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| Alexander Graham Bell constructed this prototype telephone in 1875. The device consists of a coil of wire, a magnetic arm and a taut membrane. Any sound causes the membrane, and hence the magnetic arm, to vibrate. The movement of the magnet induces a fluctuating electric current in the coil. This electrical signal can be reconverted into sound by an identical apparatus at the other end of the circuit. |
Alexander Graham Bell might easily have been content with the success of his telephone invention. His many laboratory notebooks demonstrate, however, that he was driven by a genuine and rare intellectual curiosity that kept him regularly searching, striving, and wanting always to learn and to create. He would continue to test out new ideas through a long and productive life. He would explore the realm of communications as well as engage in a great variety of scientific activities involving kites, airplanes, tetrahedral structures, sheep-breeding, artificial respiration, desalinization and water distillation, and hydrofoils.
With the enormous technical and later financial success of his telephone invention, Alexander Graham Bell's future was secure, and he was able to arrange his life so that he could devote himself to his scientific interests. Toward this end, in 1881, he used the $10,000 award for winning France's Volta Prize to set up the Volta Laboratory in Washington, D.C. A believer in scientific teamwork, Bell worked with two associates, his cousin Chichester Bell and Charles Sumner Tainter, at the Volta Laboratory. Their experiments soon produced such major improvements in Thomas Edison's phonograph that it became commercially viable. After 1885, when he first visited Nova Scotia, Bell set up another laboratory there at his estate, Beinn Bhreagh (pronounced Ben Vreeah), near Baddeck, where he would assemble other teams of bright young engineers to pursue new and exciting ideas.
Among one of his first innovations after the telephone was the "PHOTOPHONE," a device that enabled sound to be transmitted on a beam of light. Bell and his assistant, Charles Sumner Tainter, developed the photophone using a sensitive selenium crystal and a mirror that would vibrate in response to a sound. In 1881, they successfully sent a photophone message over 200 yards from one building to another. Bell regarded the photophone as "the greatest invention I have ever made; greater than the telephone." Alexander Graham Bell's invention reveals the principle upon which today's LASER and FIBEROPTIC communication systems are founded, though it would take the development of several modern technologies to realize it fully.
Alexander Graham Bell |
Over the years, Alexander Graham Bell's curiosity would lead him to speculate on the nature of heredity, first among the deaf and later with sheep born with genetic irregularities. His sheep-breeding experiments at Beinn Bhreagh sought to increase the numbers of twin and triplet births. Bell was also willing to attempt inventing under the pressure of daily events, and in 1881 he hastily constructed an electromagnetic device called an induction balance to try and locate a bullet lodged in President Garfield after an assassin had shot him. He later improved this and produced a device called a telephone probe, which would make a telephone receiver click when it touched metal. That same year, Bell's newborn son, Edward, died from respiratory problems, and Bell responded to that tragedy by designing a metal vacuum jacket that would facilitate breathing. This apparatus was a forerunner of the iron lung used in the 1950s to aid polio victims. In addition to inventing the audiometer to detect minor hearing problems and conducting experiments with what today are called energy recycling and alternative fuels, Bell also worked on methods of removing salt from seawater.
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In 1919, after the government released its control of all patents, the Radio Corporation of America (RCA) was established with the purpose of distributing control of the radio patents that had been restricted during the war.
On November 2, 1920, Westinghouse's KDKA-Pittsburgh broadcast the Harding-Cox election returns and began a daily schedule of radio programs.
The first ship-to-shore two way radio conversation occurred in 1922, between Deal Beach, New Jersey, and the S.S. America, 400 miles at sea. However, it was not until 1929 that high seas public radiotelephone service was inaugurated. At that time telephone contact could be made only with ships within 1,500 miles of shore. Today there is the ability to telephone nearly every large ship wherever it may be on the globe.
Commercial radiotelephony linking North America with Europe was opened in 1927, and with South America three years later. In 1935 the first telephone call was made around the world, using a combination of wire and radio circuits.
Radio technology has grown significantly since its early development. In 1947, Bell Labs scientists invented the transister. In 1954, a then small Japanese company called Sony introduced the transistor radio.
Radio can refer to either the electronic appliance that we listen with or the content listened to. However, it all started with the discovery of "radio waves" - electromagnetic waves that have the capacity to transmit music, speech, pictures and other data invisibly through the air. Many devices work by using electromagnetic waves including: radio, microwaves, cordless phones, remote controlled toys, television broadcasts, and more.
In 1866, Mahlon loomis, an American dentist, successfully demonstrated "wireless telegraphy." Loomis was able to make a meter connected to one kite cause another one to move, marking the first known instance of wireless aerial communication.
Wireless signals proved effective in communication for rescue work when a sea disaster occurred. A number of ocean liners installed wireless equipment. In 1899 the United States Army established wireless communications with a lightship off Fire Island, New York. Two years later the Navy adopted a wireless system. Up to then, the Navy had been using visual signaling and homing pigeons for communication.
In 1901, radiotelegraph service was instituted between five Hawaiian Islands. By 1903, a Marconi station located in Wellfleet, Massachusetts, carried an exchange or greetings between President Theodore Roosevelt and King Edward VII. In 1905 the naval battle of Port Arthur in the Russo-Japanese war was reported by wireless, and in 1906 the U.S. Weather Bureau experimented with radiotelegraphy to speed notice of weather conditions.
In 1909, Robert E. Peary, arctic explorer, radiotelegraphed: "I found the Pole". In 1910 Marconi opened regular American-European radiotelegraph service, which several months later, enabled an escaped British murderer to be apprehended on the high seas. In 1912, the first transpacific radiotelegraph service linked San Francisco with Hawaii.
The result of Lee DeForest's work was the invention of amplitude-modulated or AM radio that allowed for a multitude of radio stations. The earlier spark-gap transmitters did not allow for this.
Of course, as with a rating book, almost anyone can find a place where they rank higher than someone else in something. Such is the case with the inventors of Radio and the first Radio stations. Was the inventor of Radio the person who discovered that electromagnetic waves could be sent through the air, or the person
who actually sent them? Was it the person who sent signals the farthest, or who sent the first with voice? Was the first station the first one to be licensed, or was it the first licensed experimental station? The answers aren't easy.
Wireless itself is relatively broad. Within the wireless category are many subcategories and industries of which Radio broadcasting is just one, as is wireless telegraph, wireless ship-to-shore communication, and so on.
To go back to the development of wireless we must first track events leading up to the discovery of electricity. Though some documentation goes further back, electricity as a science began in 1600 when Dr. William Gilbert, who was Queen Elizabeth's personal physician, invented the electroscope which detected electromagnetic energy in the body. He coined the word electricity. From that point forward many people had their hand in the development of electricity. Sir Thomas Browne, Benjamin Franklin, Alessandro Volta and Georg Simon Ohm among others. For brevitys sake, we'll look at wireless after electricity was invented.
In 1865 a Washington, D.C. dentist, Dr. Mahlon Loomis, explored wireless. He developed a method of transmitting and receiving messages using the Earth's atmosphere as a conductor. Loomis sent up kites 18 miles apart from two West Virginia mountaintops. The kites were covered with a copper screen and were (1)connected to the ground with copper wires. The wire from each kite string was connected to one side of a galvanometer; the other side was held by Loomis, who was ready to make a connection to a coil buried in the Earth. The receiving station connection, between the meter and the coil buried in the Earth, was always closed, and whenever the circuit was closed at the transmitting end, the galvanometer at the receiving station actually dipped. Congress then awarded Loomis a $50,000 research grant.
In 1879 David Edward Hughes discovered that when a stick of wood covered with powdered copper was placed in an electrical circuit, the copper would adhere when a spark was made. In 1885 Sir William H. Peerce and A.W. Heaviside sent signals to one another at a distance of 1,000 yards with two parallel telegraph lines and an unwired telephone receiver in the middle. This was the discovery of induction, or crosstalk.
The real experiments leading to Radios discovery started with Heinrich Hertz in 1887. Some call him the father of Radio because his experiments created interest by Marconi. Radio waves were commonly called Hertzian Waves in the early days. Hertz studied Maxwell's theories and in attempting to develop further data, actually set up the first spark transmitter and receiver. The transmitter consisted of a Leyden jar and a coil of wire, the ends of which were left open so that a small gap was formed. For the receiver he used a similar coil at the opposite end of the room. When the jar was charged, sparks flew across the gap and were received on the other end. Hertz then measured the velocity of the waves and found they were the same as light, 186,000 miles per second.
In 1892 a French inventor, Edouard Branly, created a tube containing loose zinc and silver filings, with contact plugs on each end. The shavings would stick together after the first spark was received; a method of separating them for the next signal was necessary. Popov, a Russian, came up with the idea of using a vibrator and the hammer of an electric bell to strike the tube and cause the filings to separate.
Tesla had come up with something different and superior to that of Hertz's original ideas. He developed a series of high frequency alternators producing frequencies up to 33,000 cycles per second (33,000 Hz). This, of course, was the forerunner to high frequency alternators used for continuous wave Radio communication. Tesla went on to build the Tesla coil, an air-core transformer with primary and secondary coils tuned to resonate a step-up transformer which converts low-voltage high current to high-voltage low current at high frequencies. It is used today in all Radios and televisions.
In 1892, a Kentucky farmer and inventor, Nathan Stubblefield, publicly demonstrated wireless. Not only did he broadcast signals, but he also was able to broadcast voice and music. He demonstrated wireless again in 1898 to a documented (by The St. Louis Dispatch) distance of 500 yards. He demonstrated a ship-to-shore broadcast on the Potomac River in Washington, D.C., on March 20, 1902, and received patent number 887,357 for wireless telephone on May 12, 1908. Stubblefield was so afraid that someone would steal his invention, he sheltered it from everyone. He had been offered $500,000 for his invention but turned it down because he felt it was worth more. Stubblefield envisioned the device in motorcars (as shown on his patent). Following another demonstration in Washington his "secret box" with his apparatus inside was stolen (documented February 13, 1912) and he believed his invention was copied. Nathan B. Stubblefield died of starvation and a pauper in Murray, Kentucky, after going into seclusion because of his failed attempts for acceptance.
In 1904 J. Ambrose Fleming developed his two-element (diode) valve (The Fleming Valve) while working for Marconi. Though significant, the invention was short-lived due to De Forest's invention of a three-element (triode) valve, which later became the audion tube, said to be the most significant invention in Radio. Unfortunately DeForest could not interest the public in buying stock in his company and he was forced to sell the rights to the American Telephone and Telegraph company for $500,000. The decision made by AT&T was thought to be foolish at the time, but later proved to be the investment that made the company.
On Christmas Eve in 1906 Fessenden delighted listeners up and down the East Coast by broadcasting voice and music from his transmitter at Brant Park, Massachusetts, using a high frequency alternator based on Teslas designs and principles. The program consisted of music from phonograph records, a violin solo, and a speech by the inventor. Fessendens program did not prove to be a pioneering effort, however. For several years Radio remained a communications medium devoted to sending and receiving messages. It proved especially valuable to the armed forces during World War I. The broadcasting potential was not realized until after the war, though David Sarnoff in 1916 envisioned the possibility of a Radio receiver in every home. (He later became head of the Radio Corporation of America and the National Broadcasting Company.) In 1907 G.W. Pickard discovered that minerals made an excellent detector which led to the invention of the crystal detector. It was not only effective but inexpensive which made the availability of wireless receivers more widespread.
In 1913 Edwin H. Armstrong (who much later invented FM Radio) created a way to increase the sensitivity of receivers. This regeneration system ended up in litigation with De Forest who claimed he was the inventor. Ultimately De Forest prevailed. De Forest also continued to perfect the audion tube he had sold to AT&T. It now had the ability to function as an oscillator (generator of high frequencies). This led to the oscillator circuit created by W.E. Hartley. The result was improved long-distance transmission of speech, the forerunner of Radio broadcasting.
The first commercial was claimed to be sent out over WEAF in New York City in 1922, however that is disputed because in KDKAs initial broadcasts announcers mentioned a record store in exchange for records to play on the air, as did KQW announcers in San Jose, California. (It's interesting to note that Westinghouse, which owned KDKA, was founded by George Westinghouse, the first owner of an electric company to employ the principles of alternating current. These principles were obtained through a relationship with Nikola Tesla who held the patent, and also had the patent on wireless transmission.)
But was KDKA the first station? Though its November 2, 1920 debut is considered the official start of Radio broadcasting, others were doing the same prior to KDKA. Earlier that same year, in Detroit, WWJ using call letters 8MK began regular broadcasts. And much earlier, in 1912, Charles David Herrold began regular, continuous broadcasts of music and information in San Jose. The amateur station was well-known around the Bay area. It eventually became KQW and then KCBS.
In 1913 the physics department at Iowa State University began wireless demonstrations and is documented by a newspaper article to have done one such demonstration at the Iowa State Fair in 1915. It became station 9YI and later WOI. With groundwork dating back to 1904, the University of Wisconsin in Madison experimented with voice and music transmission in 1917. Their calls were 9XM, and later WHA.
But what about Nathan Stubblefield who had demonstrated wireless in 1892? If you go to the town square in Murray, Kentucky, you'll find a statue of Stubblefield inscribed with the words "Murray, Kentucky, Birthplace of Radio" Could it be that a forward-thinking albeit eccentric farmer from Kentucky outwitted the intellects of Tesla, Marconi, Edison (who once worked on wireless experiments and also won a suit against Marconi for patent infringement) and others? You will recall that after being very protective of his proprietary knowledge, Stubblefield's apparatus was stolen following a demonstration in Washington, D.C. Could it have surfaced as someone else's invention? Documents prove his early demonstrations of an actual working wireless system to have occurred one year before Tesla's lectures about Radio which were prior to his working experiments. No one will ever know for sure. The Supreme Court ruled that Tesla is the father of Radio ... and Marconi is not. The question remains whether the honor should really go to Stubblefield.
Martin Cooper demonstrates the first portable cellular telephone.
April 3, 2003 marked the 30th anniversary of the first public telephone call placed on a portable cellular phone. Martin Cooper ( now chairman, CEO, and co-founder of ArrayComm Inc) placed that call on April 3, 1973, while general manager of Motorola's Communications Systems Division. It was the incarnation of his vision for personal wireless communications, distinct from cellular car phones. That first call, placed to Cooper's rival at AT&T's Bell Labs from the streets of New York City, caused a fundamental technology and communications market shift toward the person and away from the place.
"People want to talk to other people - not a house, or an office, or a car. Given a choice, people will demand the freedom to communicate wherever they are, unfettered by the infamous copper wire. It is that freedom we sought to vividly demonstrate in 1973," said Martin Cooper.
Martin Cooperadded, "As I walked down the street while talking on the phone, sophisticated New Yorkers gaped at the sight of someone actually moving around while making a phone call. Remember that in 1973, there weren't cordless telephones, let alone cellular phones. I made numerous calls, including one where I crossed the street while talking to a New York radio reporter - probably one of the more dangerous things I have ever done in my life."
Following the April 3, 1973, public demonstration, using a "brick"-like 30-ounce phone, Cooper started the 10-year process of bringing the portable cell phone to market. Motorola introduced the 16-ounce "DynaTAC" phone into commercial service in 1983, with each phone costing the consumer $3,500. It took seven additional years before there were a million subscribers in the United States. Today, there are more cellular subscribers than wireline phone subscribers in the world, with mobile phones weighing as little as 3 ounces.
Martin Cooper's role in conceiving and developing the first portable cellular phone directly impacted his choice to found and lead ARRAY COMM, a wireless technology and systems company founded in 1992. ArrayComm's core adaptive antenna technology increases the capacity and coverage of any cellular system, while significantly lowering costs and making speech more reliable. This technology addresses what Cooper calls "the unfulfilled promise" of cellular, which should be, but still isn't as reliable or affordable as wired telephony.
ArrayComm has also used its adaptive antenna technology to make the Internet "personal" by creating the i-BURST Personal Broadband System, which delivers high-speed, mobile Internet access that consumers can afford.
"It's very exciting to be part of a movement toward making broadband available to people with the same freedom to be anywhere that they have for voice communications today," said Martin Cooper. "People rely heavily on the Internet for their work, entertainment and communication, but they need to be unleashed. We will look back at 2003 as the beginning of the era when the Internet became truly untethered."
| Martin Coope |
The entire telecommunications industry will be restructured within the next couple of years, the father of the cellular phone says. And if you still do business the old-fashioned way, you will be left in the wake of wireless turbulence.
As a witness to how the major long-haul carriers now scramble to provide wireless, Martin Cooper, chairman, CEO and co-founder of ArrayComm Inc. says the industry is moving away from technological divisions and more into the area of perceived service.
"The divisions we made in the past, like local, long distance, analog or digital are disappearing, if they haven't disappeared already," says Cooper. "There is hardly analog left anywhere. It is now voice as data, and there are different kinds of data."
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Because of this, Cooper says wireless--and especially his newest endeavor at ArrayComm--is an opportunity that will revolutionize telecom today and tomorrow, just as his cell phone began changing calling habits in the 1970s.
Cooper adds that carriers, resellers and independent agents can claim a stake in this future, if they are concerned about personal communications services.
"And they certainly will have to be concerned, because eventually all services will be wireless," says Cooper. "I'm not just speaking about voice. I'm speaking of all data. When the Internet grows up, most Internet services are going to be wireless."
But first, wireless must mature, he says.
"Everybody I know has been on a cell phone call and will say, 'Let's finish this call on a real phone.' There is no fundamental reason wireless can't be as good as wireline," Cooper insists.
So the man who is credited for creating the cell phone in 1973 while working for Motorola Inc. and who lives by the principle that "There is no lack of spectrum, only a lack of spectral efficiency" has a new technology that he believes will once again shake up telecom dramatically.
Many people might be satisfied with one gigantic accomplishment in a lifetime. Cooper was not.
"Think about what the alternative is," says the 71-year-old. "You could sit around talking about the past and boring people to death, or you can keep active and be where the action is. Your mind and body have similar attributes. If you stop using your mind and body, they atrophy. That is why I run six miles every other day. I lift weights for 20 minutes on the days I run.
"To keep up with these smart alecs, you have to keep yourself exercised and persuade yourself to stay younger."
Cooper is credited as a co-founder of ArrayComm--his fifth startup. The "technical" founder is one of those "smart alecs" who sought out Cooper nine years ago at the suggestion of Arnaud Saffari, the company's executive vice president. Saffari heard a concept from a "techie," and told him no one would listen to him unless he could convince someone in the industry who had clout, Cooper recalls.
"I hear ideas like this on an average of one every two weeks," Cooper says. "This guy persisted, and the only time I could find to meet with him was during my running time during a convention in New Orleans."
Cooper laughs at that meeting. He says the youngster was cruising alongside him explaining his idea, while the older man says he probably looked as if he was huffing-and-puffing to get through the run.
But it was a meeting that satisfied "Cooper's law" of squeezing more stuff into the spectrum.
"The problem right now is capacity," Cooper explains. "If we can find a way to increase capacity and make it less costly, we can get to the point where personal communications can be done completely wireless. The key issue is how much stuff can you squeeze into a radio frequency. We've been searching for ways to squeeze more onto frequencies since Marconi invented radio.
"I've come up with a way to squeeze more into a radio frequency by 10 trillion times."
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He explains that with Marconi's discovery, the conversation was simply two-way radio. After the invention of the cell phone, the 1980s allowed the technology to provide "confined wireless conversations" within a specific distance.
Cooper says, "Now, we can deliver the entire radio spectrum to each individual. We can do this by literally placing radio energy around the individual."
According to Cooper, the proof is in Southeast Asia, where ArrayComm already has installed 50,000 base stations.
Cooper says the ArrayComm methodology is through what the company calls i-BURST, its "smart antennae arrays" that direct data transmissions at 1mbps.
"We've only seen a trace of what will be possible in the next 10 or 15 years," says Cooper, explaining that i-BURST will allow streaming media from the Internet anywhere on earth. He compares the performance of the i-BURST system with current cellular to a Razor Scooter up against an F-16.
"What we do comes down to the matter of how we are combining the signals, which allows us to receive signals from the people from whom we want, and to reject the signals who interfere with us," Cooper explains.
The array requires 10 or 12 antennas. This allows the system to act more like a radio station engineer who processes the music sent over the air.
"Think about how you hear," Cooper explains. "If you and I are in a room and are speaking, you can close your eyes and you know exactly where I am because you have two ears, and because my voice gets to your ears at different times, your brain can figure out where in the room I am."
In a room with a lot of people, however, a person's brain goes into overdrive in order to zero in on specific conversations or sounds. This is what Cooper calls the "cocktail party effect."
"Your brain has the ability of focusing in, and if someone behind you says something that interests you, your mind immediately focuses on that," he says. "You haven't moved your head, but you think differently. You can reject the first person.
"That is what we do. Instead of two ears, we have 10 or 12. We can really magnify the signal. Furthermore, while you have one mouth when you talk, we have 10 or 12 antennas."
The technology is also able to work on top of any existing system, Cooper says.
"How does this relate to your clients? Well, if they've built a wireless system and apply our kind of technology, they need many fewer base stations to serve more people," Cooper says.
While he is excited at what ArrayComm is doing, Cooper admits that he has "always lived in the future."
His first cell phone was a 29-ounce, brick-like device. Now he marvels at how similarly today's cell phones resemble the communicator Capt. James T. Kirk used on television's original "Star Trek."
And in a few short years, it may become similar to what was used in "Star Trek: The Next Generation." Cooper told a CNN audience during a recent interview, "The future of the cell phone will continue to be personal. ... In the long term, you may even have your cell phone embedded, perhaps, under the skin behind your ear."
During his interview with PHONE+, Cooper said, "It's really embarrassing, but television did not become commercial until I was past my teen years." Instead, he read science fiction novels, and he recognizes that many of today's technologies were born through the imaginative visions of what was, decades ago, science fiction.
So maybe Cooper's major contribution is in bringing science fiction to reality.
| Dr Martin Cooper, a former general manager for the systems division at Motorola, is considered the inventor of the first portable handset and the first person to make a call on a portable cell phone in April 1973. The first call he made was to his rival, Joel Engel, Bell Labs head of research. |
AT&T's research arm, Bell Laboratories, introduced the idea of cellular communications in 1947. But Motorola and Bell Labs in the sixties and early seventies were in a race to incorporate the technology into portable devices.
Cooper, now 70, wanted people to be able to carry their phones with them anywhere.
While he was a project manager at Motorola in 1973, Cooper set up a base station in New York with the first working prototype of a cellular telephone, the Motorola Dyna-Tac. After some initial testing in Washington for the F.C.C., Mr. Cooper and Motorola took the phone technology to New York to show the public.
| The First Cellphone (1973) Name: Motorola Dyna-Tac Size: 9 x 5 x 1.75 inches Weight: 2.5 pounds Display: None Number of Circuit Boards: 30 Talk time: 35 minutes Recharge Time: 10 hours Features: Talk, listen, dial |
In 1973, when the company installed the base station to handle the first public demonstration of a phone call over the cellular network, Motorola was trying to persuade the Federal Communications Commission to allocate frequency space to private companies for use in the emerging technology of cellular communications. After some initial testing in Washington for the F.C.C., Mr. Cooper and Motorola took the phone technology to New York to show the public.
On April 3, 1973, standing on a street near the Manhattan Hilton, Mr. Cooper decided to attempt a private call before going to a press conference upstairs in the hotel. He picked up the 2-pound Motorola handset called the Dyna-Tac and pushed the "off hook" button.
The phone came alive, connecting Mr. Cooper with the base station on the roof of the Burlington Consolidated Tower (now the Alliance Capital Building) and into the land-line system. To the bewilderment of some passers-by, he dialed the number and held the phone to his ear.
Who is he?
Cooper grew up in Chicago and earned a degree in electrical engineering at the Illinois Institute of Technology. After four years in the navy serving on destroyers and a submarine, he worked for a year at a telecommunications company.
Hired by Motorola in 1954, Mr. Cooper worked on developing portable products, including the first portable handheld police radios, made for the Chicago police department in 1967. He then led Motorola's cellular research.
| Rishad Premji Business manager in banking and financial services vertical - Wipro | ||
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| Year of Birth & Age: | 1975, 31 yrs | |
| Grew up: | In Mumbai | |
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| career graph: | As part of his degree he spent a year at London Stock Exchange. He was selected for General Electric’s Financial Management Programme in 1999 and worked for four years. In 2005 he joined Bain & Company’s London office. Wipro Technologies: Rishad will be joining the financial services practice of Wipro Technologies and would report to president Girish Paranjpe. He will join after July, since the annual general meeting takes place that month. After getting the shareholders’ nod, the company will have to take government permission. Rishad will join the 70,000-employee-strong software-led conglomerate, which also makes soaps and bulbs, as a business finance solutions manager. Like dad, like son: Lots has been spoken about Rishad's simplicity and his love to remain low key. Sources say his father always wanted him to learn the hard way. In fact, when Rishad was in London, he had asked his father's permission to stay at the Wipro guesthouse. Azim Premji who reportedly said it was company property turned this down. | |
Personal Information: | Interests: Rishad, like his father, is interested in reading and music. It is said that Rishad reads quite a lot and during his spare time reads quite a lot of books, mostly relating to management. The million-dollar question is whether he will travel economy class like his father. Another aspect of Rishad, which is very similar to his father, is his secular nature. Although a Muslim, a visit to the temple is a must for Rishad too. Succession: Rishad's father owns nearly 84 per cent of the stake in Wipro and IT pundits feel this move by Premji Senior to rope in his son means that there is a succession plan in place. The post of CFO is number two in the Wipro hierarchy and bringing Rishad into the financial services hints of a succession plan, it is believed. Analysts say like his father he eventually will become the chairman of the company. Marriage: The tall and handsome Rishad got married to his childhood sweetheart Aditi at a very low-key ceremony in Mumbai in 2005. Considering his father's penchant for remaining low-key, it is learnt that Rishad too was in favour of a low-key wedding. No gala receptions with no celebrity list, the wedding at the Taj Palace, Mumbai, was a very quiet family affair. Although nothing much is known about Rishad's tall and attractive wife, it is said that she also belongs to the no-nonsense clan. It is said she would fit the bill of an ideal Wipro bahurani as her non-nonsense attitude will be an asset in the business world. Family: Rishad is the son of Azim and Yasmeen. His younger brother Tariq, who is currently with the Azim Premji Foundation, is more of a friend. Rishad is basically a family man and any spare time is exclusively reserved for family. Like most Indian men he is closer to his mother and looks up to his father who he considers as his icon. |
Premji is married to Yasmeen, the couple have two children, Rishad and Tariq. Rishad is married to Aditi.
Premji is known for his modesty and frugality in spite of his wealth. He drives a toyota corolla and flies economy class, prefers to stay in company guest houses rather than luxury hotels and even served food on paper plates at a lunch honouring his son's wedding.