Технологічний гігант Google працює над новим амбітним проєктом у сфері персональної продуктивності, який має вийти далеко за межі звичного запису голосу. За даними витоків, компанія розробляє застосунок під кодовою назвою “Eloquent”, що стане частиною оновленої екосистеми “AI Edge“. Головна особливість новинки — повна автономність та використання потужностей локального штучного інтелекту для структурування інформації в реальному часі.
Позначка: google
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Іран (КВІР) погрожує знищити офіси Apple, Google і Microsoft на Близькому Сході
Іранський Корпус вартових ісламської революції (КВІР) оголосив 18 американських технологічних компаній законними військовими цілями. Удари по їхніх об’єктах на Близькому Сході обіцяють розпочати з 20:00 за тегеранським часом у середу, 1 квітня.
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Revolutionary Impact of Google’s TurboQuant on DDR5 Memory Prices
In the wake of Google’s announcement of their TurboQuant compression algorithm, DDR5 memory prices have ceased their upward trend and are now experiencing a significant drop.
Retailers like Newegg are reflecting similar pricing changes. However, the price decline appears to have most prominently impacted Corsair’s products. Google’s TurboQuant technology has already led to a decrease in stock values for memory manufacturers such as Micron, SK Hynix, and Samsung.
Without a sustainable and effective solution, or unless the AI market bubble bursts, a sharp decline in DDR5 memory module prices might not be expected.
Earlier reports indicated a 15-30% increase in gaming PC prices. Meanwhile, V-Color plans to release a kit featuring one DDR5 module paired with an RGB-lit placeholder.
On Amazon, Corsair VENGEANCE DDR5 memory modules, with a capacity of 32 GB and a speed of 6400 MHz, are now available for $380, compared to recent highs of around $490. Additionally, the price of 16 GB DDR5-5200 modules has decreased from a peak of about $260 to $220.
However, this does not necessarily imply a substantial long-term reduction in memory prices for general consumers. Data centers might upgrade to more powerful AI models, demanding more memory. Consequently, manufacturers may continue prioritizing corporate clients over gamers.
TurboQuant is a key-value cache compression algorithm that effectively reduces memory requirements for AI tasks by up to six times. This development suggests that AI companies might need less memory for data centers than previously anticipated. Despite this, many experts remain skeptical about its impact.
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The crisis is averted: Google has invented a quantum algorithm that reduces AI memory requirements by sixfold.
What are your thoughts on this article? Votes: Quite good, Okay, Unbelievable! Well, that’s surprising… Annoying, to the point of frustration!
What are your thoughts on this article? Votes: Quite good, Okay, Unbelievable! Well, that’s surprising… Annoying, to the point of frustration!
What are your thoughts on this article? Votes: Quite good, Okay, Unbelievable! Well, that’s surprising… Annoying, to the point of frustration!
What are your thoughts on this article? Votes: Quite good, Okay, Unbelievable! Well, that’s surprising… Annoying, to the point of frustration!
Quite good, Okay, Unbelievable! Well, that’s surprising… Annoying, to the point of frustration!
Quite good, Okay, Unbelievable! Well, that’s surprising… Annoying, to the point of frustration!
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Google Introduces AutoFDO: A New Feature to Boost Android Smartphone Performance
Google is developing a new feature called AutoFDO, designed to enhance the speed and battery life of Android smartphones.
Previously, discussions centered around the Galaxy S26 simulator, which converts any iPhone or Android device into a Samsung interface. Meanwhile, Android 17 has introduced a tool named DeliQueue.
AutoFDO operates by utilizing real-world instruction execution patterns to guide the compiler. These patterns are the most commonly executed instruction paths during actual code usage and are captured by recording the processor’s branch history.
According to Google, AutoFDO will function in the Android kernel by default, reverting to traditional methods if a process deviates from predefined patterns. The updates will be rolled out in the latest kernel versions of Android16-6.12, Android15-6.6, and Android17-6.18. This optimization aims to speed up the user interface, improve app switching, extend battery life, and enhance device responsiveness.
The team behind the Android LLVM tool announced the kernel update with AutoFDO — an automatic feedback-driven optimization. Smartphones in standby mode make thousands of decisions that demand significant processing resources.
AutoFDO directs the compiler along “the most common paths” of execution, reducing workload and freeing up more computing power for other tasks. Consequently, energy consumption is lowered, which extends battery life.
Google explains that during standard software compilation, the compiler makes numerous small decisions, such as whether to inline a function or which variant of a conditional operator to use, based on statistical hints from the code. While these methods are beneficial, they do not always accurately predict code execution in real-world phone usage.
“Although data can be collected from network-connected devices, we synthesize it in a lab environment for the kernel, using representative workloads like launching the 100 most popular apps. A sampling profiler gathers this data, identifying which code segments are ‘hot’ and which are ‘cold.’ When we recompile the kernel with these profiles, the compiler can make much smarter optimization choices tailored to realistic Android workloads,” Google highlights.
Initial tests by the company noted a 2.1% improvement in loading times, a 4.3% boost in launching idle apps, and significant enhancements in other areas that might not be immediately noticeable to the average user. These patterns were developed based on the 100 most popular smartphone apps to simulate real-world usage. Subsequently, they were fine-tuned for the most frequently used code sections.
Google has released the first beta of Android 17: what’s new?
“Although data can be collected from network-connected devices, we synthesize it in a lab environment for the kernel, using representative workloads like launching the 100 most popular apps. A sampling profiler gathers this data, identifying which code segments are ‘hot’ and which are ‘cold.’ When we recompile the kernel with these profiles, the compiler can make much smarter optimization choices tailored to realistic Android workloads,” Google highlights.
What are your thoughts on this article? Votes: Quite fascinating Interesting Frustrating Quite intriguing… Annoying, even.
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AI Overviews від Google знищив до 90% трафіку техномедіа: більшості читачів вистачає ШІ-резюме
Всі вже звикли до того, що AI Overviews від Google узагальнюють статті та подають їх користувачам у вигляді одного зручного для читання дайджесту. Однак поки користувачі економлять кілька дорогоцінних секунд на пошукових запитах, онлайн-медіа переживають різке падіння кількості кліків.
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Google закриває застосунок "Погода" на Android: прогноз тепер відкривається через Пошук із ШІ
Google поступово відмовляється від окремого погодного інтерфейсу на Android, який користувачі роками сприймали як фактичний застосунок “Погода”. Тепер замість повноекранного відображення інформацію про погоду система перенаправляє на сторінку результатів пошуку Google за запитом “погода”. Перші натяки на ці зміни з’явились кілька місяців тому, а тепер процес виходить на фінішну пряму.
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В Android 17 додали інструмент DeliQueue: він зробить інтерфейс "плавнішим"
Google розповіла, як у Android 17 планує зробити роботу інтерфейсу і застосунків плавнішою. Ключова зміна полягає в новому механізмі DeliQueue, який зменшує час очікування між програмними потоками. Іншими словами, система рідше “спотикається”, коли кілька процесів одночасно звертаються до пам’яті.