High-speed ASIC switches hold great promise for offloading complex packet processing pipelines directly in the highspeed data-plane. Yet, a large variety of today's packet processing pipelines, including stateful network functions and packet schedulers, require storing some (or all the) packets for short amount of times in a programmatic manner. Such a programmable buffer feature is missing on today's high-speed ASIC switches.

In this work, we present RIBOSOME, a system that extends programmable switches with external memory (to store packets) and external general-purpose packet processing devices such as CPUs or FPGAs (to perform stateful operations). As today's packet processing devices are bottlenecked by their network interface speeds, RIBOSOME carefully transmits only the relevant bits to these devices. RIBOSOME leverages spare bandwidth from any directly connected servers to store the incoming payloads through RDMA. Our evaluation shows that RIBOSOME can process 300G of traffic through a stateful packet processing pipeline (e.g., firewall, load balancer, packet scheduler) by running the pipeline logic on a single server equipped with one 100G interface.


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319 Tbps is a remarkably fast speed for transfer of data online. One terabyte (TB) contains 1,000 gigabytes (GB). Most home connections are based on megabits per second (Mbps). A 1 GBPS internet connection is 10 times faster than Mbps connectivity and equal to at least 1,000 Mbps.

What 319 terabytes per second mean: Forget downloading Netflix's whole catalogue. This speed is too quick for even the platform's vast offerings, which could download everything as soon you as tap the download button. With the previous record of 178 Tbps, all of Netflix could be downloaded in less than a second. You can only imagine the speeds!

319 Tbps is an extraordinary speed for internet. It means that 57,000 full-length films can be downloaded in less than a second. This is just in theory. In practice, no single user would be able to download 57,000 films in one go per second.

A 2020 report claims that the fastest mobile broadband speed recorded in the world is 100 Mbps - in South Korea. The same report claimed that Singapore has the fastest fixed-line broadband speed with a whopping 2015 Mbps!

Hong Kong and Romania came in close with speeds of 210.73 Mbps and 194.47 Mbps respectively. Internet speed in India is rather unimpressive with 38.19 Mbps for fixed broadband and 12.16 Mbps for mobile connections, the same report added.

Me and a friend are having a debate. World's fastest internet speed is 319 TBPS. I don't think the Xbox series X can download let's say cyberpunk 2077 in half a second even if I somehow hooked it up to that monster of a router because of hardware limitations. My friend says it can. That the hardware is good enough for that. Can anyone give us a definitive answer?

If you thought your internet speeds were bad or too slow let us tell you about the fastest internet in the world to make you feel worse. Researchers at University College London have set a new world record for the fastest internet in the world at 178 terabits per second (Tbps). That's 178,000 Gbps.

To tap into such insane speeds, UCL researchers applied higher range of wavelengths instead of the standard optic fibre optics and used newer amplified technology to boost the signal farther while amplifying it.

The current normal infrastructure that's in place for the internet we use, uses a bandwidth of 4.5THz. A new 9THz commercial bandwidth has just shown up in some markets. This super-fast internet uses a 16.8THz bandwidth to get that 128Tbps speed.

With speeds like this, one can only assume that all of it is a rather expensive process? Apparently not. According to UCL, upgrading these amplifiers costs only a fraction of what it costs to install fibre optic cables.

Even though the speeds are capable of transmitting 150 HD movies in just one second, China aims to use the network capacity for national education and research as well as to support its 5G networks and connected electric vehicles whose usage is on the rise in the country.

High-speed serial transceivers quickly became a foundational FPGA component when they appeared more than 20 years ago and have grown increasingly important as their bandwidth has exploded. These high-speed transceiver designs are sufficiently flexible and configurable to directly implement a very wide variety of standard digital serial communications protocols including Ethernet, PCI Express (PCIe), Compute Express Link (CXL), serial digital interface (SDI), and so on. Intel has long had a leadership position in the development of high-speed serial transceivers, as shown in Figure 1.

Figure 1 shows that high-speed transceiver data rates have risen from 10 Gbps at the 40 nm process node to 116 Gbps with the most advanced Intel process node for FPGAs, and Intel has already demonstrated a 224 Gbps high-speed transceiver test chip, which signals where FPGA transceiver technology is headed.

Each F-tile transceiver chiplet adds 20 high-speed transceiver channels to the FPGA. Of the 20 high-speed transceivers on each F-tile, there are four FHT transceivers, each capable of running as fast as 116 Gbps using PAM4 modulation, and there are twelve FGT transceivers, each capable of running at 58.125 Gbps using PAM4 modulation. In aggregate, these 20 high-speed transceivers deliver more than 700 Gbps of data bandwidth. For Intel Agilex I-Series and M-Series FPGAs with a maximum of four F-tiles, the total high-speed serial bandwidth exceeds 2.4 Tbps. Intel Agilex I-Series FPGAs are available with as many as six F-tiles, which support a maximum aggregate bandwidth of 4.32 Tbpsin one FPGA!

They have successfully transferred data at a speed of 319 terabits per second. With that kind of broadband speed you can download 57,000 full-length movies in 1 second or the entire Spotify library in under 3 seconds.

Secure the fastest speeds, from 500 Gbps to 1 Tbps, with service installation in as little as 10 days at 3 million nationwide fiber-lit business locations, with more coming online every day.

AT&T Dedicated Internet access is perfect for businesses that require the fastest speeds available and protection from outages with world-class Service Level Agreements (SLAs) supported by 24/7 active monitoring. You can expect top performance for high-definition video conferencing, phone calls over the internet (VoIP), and crucial business activities that depend on a fast, reliable, dedicated internet connection.

Symmetric speed means that upload and download speeds are the same, unlike asymmetric, where download speeds are traditionally faster than upload speeds. Symmetric speeds are crucial for applications that send and receive large amounts of data, such as high-definition video conferencing, multiple broadcasts or conferences which run simultaneously, file hosting and uploads, and large data set transmission between business locations.

Dedicated internet service is an unshared connection where each customer has their own dedicated port, giving you more speed and control. AT&T Dedicated Internet comes with strong Service Level Agreements (SLAs) that are supported by 24/7 active monitoring. Even during peak usage times, AT&T Dedicated Internet access delivers the same outstanding experience. Shared internet uses a shared connection, allowing multiple customers to use the same bandwidth at the same time, which can impact speed and performance.

Hyderabad: While we are still struggling with streaming our favourite Netflix show, Japanese researchers have successfully transferred data at a speed of 319 terabit per second. This is more than double the previous record of 178 Tbps. To give a context, the average Internet speed in India stands at 50 Mbps. While 1,000 Mbps is equal to 1 Gbps, 1 Tbps is equal to 1,000 Gbps. Meanwhile, NASAs backbone runs at 400 Gbps speed.

Using a new type of optical fiber, researchers at the Technical University of Denmark (DTU) have transmitted data over a single optical fiber at a speed of 43 terabits per second (43 Tbps) to set a new data transmission world record. This beats the previous record of 32 Tbps set by researchers at Germany's Karlsruhe Institute of Technology.

Although the High-Speed Optical Communications (HSOC) team at DTU Fotonik had previously achieved the world's highest combined data transmission speed of 1 petabit per second (Pbps) using hundreds of lasers, the team's 43 Tbps record was achieved with a single laser in the transmitter, making it much more energy efficient.

The team says the quest for faster and faster data transmission speeds will help in the development of technology that will accommodate the ever-increasing growth of internet traffic, which it estimates is growing by 40 to 50 percent annually, simultaneously increasing bandwidth while cutting energy consumption.

FABRIC is building a novel network infrastructure geared toward prototyping ideas for the future internet at scale. FABRIC currently has over 800 users on the system performing cutting-edge experiments and at-scale research in the areas of networking, cybersecurity, distributed computing, storage, virtual reality, 5G, machine learning, and science applications. Users now have the capability to test how their experiments run at much higher speeds, including developing endpoints that can source and sink, and protocols that can transfer data at up to 1.2Tbps over continental distances. While previously federated facilities were connected to FABRIC at 100Gbps, with TeraCore becoming operational, the team is also now working to connect several federated facilities at 400Gbps.

The TeraCore ring was built using spectrum from the fiber footprint of ESnet6, the cutting-edge, high-speed network operated by the Energy Sciences Network (ESnet) that connects the tens of thousands of scientific researchers at Department of Energy laboratories, user facilities, and scientific instruments, as well as research and education facilities worldwide. e24fc04721

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