Showing posts with label Internet service provider. Show all posts
Showing posts with label Internet service provider. Show all posts

Saturday, July 14, 2012

Unbreakable: Mesh networks are in your smartphone's future

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Micha Benoliel's company, Open Garden, makes a mesh networking utility for Android smartphones and for Windows and Mac laptops (support for iOS is coming). It's a free app that turns your device into a mobile hot spot. No matter how you're connected to the Net (Wi-Fi or cellular), it makes that connection shareable (over Bluetooth) to other Open Garden users. Likewise, if you're running the product but don't have a connection to the Net, and you're near a user who does, this service seamlessly gets you online.
Benoliel says that, for the most part, carriers and ISPs welcome technologies that improve bandwidth for customers and that also lower power requirements (connecting to a nearby hot spot over Bluetooth takes a lot less power than linking to a cell tower). "The only way to improve the wireless networks is to increase the density of microcells or hot spots. I think carriers really understand that," he says. His pitch: "We turn every device into a hot spot... and we improve the network itself."
Sri Srikrishna was the founding CTO of the mesh networking company Tropos (recently acquired by ABB), and is now working on bringing mesh technologies to populations where today's standard wireless networking technologies are insufficient, or are blocked. See his paper, "SocialMesh: Can Networks of Meshed Smartphones Ensure Public Access to Twitter During an Attack?"
Srikrisha says it's time to do two things for people who don't have reliable means to connect to the global net. First of all, we can make better, more frequency-agile radios. Second: Mesh them together.

Source:Internet
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Monday, August 1, 2011

Microwave-Link-Design ppt

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Link : Microwave-Link-Design ppt

This ppt describes the Microwave Link design basics for Transmission Engineers.


Microwave Link Networks

A microwave link is a communications system that uses a beam of radio waves in the microwave frequency range to transmit information between two fixed locations on the earth. They are crucial to many forms of communication and impact a broad range of industries. Broadcasters use microwave links to send programs from the studio to the transmitter location, which might be miles away. Microwave links carry cellular telephone calls between cell sites. Wireless Internet service providers use microwave links to provide their clients with high-speed Internet access without the need for cable connections. Telephone companies transmit calls between switching centers over microwave links, although fairly recently they have been largely supplanted by fiber-optic cables. Companies and government agencies use them to provide communications networks between nearby facilities within an organization, such as a company with several buildings within a city.
One of the reasons microwave links are so adaptable is that they are broadband. That means they can move large amounts of information at high speeds. Another important quality of microwave links is that they require no equipment or facilities between the two terminal points, so installing a microwave link is often faster and less costly than a cable connection. Finally, they can be used almost anywhere, as long as the distance to be spanned is within the operating range of the equipment and there is clear path (that is, no solid obstacles) between the locations. Microwaves are also able to penetrate rain, fog, and snow, which means bad weather doesn’t disrupt transmission.
A simplified rendering of a microwave link. A microwave link is a communications system that uses a beam of radio waves in the microwave frequency range to transmit information between two fixed locations on the earth.
 A simplified rendering of a microwave link. A microwave link is a communications system that uses a beam of radio waves in the microwave frequency range to transmit information between two fixed locations on the earth.
A simple one-way microwave link includes four major elements: a transmitter, a receiver, transmission lines, and antennas. These basic components exist in every radio communications system, including cellular telephones, two-way radios, wireless networks, and commercial broadcasting. But the technology used in microwave links differs markedly from that used at the lower frequencies (longer wavelengths) in the radio spectrum. Techniques and components that work well at low frequencies are not useable at the higher frequencies (shorter wavelengths) used in microwave links. For example, ordinary wires and cables function poorly as conductors of microwave signals. On the other hand, microwave frequencies allow engineers to take advantage of certain principles that are impractical to apply at lower frequencies. One example is the use of a parabolic or “dish” antenna to focus a microwave radio beam. Such antennas can be designed to operate at much lower frequencies, but they would be too large to be economical for most purposes.
In a microwave link the transmitter produces a microwave signal that carries the information to be communicated. That information—the input—can be anything capable of being sent by electronic means, such as a telephone call, television or radio programs, text, moving or still images, web pages, or a combination of those media.
The transmitter has two fundamental jobs: generating microwave energy at the required frequency and power level, and modulating it with the input signal so that it conveys meaningful information. Modulation is accomplished by varying some characteristic of the energy in response to the transmitter’s input. Flashing a light to transmit a message in Morse Code is an example of modulation. The differing lengths of the flashes (the dots and dashes), and the intervals of darkness between them, convey the information—in this case a text message.
The second integral part of a microwave link is a transmission line. This line carries the signal from the transmitter to the antenna and, at the receiving end of the link, from the antenna to the receiver. In electrical engineering, a transmission line is anything that conducts current from one point to another. Lamp cord, power lines, telephone wires and speaker cable are common transmission lines. But at microwave frequencies, those media excessively weaken the signal. In their place, engineers use coaxial cables and, especially, hollow pipes called waveguides.
The third part of the microwave system is the antennas. On the transmitting end, the antenna emits the microwave signal from the transmission line into free space. “Free space” is the electrical engineer’s term for the emptiness or void between the transmitting and receiving antennas. It is not the same thing as “the atmosphere,” because air is not necessary for any type of radio transmission (which is why radio works in the vacuum of outer space). At the receiver site, an antenna pointed toward the transmitting station collects the signal energy and feeds it into the transmission line for processing by the receiver.
Antennas used in microwave links are highly directional, which means they tightly focus the transmitted energy, and receive energy mainly from one specific direction. This contrasts with antennas used in many other communications systems, such as broadcasting. By directing the transmitter’s energy where it's needed—toward the receiver—and by concentrating the received signal, this characteristic of microwave antennas allows communication over long distances using small amounts of power.
Between the link’s antennas lies another vital element of the microwave link—the path taken by the signal through the earth’s atmosphere. A clear path is critical to the microwave link’s success. Since microwaves travel in essentially straight lines, man-made obstacles (including possible future construction) that might block the signal must either be overcome by tall antenna structures or avoided altogether. Natural obstacles also exist. Flat terrain can create undesirable reflections, precipitation can absorb or scatter some of the microwave energy, and the emergence of foliage in the spring can weaken a marginally strong signal, which had been adequate when the trees were bare in the winter. Engineers must take all the existing and potential problems into account when designing a microwave link.
At the end of the link is the final component, the receiver. Here, information from the microwave signal is extracted and made available in its original form. To accomplish this, the receiver must demodulate the signal to separate the information from the microwave energy that carries it. The receiver must be capable of detecting very small amounts of microwave energy, because the signal loses much of its strength on its journey.
This entire process takes place at close to the speed of light, so transmission is virtually instantaneous even across long distances. With all of their advantages, microwave links are certain to be important building blocks of the world’s communications infrastructure for years to come.
1+1 Protected Microwave Radio Link Block Diagram
1+1 Protected Microwave Radio Link Block Diagram

Link Block Diagram

This diagram is from an NEC 500 series microwave link system (circa 1983) and shows one path. The "return direction" block is the reverse of that detailed in the main diagram.

Regulatory and Licensing

Each country has a varying requirement for the licensing of microwave radio links. In most cases this license only addresses the transmitter, but in the same instance, it offers regulatory protection to any inteference that may affect the microwave receiver.
License costs are usually linked with the size of the spectrum occupied by the transmitter signal - and are often directly influenced by some of the spectrum lease costs realized by the local regulator, eg FCC, ACMA, PTT's etc.
A safety aspect of microwave radio EMR radiation is also defined by standards and guidelines, and often human exposure 'exclusion' zones exist around the front of microwave dish antennas, horns and dielectric antennas. Personnel safety must also be considered around open waveguide ends and waveguide switches with unterminated ports. Refer to other material at the GHN on EMR Safety.

Frequency Planning

Sample extract of  micrwave band frequency planning
Sample extract of micrwave band frequency planning
In the older FDM microwave radio link systems, only a single pair of frequencies were allocate to the whole link network, with an alternating polarisation isolation arrangement from more distant stations in the network. This meant that at a single microwave repeater station, the link transmitters operate on the same frequency, but with antennas pointed in different directions, and with opposite antenna polarisation.

Link Planning

The design and construction of a microwave radio link network is based on a numner of factors. These include:
  • Distance between microwave radio terminals
  • Terrain properties, eg bodies of water, cliffs, forests, snow
  • Frequency of operation, often governed by licensing costs, frequency availability, planned distances and even suspectibility to rain fading.
  • Fading, dispersion and multipath distortion.
  • Size of antennas, feedline properties, need for towers and masts.
  • Council and community development permissions governing visual intrusions.
  • Cost of equipment and cost benefit analysis including equipment maintenance.
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Saturday, January 8, 2011

Business Development Manager Required-Renowned Telecom Company-Delhi

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Job Opening : Business Development Manager
Job Description:
Location Delhi
Reports to v Head-VPN and Leased Line Sales
Key Result Areas v Responsible for achieving VPN and LL sales target in the assigned regionv Responsible to train field sales force on VPNv Competition Analysis
Responsibilities v Achieve VPN & LL sales in assigned regionv Responsible to prevent revenue leakagev Ensure upselling in existing customers
Capabilities and competences v Experience and Understanding of Data solutionsv Sales aptitudev Aggressive v Result-Oriented
Experience v 10-15 years in selling VPN,LL etc in Telcos or ISPs like SIFY,GTL,HCL Infinet
Qualifications v B.Tech/MBA

In case you have any queries please revert back with your updated resume in word format at denovo.hr4@gmail.com mentioning the following details:
è Total years of experience
è Relevant experience
è Current Company
è Current CTC
è Expected CTC (Please Note the client offers a Salary Hike of 25% of your current salary)
è Current Location
Regards,
HR Consultant,
Denovo.hr4@gmail.com

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Sunday, December 20, 2009

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Location: Mumbai
Designation: BDM - Domestic Data
Age: 33-38
Exp.: 10-15yrs
Qualification: BE/MBA/PGDBA
Job Profile:
"BUSINESS DEVELOPMENT - VPN ,PPU & INTL.MPLS
The role has to ensure increased sales of Reliance’s VPN & Internet bandwidth to Enterprise Customers in India , timely meeting of the customer commitments through interaction with Business Solutions Group, Product, Service Delivery, Service Assurance other departments (backend) ; and resolutions of issues after links are commissioned.
To drive and monitor Sales performance in all the Circles in order to ensure that targeted figures are achieved across various streams.
Meeting customer expectations and commitments by ensuring timely project implementation in spite of infrastructure problems leading to customer engagement.
Managing internal customers (e.g. internal company support from other departments & group companies like Flag Telecom.
Staying updated on customer’s technology and enhancement of domain knowledge of team members across circles.
Incase of customer complaints, interacting with the customer to find out the pain areas and ways to resolve them, specifically if concerning sales; providing feedback to other functions involved."

Criteria: "BE & or MBA with 15 -20 Years in Sales in Telecom, ISP, Broadband,Office Automation, IT.
Experience in handling large accounts Knowledge of IT and Telecom.
Technology savvy and updated with latest trends in Broadband and Telecom"

Conditions: Education criteria should be met, also there should not be a lot of Frequent Job Changes

Functional Reporting: Sales Head - VPN & LL

Kindly go through all the above criteria and if you ar having the same experience then plz send your Updated CV in reply of same mail ASAP.



Treat this as most urgent opening.

send cv at :career.universal@gmail.com


Cheers,
Twara Dholakia
HR Executive
Universal Placement

099250 37783
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Friday, August 21, 2009

Privacy Policy

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Our Privacy Policy
As a fellow Internet user myself, I totally respect your online privacy. So it goes without saying that I'm fully committed to safeguarding your online privacy while you're here at the http://m2vtelecom.blogspot.com/ (m2vtelecom resource center) website.

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