐈 𝐖𝐢𝐥𝐥 𝐍𝐞𝐯𝐞𝐫 𝐑𝐞𝐩𝐥𝐚𝐜𝐞 𝐘𝐨𝐮𝐫 𝐁𝐚𝐜𝐤 𝐎𝐟𝐟𝐢𝐜𝐞 𝐓𝐚𝐬𝐤𝐬?
The 𝐁𝐚𝐜𝐤 𝐎𝐟𝐟𝐢𝐜𝐞 is all about managing the internal operations and administrative tasks of the business. 👉It is quite important for its regular functioning.
The Jobs can include payroll processing, HR handling, and accounting. The digital tool gives adequate chances to automate the actions. However, technology is no doubt essential for the future of the business.
There is pressure to discover the right resources for in-house jobs. Get the full story: Click here👇 to read the full article. http://surl.li/tgrzq
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ledjig · 2 years ago
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waybackwanderer · 11 months ago
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Ai Systems - Web Links Oct 1997 Archived Web Page 🧩
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cpapartners · 7 months ago
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Small firms must balance budget and ambition on AI
Small firms can't drop billions on custom AI systems, but there are still ways to leverage the tech without breaking the bank.
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sifytech · 1 year ago
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Convergence Digital and Real - Is It Good
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If we give algorithms total control over our decisions, they can influence what we eat and how we behave, our choices may be influenced by an entity we cannot control. Read More. https://www.sify.com/ai-analytics/convergence-digital-and-real-is-it-good/
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thxnews · 2 years ago
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Facebook and Instagram Enhance User Control and Transparency in Content Ranking
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  Enhancing User Control and Transparency
In a recent announcement, Facebook and Instagram unveiled significant updates to empower users with more control over their content experience and provide greater transparency into the algorithms shaping their feeds. The updates aim to make the platforms more user-friendly and address concerns regarding algorithmic influence. These changes come as billions of people rely on Facebook and Instagram to connect, share their lives, and discover captivating content.   Empowering Users with AI Systems Understanding the importance of personalization, both platforms utilize AI systems to curate content tailored to each user's preferences. By factoring in user choices and behavior, these systems attempt to deliver relevant and engaging content. In a prior discussion, Meta, the parent company of Facebook and Instagram, acknowledged the need for more transparency and user control, challenging the notion that algorithms render users powerless. Building on that commitment, Meta now takes strides toward openness and control.   Increased Transparency and Control Facebook and Instagram are committed to providing users with more transparency regarding AI systems that rank content across the platforms. By releasing 22 system cards, Meta grants insights into how these AI systems operate, the predictions they make to determine content relevance, and the available controls to customize the user experience. These system cards cover various sections such as Feed, Stories, Reels, and even unconnected content recommendations. Users can access the Transparency Center for a more detailed explanation of content recommendation AI. Moreover, Meta goes beyond system cards by sharing the types of signals and predictive models used to determine content relevance in the Facebook Feed. While the company aims to be transparent, it also recognizes the need to balance disclosure with safeguarding against misuse.   Personalizing the User Experience Recognizing that users have different preferences, Facebook and Instagram have centralized controls to customize content exposure. The Feed Preferences on Facebook and the Suggested Content Control Center on Instagram provide users with the ability to influence the content they see. Additionally, features like "Interested" and "Not Interested" on Instagram's Reels tab allow users to indicate their preferences and receive more of the content they enjoy. Facebook's "Show more, Show less" feature further empowers users to fine-tune their content consumption. For users desiring a more chronological feed experience, the Feeds tab on Facebook and the Following section on Instagram offer alternatives. Users can also create a Favorites list to ensure they never miss content from their favorite accounts.   Enabling Research and Innovation Meta believes in fostering openness and collaboration in the field of research and innovation, particularly regarding transformative AI technologies. Over the past decade, the company has released over 1,000 AI models, libraries, and data sets to support academic and public interest research. In the coming weeks, Meta will introduce the Content Library and API, offering comprehensive access to publicly-available content from Facebook and Instagram. Researchers from qualified institutions can apply for access, fostering scientific exploration while meeting new data-sharing and transparency obligations. By involving researchers early in the development process, Meta aims to receive valuable feedback, ensuring the tools align with their needs and aspirations. Facebook and Instagram's commitment to user control, transparency, and research collaboration signifies a forward-thinking approach, emphasizing the importance of customization and understanding in the ever-evolving landscape of social media platforms.   Sources: THX News & Meta. Read the full article
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archoneddzs15 · 5 months ago
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Sega Saturn - Darius Gaiden
Title: Darius Gaiden / ダライアス外伝
Developer: Aisystem Tokyo
Publisher: Taito
Release date: 15 December 1995
Catalogue No.: T-1102G
Genre: Shooter
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I was quite disappointed when I first received this game since I bought it when I lived in Ipoh (Perak) and paid RM 300 for it!! The first time I put it on I thought "Oh my God, I've just wasted 300 ringgit on a Super Famicom quality game" (the Western version was published by Acclaim). It wasn't until I sat down and played it, did I start to feel good about my purchase.
Yet again those mutant robotic fish are causing trouble and it's up to us to stop them. The game makes nice use of the Saturn's 2D powers which really shows in the poor PlayStation version converted by Interbec. There are some nice transparencies, warped backgrounds, and giant-sized enemies as well as that distinctive Zuntata (Taito's sound team) soundtrack.
Darius Gaiden isn't the best in terms of graphics however in the world of Darius it's not that bad at all. Most Darius games seem to look a bit basic. The game can easily hold its head up high with the best of them in terms of playability though such as Taito's own Metal Black or Technosoft's Thunder Force series.
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philosophiesde · 21 days ago
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Zoomposium with Prof. Dr. Martin Bogdan: "When AI gets bored - Ways to (artificial) consciousness
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Information about the person and research field
In this very exciting interview from our Zoomposium themed blog “Artificial intelligence and its consequences”, Axel and I talk this time with the German computer scientist Martin Bogdan, who conducts research on applied signal processing and data analysis in medicine and biology as well as embedded systems for bioanalog information processing at the Faculty of Mathematics and Computer Science in the Neuromorphic Information Processing Department at the University of Leipzig and works as Dean of Studies for Computer Science. It was precisely in this context that I became aware of him during my online research. I was looking for scientists, and in particular computer scientists, who work and research in the field of neuromorphic and bioanalog information processing. One reason for the research was that I have recently been dealing a lot with a possible paradigmshift from physics to biology in AI research. In this context, one could almost speak of a “biologization” in the development of new AIsystems. In this context of the possibilities of “communication” between biological-neuronal and artificial-neuronal networks, he has also worked a lot on new processor architectures. The old processor design for AI applications in the form of the functionalities of the hardware at circuit level (register transfer level synthesis) using “standard CMOS logic gates” is increasingly being replaced by artificial, neural networks “artificial neuronal network (ANN)” or “spiking neuronal networks (SNN)” in the course of “neuromorphic engineering” or “deeplearning (DL)” or perhaps replace them completely in the future. An attempt is made to translate the biological-neuronal networks of the brain into “spiking neuronal networks (SNN)” with the help of the Hodgkin-Huxley-Model. The action potentials of neurons and their connections are simulated as brain areas. Martin Bogdan also had another exciting but also provocative article on this topic, "Is Boredom an Indicator on the way to Singularity of Artificial Intelligence? Hypotheses as Thought-Provoking Impulse“ in 2023, in which he explores precisely this question of whether perhaps ”boredom“ in artificial intelligence could be a possible indicator for consciousness in the form of Kurzweil's ”Singularity". This is of course a “steep thesis”, which we had Mr. Bogdan explain to us in the not at all “boring” interview ;-). More at: https://youtu.be/izN9ac-9zw8
or: https://philosophies.de/index.php/2025/05/30/wenn-sich-ki-langweilt/
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propicsmedia · 23 days ago
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Why Are Famous Americans Trying to Save These Ostriches? Why Are Famous Americans Trying to Save These Ostriches? Watch the FULL EPISODE ON ProPIcs TV - Youtube BC Ostrich Cull Special Report - CAN AI SAVE MILLIONS OF ANIMALS AND BIRDS? About the Research and Development of leading-edge AI technology in the AG Tech industry, which can save billions in losses to farmers, ranchers and wildlife each year. How can these Ostriches play a vital role in the future of early detection and management of Avian Flu, Mad Cow and Bovine diseases among other animal outbreaks? Find out here.   #Saveourostriches #saveanimals #foodsupply #Avianflu #Bovineillness #Birdillness #Foodchain #disease #Health #Foodsafety #FoodInspection #ArtificialIntelligence #AGTech #AgriTech #Technology #Animalconservation #Animalwellness #Animalresearch #diseaseresearch #foodsafetyresearch #ai #AIsystems #TechnologySystems #futuretech #Ranchers #animalrescue #AnimalProtection #Birdcull #Birdculls #WorldHealthOrganization #DrOz #RobertFKennedy #RFK #TrumpAdministration #CanadianFoodInspectionAgency #breakingnews #FarmNews #RanchNews #vets #Agriculture #cows #Bulls #Herd #Horses #Pigs #news #WorldNews #technews #BritishColumbiaNews #newsupdate #WFP #WHO
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govindhtech · 1 year ago
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Top 6 Ecommerce Trends for 2024 and beyond
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Ecommerce has developed dramatically in the previous decade. New business structures and ecommerce trends have complicated the environment. During the COVID-19 epidemic, digital usage increased worldwide. Some estimates put internet shopping at 50% of retail sales by next year.
However, many organizations realized that increasing their internet presence or focus didn’t ensure success. McKinsey calls this “the e-commerce catch-22,” since many merchants with strong ecommerce sales growth in 2020 and 2021 saw margins fall.
Due to market saturation, electronics and home goods retailers increasingly compete internationally with tiny online businesses like Amazon. This may drive companies to lower prices to compete.
New markets may complicate shipping and logistics and disrupt global supply chains. Since they’re used to same-day delivery and tailored items, consumers anticipate a unified digital shopping experience. They intend to utilize their preferred payment method. These clients increasingly want free delivery and reward schemes. Businesses must also focus on sustainability to reach digital natives like Gen Z.
Businesses must be innovative about their digital strategy and how to build dynamic, interactive shopping experiences that increase consumer interactions in the ever-changing, fast developing ecommerce environment. Here are some ecommerce trends that will effect the global USD 3.3 trillion industry and improve customers’ digital experiences as consumers change how they buy products and services:
Artificial intelligence
Augmented reality
Live commerce
Online-to-offline ecommerce
Collective commerce
The voice helpers
Artificial intelligence trend
AI has greatly impacted digital commerce and is regarded as the fourth industrial revolution. Customers now demand personalized purchasing experiences. Digital optimization and automation solutions make using consumer or third-party data to create intelligent ecommerce sites cheaper and simpler. If used properly, AI-enabled marketing and product discovery technologies improve consumer engagement and retention.
Personalization
To provide individualized product suggestions and shopping experiences, AI systems can evaluate massive quantities of user data, including browsing history, purchase behavior, and demographics. AI-based customization recommends products, reminds consumers to reorder, and customizes shopping experiences. These tailored shopping experiences may be used on product sites, email marketing, and checkout.
Dynamic pricing
Dynamic pricing, popularized by ride-share firms but increasingly utilized elsewhere, lets shops modify rates in real time depending on demand, inventory, and rival pricing. Dynamic pricing may help certain ecommerce firms optimize income while staying competitive, but the AI’s settings must be carefully selected to prevent ridiculous price structures that may repel new consumers.
Virtual assistants, chatbots
Gartner predicts that by 2027, 25% of firms would use chatbots to provide customized customer assistance in natural language, answer inquiries, and resolve consumer problems in real time. To create a positive online purchasing experience, conversational AI-assisted customer service and its managers must work together, according to some academics.
Find and discover
Machine learning algorithms let AI-powered search and recommendation engines understand user intent, increase search relevancy, and identify products. To help buyers locate the right product by pattern or style, many retailers are using third-party AI to simplify natural language product searches.
Technology-based ecommerce firms have also emerged from the AI revolution. Many subscription-based ecommerce firms like Blue Apron and BarkBox have grown over 1,000%. AI and advanced analytics help direct-to-consumer subscription companies choose products.
Augmented reality trend
AR and VR technology allow marketers to improve digital experiences and integrate digital touchpoints into conventional purchase channels. Consumers may minimize uncertainty and return rates by “trying it out” in their living room for purchases that are significantly reliant on environmental context, such as a new sofa. AR and VR may improve customer experiences in travel, hospitality, and consumer retail by providing the finest product previews before purchase.
Product visualizations improved
A vivid and immersive product preview is one of the main advantages of integrating AR and VR into ecommerce. Industries where customers make significant, contextually sensitive purchases might benefit from this feature. Several real estate businesses have tried remote property viewing technology. Recently, IKEA launched a successful AR smartphone app that lets shoppers explore its products in their homes.
Virtual try-ons
Properly designed virtual try-on experiences may alter fashion and beauty. This technology lets consumers remotely try on clothes, accessories, and cosmetics via cellphones or webcams. Some optical stores let customers “try on” glasses online. Sephora’s real-time cosmetics app is very successful.
Live-commerce trend
Live commerce started in China. Within six years after its 2016 launch, the sector was expected to generate USD 647 billion. The US market is still growing, expected to generate USD 32 billion by 2023.
Live commerce events allow consumers to connect with a host via livestream while buying things with digital wallets. Alibaba pioneered the sales strategy, which TikTok, Amazon, and Poshmark have emulated. Influencers or celebrities may promote items during shopping events, encouraging customers to speak about and buy them. Live commerce lets firms promote discounts and builds community around an event.
Online-to-offline ecommerce trend
Many online-to-offline (O2O) ecommerce solutions seamlessly combine digital channels with physical retail experiences, offering a comprehensive consumer journey across both channels. Though contradictory, several internet merchants prioritize luring consumers back to purchasing in-store. Offer chosen experiences in physical places to build client loyalty and find new markets.
Amazon bought Whole Foods and combined in-store food purchasing with its digital environment. From China’s Alibaba to Magnolia Market, a direct-to-consumer furniture brand, several other companies have launched physical storefronts based on their internet sites.
Online-to-offline ecommerce projects include:
Omnichannel purchasing involves ordering online and picking up in-store.
Furniture showrooms for online orders and home delivery
QR codes or bar codes for in-store product information
Social-commerce trend
Between 2021 and 2025, social commerce ecommerce that uses social media as a marketing tool and shopping destination is anticipated to rise by over 50%. It’s a prominent ecommerce trend that’s predicted to earn USD 1.2 trillion by 2025 and features mobile shopping like live commerce.
Organizations may utilize social media to promote product discovery, social buying, and consumer involvement. Facebook, Instagram, and TikTok have integrated social commerce to make it easier.
Seamless social media buying experiences use social behaviors to shorten the purchasing process and boost conversion rates. Social recommendation and discovery help shoppers identify relevant items. Social commerce firms often collaborate with influencers or leverage user-generated content to reach their audience. Clinique has engaged younger audiences with smart social media marketing and social commerce.
In trend: Voice assistants
Smart speakers and speech assistants simplify online purchasing and customer relations. This technique utilizes AI to search for items and submit orders using multiple payment options. Use voice commands to monitor shipments and obtain unique suggestions.
Voice search-assisted ecommerce makes purchasing easier for multitasking online customers and makes conventional interfaces more accessible. Grocery and home goods stores may benefit from voice ordering’s simplicity. For years, firms have been generating speech search-friendly product descriptions and back-end voice assistant solutions. Dominos has had a smartphone app for ordering pizza since 2017.
The future of ecommerce
Ecommerce is growing internationally, thus new digital commerce formats are sprouting quickly. China, which accounts for more than half of global digital retail sales, has developed social commerce and live commerce rapidly. Live commerce in China went from an emerging invention to a channel where two-thirds of people purchased a product in a year in less than five years.
Most companies now need more than just PayPal hookups or listing things from their brick-and-mortar shop on an ecommerce platform. The IBM Institute for Business Value found that 14% of 20,000 customers in 26 countries were happy with internet purchasing. Innovation is needed to make ecommerce enjoyable.
IBM and ecommerce trends
Trade is difficult. Business consultancy thrives on powerful ecommerce and AI-driven omnichannel commerce. IBM iX provides digital strategy, design, implementation, integration, and operations consultancy and world-class ecosystem connections.
IBM Consulting professionals help organizations achieve their objectives by using data, AI, best ecommerce practices, and the open-source IBM iX Experience Orchestrator. You get insight-led, outcomes-driven client experiences that establish trust and boost your company’ relevance.
Read more on govindhtech.com
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placement-india · 1 year ago
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The Future of 🧑‍💼 Work: How AI is Shaping the Job Landscape
𝐀𝐫𝐭𝐢𝐟𝐢𝐜𝐢𝐚𝐥 𝐈𝐧𝐞𝐥𝐥𝐢𝐠𝐞𝐧𝐜𝐞 is significantly transforming the Job Market. 👉While some Jobs may become obsolete, new roles will emerge that require skills in working with AI Systems, Data Analysis and Decision-Making.
AI Technologies are automating repetitive and mundane tasks, allowing employees to focus on more complex and creative work, which can lead to increased efficiency and productivity in many industries. AI is also changing how businesses operate and organizations function, impacting various industries, including coding, marketing, legal, healthcare administration and more.
Preparing for an AI-Integrated future is about a combination of upskilling, reskilling, staying informed and maintaining an adaptable mindset. While challenges are undeniable, those who are proactive in their approach to personal and professional development will be in the best position to capitalize on new opportunities.
👉 Visit: www.placementindia.com
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ledjig · 2 years ago
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