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Of course running a state of the art machine learning model, with billions of parameters, is not exactly easy when memory is measured in kilobytes. But with some creative thinking and a hybrid approach that leverages the power of the cloud and blends it with the advantages of tinyML, it may just be possible. A team of researchers at MIT has shown how this may be possible with their method called Netcast that relies on heavily-resourced cloud computers to rapidly retrieve model weights from memory, then transmit them nearly instantaneously to the tinyML hardware via a fiber optic network. Once those weights are transferred, an optical device called a broadband “Mach-Zehnder” modulator combines them with sensor data to perform lightning-fast calculations locally.

The team’s solution makes use of a cloud computer with a large amount of memory to retain the weights of a full neural network in RAM. Those weights are streamed to the connected device as they are needed through an optical pipe with enough bandwidth to transfer an entire full feature-length movie in a single millisecond. This is one of the biggest limiting factors that prevents tinyML devices from executing large models, but it is not the only factor. Processing power is also at a premium on these devices, so the researchers also proposed a solution to this problem in the form of a shoe box-sized receiver that performs super-fast analog computations by encoding input data onto the transmitted weights.

This scheme makes it possible to perform trillions of multiplications per second on a device that is resourced like a desktop computer from the early 1990s. In the process, on-device machine learning that ensures privacy, minimizes latency, and that is highly energy efficient is made possible. Netcast was test out on image classification and digit recognition tasks with over 50 miles separating the tinyML device and cloud resources. After only a small amount of calibration work, average accuracy rates exceeding 98% were observed. Results of this quality are sufficiently good for use in commercial products.

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A network of autonomous cable cars transports people and goods around a city in this concept developed by transport design studio Half Company.

Halfgrid is a proposal for a city-wide transport system that uses artificial intelligence (AI) to move suspended capsules to their designated location.

It is billed as “a fully autonomous transit system for people and goods, running on a separate layer above the ground and based on the smallest unit possible — an individual person-sized pod”.

FOR as long as internal combustion has ruled the roads, vehicles have been fitted with just three basic types of engine: four-stroke, two-stroke, and rotary.

Each differs from the next with regard to its power density and fuel economy, but the general premise of each is very similar. Air and fuel go in, get ignited, and push the piston (or rotor) which in turn rotates the crankshaft creating motion.

It’s a simple enough process, and through well over 100 years of fettling and refining, petrol engines have become ever more potent, economical, and advanced.

Is Twitter getting into the NFT business?


According to the social media company Twitter, the firm plans to launch a new feature called “NFT Tweet Tiles,” a segregated panel within a tweet that showcases non-fungible tokens (NFTs) and the marketplaces that list the specific NFT shared. The new NFT concept is expected to drop soon, in order to “impact the Tweet experience,” Twitter developers explained on Oct. 27.

Twitter Developers Reveal ‘NFT Tweet Tiles’

After Elon Musk officially took over Twitter, the social media’s development team tweeted that the firm aims to drop a feature called NFT Tweet Tiles soon. “Now testing: NFT Tweet Tiles,” the account @twitterdev tweeted. “Some links to NFTs on [Rarible], [Magic Eden], [Dapper Labs], and [Jump.trade] will now show you a larger picture of the NFT alongside details like the title and creator. One more step in our journey to let developers impact the Tweet experience.”