I’ve been using the Galaxy Z Fold 7 for a week, and I’ve run out of ways to say “It’s so nice.” It’s not essential, or life-changing; it’s nice.
Artificial Intelligence
Samsung Galaxy Z Fold 7 review: stunning, bendy, and spendy
It’s an understatement, though. Samsung joins the likes of Honor and Oppo in making a folding phone that’s almost as thin as a regular phone, and it’s a trend with real benefits. Compared to the previous six generations of Samsung folding phones, the Z Fold 7’s inner screen feels like a bonus — one that doesn’t require the sacrifice of carrying a bigger, bulkier device to get. It is thin. It is luxurious. Also: it is two thousand dollars.
It’s so nice. It’s two thousand dollars. Somewhere in between those two statements, you’ll know whether the Galaxy Z Fold 7 is for you. If the size and bulk of previous foldables deterred you, then this is the phone you’ve been waiting for. Provided you have, you know, a couple grand lying around.
Writing a review of the Fold 7 feels like writing a review of two devices: the one you use with the phone closed, and the one that’s available with the phone open. The former got a major upgrade this year: it uses a normal 21:9 aspect ratio. Previous versions of the outer screen were longer and skinnier than your average phone, and I never quite got used to typing on them. I sometimes forget I’m using a folding phone when the Z Fold 7 is closed.
It works just like a regular slab-style phone outside of some extreme use cases. And for a folding phone? That’s mission accomplished.
Here’s the Z Fold 7’s dilemma: that outer screen is a 6.5-inch 1080p display that’s not as sharp or as pleasant to use in bright light as the outstanding screen on the far cheaper Galaxy S25 Ultra. That’s a point I kept revisiting as I used the Z Fold 7. As a total package there’s almost nothing like it, but plenty of its individual features fall short of the best slab-style phones.
Non-foldy phones offer better battery life, but the margin isn’t as wide as I feared. How much you use the inner screen will dramatically affect battery life; I got through a day of moderate use and occasional inner screen use with around 50 percent left. With more time on the inner screen and about an hour of hotspot use, the battery was down to around 30 percent by bedtime. Nobody’s buying a folding phone for its power efficiency, and I think these results are pretty good.
As soon as I open the inner screen, the slight shortcomings are out of mind. I kept forgetting that the inner screen even existed, but I quickly got into the habit of opening it. Do you know how nice it is to use Chrome on your phone with normal-ass tabs at the top of the screen? Do you know how much less fiddly a game like Diablo Immortal is on a big screen? Do you know how useful it is to keep the Uber app open on one side of the display so you can keep track of your driver’s arrival while you finish a sudoku on the other half? I do. Once you start using the inner screen, you keep finding new ways to use it.
None of the above is new or exclusive to the Fold 7, but I can’t emphasize this enough: this all feels like you’re getting away with something, because the experience of using this phone while it’s closed feels normal. No more chunky brick in the side pocket of my yoga pants. One nitpick: I don’t love how stiff it feels when I’m opening the phone. The grip from a case would help here. Overall, a slimmer, lighter, well-proportioned foldable really is a whole new ballgame.
There’s some bad news. I’m not one to get worked up about the way any camera bump looks, but this one protrudes a lot. The phone sits crooked on surfaces and wobbles when you tap the screen, which encourages you to put it on a table screen-side-down. Fewer distractions from notifications? Good! The screen is slippery and the phone slides off the edge of the bathtub? Bad! There wasn’t any water in the tub when that happened, but still.
The wobble is annoying; I have to prop it up on a couple of drink coasters if I’m using it on the dining room table. Samsung’s silicone grip case seems to mitigate it, but stand cases don’t fix it. A case feels like a requirement here (and I say that as a case hater!), but they’re thin enough they don’t erase all the benefits of a slim foldable.
The Fold 7 uses a Snapdragon 8 Elite chipset tuned for Samsung, along with 12GB of RAM in the 256GB model I tested. It keeps up just fine, and I had no problems running Diablo Immortal at the highest display settings. The phone didn’t even get very warm. The Z Fold 7 did get mighty toasty in a bit of a torture test: using it as a hotspot on a coffee shop patio on a high-80s afternoon. I put it in the direct sun, which you should not do, and sure enough, it started closing apps after about 10 minutes to try and cool itself down. Extreme, yes, but good to know if you live in a place with high temperatures.
Another environmental consideration: dust resistance. The Z Fold 7 still doesn’t have a formal dust resistance rating; its IP48 means it’s fully water-resistant but only immune to very small particles, not specks of dust. Take extra care and consider adding Samsung’s extended warranty plan to cover pricey inner screen repairs.
The Z Fold 7’s 200-megapixel camera is adapted from the S25 Ultra’s, and it’s a great camera here, just as it is in the Ultra. Low-light photos are detailed, provided your subject isn’t moving too much, and Samsung’s preference for vibrant reds and blues is on full display. There’s also a 10-megapixel 3x telephoto and a 12-megapixel ultrawide — both solid performers if you don’t ask too much from them. Digital zoom past 5x from the telephoto lens looks pretty watercolor-y. But Samsung’s portrait mode with the 3x camera remains the best in the game, as it has been for years. Segmentation is so good it’s uncanny — isolating a subject down to the eyelashes on my son’s eyes.
If you compare the Z Fold 7 to a top-tier slab phone like the S25 Ultra spec by spec, the folding phone often comes up short. It’s less durable, battery life isn’t quite as good, and the camera system isn’t as versatile. But that misses the point of the Z Fold 7. This phone is a luxury and an engineering marvel. If you have the deep pockets and a mind open to the benefits of the big screen, then I think you’ll agree with me: it’s just so nice.
Photography by Allison Johnson / The Verge
Agree to Continue: Samsung Galaxy Z Fold 7
Every smart device now requires you to agree to a series of terms and conditions before you can use it — contracts that no one actually reads. It’s impossible for us to read and analyze every single one of these agreements. But we started counting exactly how many times you have to hit “agree” to use devices when we review them since these are agreements most people don’t read and definitely can’t negotiate.
To use the Samsung Galaxy Z Fold 7, you must agree to:
- Samsung’s Terms and Conditions
- Samsung’s Privacy Policy
- Google’s Terms of Service (including Privacy Policy)
- Google Play’s Terms of Service
- Automatic installs (including from Google, Samsung, and your carrier)
There are many optional agreements. If you use a carrier-specific version, there will be more of them. Here are just a few:
- Sending diagnostic data to Samsung
- Samsung services, including auto blocker, customization service, continuity service, nearby device scanning, personal data intelligence, and smart suggestions
- Google Drive backup, location services, Wi-Fi scanning, diagnostic data
- Bixby privacy policy (required to use Bixby), plus optional for Bixby options like personalized content, data access, and audio recording review
There may be more. For example, Samsung’s Weather app also has its own privacy policy that may include sharing information with Weather.com.
Final tally: there are five mandatory agreements and at least 10 optional ones.
Artificial Intelligence
Klarna backs Google UCP to power AI agent payments
Klarna aims to address the lack of interoperability between conversational AI agents and backend payment systems by backing Google’s Universal Commerce Protocol (UCP), an open standard designed to unify how AI agents discover products and execute transactions.
The partnership, which also sees Klarna supporting Google’s Agent Payments Protocol (AP2), places the Swedish fintech firm among the early payment providers to back a standardised framework for automated shopping.
The interoperability problem with AI agent payments
Current implementations of AI commerce often function as walled gardens. An AI agent on one platform typically requires a custom integration to communicate with a merchant’s inventory system, and yet another to process payments. This integration complexity inflates development costs and limits the reach of automated shopping tools.
Google’s UCP attempts to solve this by providing a standardised interface for the entire shopping lifecycle, from discovery and purchase to post-purchase support. Rather than building unique connectors for every AI platform, merchants and payment providers can interact through a unified standard.
David Sykes, Chief Commercial Officer at Klarna, states that as AI-driven shopping evolves, the underlying infrastructure must rely on openness, trust, and transparency. “Supporting UCP is part of Klarna’s broader work with Google to help define responsible, interoperable standards that support the future of shopping,” he explains.
Standardising the transaction layer
By integrating with UCP, Klarna allows its technology – including flexible payment options and real-time decisioning – to function within these AI agent environments. This removes the need for hardcoded platform-specific payment logic. Open standards provide a framework for the industry to explore how discovery, shopping, and payments work together across AI-powered environments.
The implications extend to how transactions settle. Klarna’s support for AP2 complements the UCP integration, helping advance an ecosystem where trusted payment options work across AI-powered checkout experiences. This combination aims to reduce the friction of users handing off a purchase decision to an automated agent.
“Open standards like UCP are essential to making AI-powered commerce practical at scale,” said Ashish Gupta, VP/GM of Merchant Shopping at Google. “Klarna’s support for UCP reflects the kind of cross-industry collaboration needed to build interoperable commerce experiences that expand choice while maintaining security.”
Adoption of Google’s UCP by Klarna is part of a broader shift
For retail and fintech leaders, the adoption of UCP by players like Klarna suggests a requirement to rethink commerce architecture. The shift implies that future payments may increasingly come through sources where the buyer interface is an AI agent rather than a branded storefront.
Implementing UCP generally does not require a complete re-platforming but does demand rigorous data hygiene. Because agents rely on structured data to manage transactions, the accuracy of product feeds and inventory levels becomes an operational priority.
Furthermore, the model maintains a focus on trust. Klarna’s technology provides upfront terms designed to build trust at checkout. As agent-led commerce develops, maintaining clear decisioning logic and transparency remains a priority for risk management.
The convergence of Klarna’s payment rails with Google’s open protocols offers a practical template for reducing the friction of using AI agents for commerce. The value lies in the efficiency of a standardised integration layer that reduces the technical debt associated with maintaining multiple sales channels. Success will likely depend on the ability to expose business logic and inventory data through these open standards.
See also: How SAP is modernising HMRC’s tax infrastructure with AI
Want to learn more about AI and big data from industry leaders? Check out AI & Big Data Expo taking place in Amsterdam, California, and London. The comprehensive event is part of TechEx and is co-located with other leading technology events including the Cyber Security & Cloud Expo. Click here for more information.
AI News is powered by TechForge Media. Explore other upcoming enterprise technology events and webinars here.
Artificial Intelligence
How SAP is modernising HMRC’s tax infrastructure with AI
HMRC has selected SAP to overhaul its core revenue systems and place AI at the centre of the UK’s tax administration strategy.
The contract represents a broader shift in how public sector bodies approach automation. Rather than layering AI tools over legacy infrastructure, HMRC is replacing the underlying architecture to support machine learning and automated decision-making natively.
The AI-powered modernisation effort focuses on the Enterprise Tax Management Platform (ETMP), the technological backbone responsible for managing over £800 billion in annual tax revenue and which currently supports over 45 tax regimes. By migrating this infrastructure to a managed cloud environment via RISE with SAP, HMRC aims to simplify a complex technology landscape that tens of thousands of staff rely on daily.
Effective machine learning requires unified data sets, which are often impossible to maintain across fragmented on-premise legacy systems. As part of the deployment, HMRC will implement SAP Business Technology Platform and AI capabilities. These tools are designed to surface insights faster and automate processes across tax administration.
SAP Sovereign Cloud meets local AI adoption requirements
Deploying AI in such highly-regulated sectors requires strict data governance. HMRC will host these new capabilities on SAP’s UK Sovereign Cloud. This ensures that while the tax authority adopts commercial AI tools, it adheres to localised requirements regarding data residency, security, and compliance.
“Large-scale public systems like those delivered by HMRC must operate reliably at national scale while adapting to changing demands,” said Leila Romane, Managing Director UKI at SAP.
“By modernising one of the UK’s most important platforms and hosting it on a UK sovereign cloud, we are helping to strengthen the resilience, security, and sustainability of critical national infrastructure.”
Using AI to modernise tax infrastructure
The modernisation ultimately aims to reduce friction in taxpayer interactions. SAP and HMRC will work together to define new AI capabilities specifically aimed at improving taxpayer experiences and enhancing decision-making.
For enterprise leaders, the lesson here is the link between data accessibility and operational value. The collaboration provides HMRC employees with better access to analytical data and an improved user interface. This structure supports greater confidence in real-time analysis and reporting; allowing for more responsive and transparent experiences for taxpayers.
The SAP project illustrates that AI adoption is an infrastructure challenge as much as a software one. HMRC’s approach involves securing a sovereign cloud foundation before attempting to scale automation. For executives, this underscores the need to address technical debt and data sovereignty to enable effective AI implementation in areas as regulated as tax and finance.
See also: Accenture: Insurers betting big on AI
Want to learn more about AI and big data from industry leaders? Check out AI & Big Data Expo taking place in Amsterdam, California, and London. The comprehensive event is part of TechEx and is co-located with other leading technology events including the Cyber Security & Cloud Expo. Click here for more information.
AI News is powered by TechForge Media. Explore other upcoming enterprise technology events and webinars here.
Artificial Intelligence
ThoughtSpot: On the new fleet of agents delivering modern analytics
If you are a data and analytics leader, then you know agentic AI is fuelling unprecedented speed of change right now. Knowing you need to do something and knowing what to do, however, are two different things. The good news is providers like ThoughtSpot are able to assist, with the company in its own words determined to ‘reimagin[e] analytics and BI from the ground up’.
“Certainly, agentic systems really are shifting us into very new territory,” explains Jane Smith, field chief data and AI officer at ThoughtSpot. “They’re shifting us away from passive reporting to much more active decision making.
“Traditional BI waits for you to find an insight,” adds Jane. “Agentic systems are proactively monitoring data from multiple sources 24/7; they’re diagnosing why changes happened; they’re triggering the next action automatically.
“We’re getting much more action-oriented.”
Alongside moving from passive to active, there are two other ways in which Jane sees this change taking place in BI. There is a shift towards the ‘true democratisation of data’ on one hand, but on the other is the ‘resurgence of focus’ on the semantic layer. “You cannot have an agent taking action in the way I just described when it doesn’t strictly understand business context,” says Jane. “A strong semantic layer is really the only way to make sense… of the chaos of AI.”
ThoughtSpot has a fleet of agents to take action and move the needle for customers. In December, the company launched four new BI agents, with the idea that they work as a team to deliver modern analytics.
Spotter 3, the latest iteration of an agent first debuted towards the end of 2024, is the star. It is conversant with applications like Slack and Salesforce, and can not only answer questions, but assess the quality of its answer and keep trying until it gets the right result.
“It leverages the [Model Context] protocol, so you can ask your questions to your organisation’s structured data – everything in your rows, your columns, your tables – but also incorporate your unstructured data,” says Jane. “So, you can get really context-rich answers to questions, all through our agent, or if you wish, through your own LLM.”
With this power, however, comes responsibility. As ThoughtSpot’s recent eBook exploring data and AI trends for 2026 notes, the C-suite needs to work out how to design systems so every decision – be it human or AI – can be explained, improved, and trusted.
ThoughtSpot calls this emerging architecture ‘decision intelligence’ (DI). “What we’ll see a lot of, I think, will be decision supply chains,” explains Jane. “Instead of a one-off insight, I think what we’re going to see is decisions… flow through repeatable stages, data analysis, simulation, action, feedback, and these are all interactions between humans and machines that will be logged in what we can think of as a decision system of record.”
What would this look like in practice? Jane offers an example from a clinical trial in the pharma industry. “The system would log and version, really, every step of how a patient is chosen for a clinical trial; how data from a health record is used to identify a candidate; how that decision was simulated against the trial protocol; how the matching occurred; how potentially a doctor ultimately recommended this patient for the trial,” she says.
“These are processes that can be audited, they can be improved for the following trial. But the very meticulous logging of every element of the flow of this decision into what we think of as a supply chain is a way that I would visualise that.”
ThoughtSpot is participating at the AI & Big Data Expo Global, in London, on February 4-5. You can watch the full interview with Jane Smith below:
Photo by Steve Johnson on Unsplash
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