Showing posts with label MIMO. Show all posts
Showing posts with label MIMO. Show all posts

Thursday, December 29, 2011

The Next Decade of Bandwidth - Part V

Wireless is the bandwidth service that gets most of the press these days, but there are big developments afoot in the wired world as well. We’ll wrap up our look into the next decade of bandwidth with what’s going on with copper and fiber optic services.

The future of computing is in the cloud...It’s no surprise that fiber optic networks are expanding. Some of this expansion is prompted by American Reinvestment and Recovery Act that appropriated $7.2 billion to expand broadband access across the country. Rural areas that have been largely ignored by commercial interests are especially targeted. With funds available for middle-mile fiber runs, competitive carriers are taking advantage of the opportunity to expand their networks.

While fiber is being trenched through the countryside to provide broadband delivery to Wireless Internet Service Providers (WISPs) that serve sparsely populated areas, even more fiber is being routed through metropolitan areas to hookup businesses of all sizes. Government incentives aren’t needed here. Businesses hungry for increased bandwidth either foot the bill for hookups to metropolitan fiber networks or commit to service levels that justify carriers to “light” their buildings for fiber service.

Why the interest in fiber optic connections? It’s not just mobile bandwidth that’s straining at the limits. T1 lines may have been all the bandwidth a small or even medium size business needed to handle email, general web browsing and communication with its website servers hosted elsewhere. Now, 1.5 Mbps seems a bit quaint and inadequate for all the smallest operations. What drives business now is cloud connections, Software as a Service, video conferencing, hosted VoIP and other bandwidth demanding applications.

The transition from 3G to 4G wireless also means that cellular carriers themselves are strained for fast enough backhaul connections. T1 lines works great to connect towers that handled voice calls. When users expect 10 or 15 Mbps of broadband service, fiber optics look like the ideal solution. The cost of construction, once a show stopper, becomes another part of the upgrade investment that’s paid once and offers almost unlimited upgrades for future needs.

Cloud computing is a major attraction for many businesses who find that pay-as-you-go is much easier to justify than requisitions for million dollar data center improvements. No need for racks and racks of servers, the environmentally controlled building to house them, the backup power generators, or the round-the-clock technical staff to keep everything running smoothly. Outsourcing that to a cloud service provider gets rid of those headaches, but adds a new one. How to you connect to the cloud? Low bandwidth, high latency connections will bring your operations to a grinding halt. What you need now is high bandwidth along with low latency, jitter and packet loss as a backbone to your virtual servers on the other side of the country. That means fiber optic lines and probably two of them for redundancy.

Fiber technology hasn’t been static during this expansion. Until recently you had a choice of SONET services from OC3 to OC12 and perhaps OC48. That was it. Now, Ethernet over Fiber is coming on strong as a direct competitor. Carrier Ethernet more closely matches the LAN networks that feed it. It is more scalable to meet changing business needs. Best of all, Ethernet services tend to cost less, often considerably less, than equivalent SONET fiber optic services.

But, wait! The era of copper is far from over. Just when carriers were thinking about decommissioning their twisted pair copper to let it corrode in the ground or be sold for scrap, Bonded T1 and Ethernet over Copper gain favor as business bandwidth options. While a single T1 line may be too constrained for many uses, multiple T1 lines can be bonded into a single larger bandwidth service up to 10 or 12 Mbps. Ethernet over Copper (EoC) technology uses the same twisted pair bundles as bonded T1, but a more advanced modulation scheme. EoC bandwidth is distance sensitive, but can easily deliver 10 or 20 Mbps to most businesses and 30, 50 or even 100 Mbps for short runs. Continuing development incorporating wireless techniques such as MIMO (Multiple Input, Multiple Output) for crosstalk cancelation is pushing the limits of copper into the hundreds of Mbps and even to a fiber-like Gigabit per second bandwidth.

The next decade of bandwidth is likely to be dominated by massive fiber optic build-outs for fixed locations, such as office and industrial parks, along with copper solutions to bridge the gaps where fiber doesn’t yet connect. Wireless is clearly headed for a common 4G LTE nationwide infrastructure. Compatibility will be built into portable and mobile devices, perhaps as prolifically as WiFi is now. There may be some surprises in store, such long range and interconnected WiFi hotspots or whitespace transmitters as wireless competitors, high bandwidth satellites covering rural areas better than spotty fiber and cable construction, and the development of much higher microwave frequencies (60 GHz and above) and even infrared mesh networks as new service options.

I hope you’ve enjoyed this speculative look into what’s likely to happen in the next 10 years or so, as our appetite for higher bandwidth Internet and private network connections demand satisfaction. There are many good options available right now to support your current business needs. You may not even be aware of how much development has been going on in your area to increase service levels and reduce costs. This would be an excellent time to get competitive options and quotes for business bandwidth services.

See what's available now in the way of T-carrier and Ethernet copper, SONET and Ethernet fiber, fixed wireless and Hybrid Fiber Cable (HFC). Get instant bandwidth pricing up to 1 Gbps and fast quotes on other services.

Click to check pricing and features or get support from a Telarus product specialist.


This has been a 5 part series on bandwidth. If you’ve missed any part of it, you can access Part I, Part II, Part III, or Part IV to catch up at any time.



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Monday, December 19, 2011

Copper Bandwidth Connections Push 1 Gbps

Just when you think they’ve wrung all of the speed possible on ordinary twisted pair telephone wire, clever engineering demonstrates that we haven’t hit a bandwidth ceiling yet. Would you believe 1 Gbps copper business service?

Ethernet over Copper speeds and availability are increasing, while prices are dropping. Check now for your business.It’s not available in your office park yet, but it’s on the way. Chinese networking and telecommunications company, Huawei, has a prototype Giga DSL system that can deliver a combined rate of 1 Gbps line speed within 100 meters of a remote terminal (RT) cabinet. It scales down to 500 Mbps if you can connect within 200 meters of the cabinet.

This follows another Huawei project called SuperMIMO that uses four twisted copper pairs to deliver 700 Mbps over 400 meters. You might recognize MIMO as the WiFi 802.3n antenna technology used to extend range using multiple antennas for both transmitter and receiver. MIMO stands for Multiple Input Multiple Output. The ideas is that radio waves bounce around and interfere with each other and themselves in an effect called multipath distortion. With more than one antenna and some intelligence in the system, you can sort out the wave patterns and recreate a clean signal.

So what does wireless transmission have to do with copper wires buried in the ground? For business telecommunications, such as multi-line telephone, T1 and Ethernet over Copper, the twisted pair lines are not installed individually. Instead, collections of them run together in binder cables with 50 pair or more. The twisted conductors cancel out most electromagnetic interference for low speed transmission, such as analog phone and dial-up Internet access. Higher speed signals, such as EoC or T1, can transfer to other pairs in the cable creating crosstalk interference. This is where MIMO can reduce that interference between wired paths in the cable just like dealing with multiple paths through the air.

Other telecom equipment vendors have been active in this field as well. Alcatel-Lucent has their own approach called DSL Phantom Mode that delivers 300 Mbps over two copper pairs. Over longer distances up to 1 km, it can deliver 100 Mbps. With 1 km spans, this system would work well for Ethernet over Copper in business districts and industrial parks.

Alcatel-Lucent’s breakthrough is something called a phantom circuit. These circuits were used in the early days of wired communications to transmit more telegraph signals or telephone calls. The principle is that two phone lines, consisting of one twisted pair each, will carry two separate telephone calls. But if you connect a circuit between them, that can be used as to carry a third telephone call or telegraph signal. Interference is eliminated by using transformers on each end of the lines and connecting the third circuit between center taps on the transformers. Since the lines are balanced, they don’t notice this third or phantom circuit riding along on the same copper.

Alcatel-Lucent also uses bonded copper pair to increase bandwidth carrying capacity and VDSL2 vectoring to cancel the cross talk between multiple lines in the same bundle. Like MIMO, vectoring employs digital signal processing to analyze the effect of interference on signals among copper pairs on a symbol by symbol basis. This is something that was out of the question before high speed DSP became affordable. By throwing enough mathematics at the signal waveforms, it is now possible to make finer and finer corrections to maximize throughput of any wired or wireless transmission system.

What’s driving such a fury of investigative work into leveraging century old copper connected to telephone company central offices? Bandwidth demand is ramping up exponentially right along with the processing and storage needs of big data. The move from local data centers to the cloud also means that faster network lines are needed for WAN as well as LAN connections. Fiber speeds are increasing, too. But fiber only reaches 75% of business locations, at most, and is expensive and time consuming to install. If existing copper can be made to meet the increasing bandwidth demand, businesses can rapidly increase their MAN and WAN network speeds using connections they have now.

Are you feeling pressed for speed on your network connections? Both copper and fiber solutions are available now that weren’t in place even a short time ago. Check Ethernet over Copper and Fiber bandwidth prices now and see what’s available for your business location.

Click to check pricing and features or get support from a Telarus product specialist.




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Sunday, October 24, 2010

Increasing Bandwidth By Pair Bonding

If you have a bandwidth service, say a T1 line, and are starting to run out of bandwidth, then what is your next logical move? You could bring in a higher level service such as DS3, but that could prove tricky. Your T1 line is delivered over twisted pair copper. DS3 is generally brought in using fiber optic cable. Also, there is a tremendous jump in bandwidth and expense from a T1 line at 1.5 Mbps to a DS3 connection at 45 Mbps. Are there other options?

Pair bonding to increase bandwidth. Click to inquire.Perhaps the easiest move up is to simply add another T1 line if all you need is incrementally larger bandwidth. If you get both your lines from one carrier, they can do what is called “pair bonding” to make the two lines act like they are one larger line. For instance, two bonded T1 lines give you 3 Mbps. That goes to 4.5 Mbps with 3 lines and 6 Mbps with 4 lines. A practical limit to bonding for T1 is somewhere around 10 to 12 Mbps.

There is also another form of pair bonding you should be aware of. Instead of bonding T1 lines with their DS1 signals, dry copper pair can be leased with no signals of any type. They’re just plain copper wires running from a central office to a business location. Using multiple copper pair with special terminal equipment installed at each end, Ethernet over Copper or EoC can be provided by competitive carriers.

Ethernet over Copper uses a completely different form of modulation to transport the digital signals from provider to customer. Advanced techniques such as MIMO (Multiple Input Multiple Output) may be employed to reduce interference between signals on pairs bundled in the same cable. This allows more bandwidth to be transmitted using fewer wires than would otherwise be required.

The result is that Ethernet over Copper can transport higher bandwidth services using pair bonding. You can typically get 3 Mbps to 10 Mbps from EoC services. In some cases, that can be increased to as much as 50 Mbps. The higher the bandwidth, the closer you have to be located to the telco office. That’s because the techniques used to increase bandwidth are affected by distance. The signal fades as you get farther away from the source.

T1 lines don’t have this distance restriction, as the technology was designed to incorporate regenerators every mile or so to boost the signal. If you are located too far from the carrier’s point of presence to get Ethernet over Copper, you may qualify for Ethernet over DS1. That’s a technique that uses the T1 line protocol to transport Ethernet. You are essentially getting an Ethernet signal delivered using one or more T1 lines. In this case T1 pair bonding can be used to increase bandwidth.

Will some form of pair bonding get you the business bandwidth you need at a reasonable price? Find out what business bandwidth services are available for your location now.

Click to check pricing and features or get support from a Telarus product specialist.




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