Saturday, September 5, 2009

Amitabh Bachchan to host 'Big Boss 3'


Bollywood Megastar Amitabh Bachchan will host the third edition of reality TV show 'Big Boss'.

Bachchan, currently in Singapore, said on Friday that he would be hosting the show.

Big B, 66, replaces actress Shilpa Shetty, who was the host of the second season of the show which was aired on 'Colors' television channel.

The Big Boss house in second part was located at Lonavala, a hill station located around 125 kms from here. This will be Bachchan's second stint on the small screen. He was the host of popular game show 'Kaun Banega Crorepati' for two seasons.

Thursday, September 3, 2009

India needs to grow, we understand that: British minister


Britain understands the need for economic growth in India and would not pressurise New Delhi to reduce emissions, British Minister for Energy and Climate Change Ed Miliband said here Tuesday.

“I have not come here to ask your government to reduce emissions. I fully understand the requirement for growth in India, but we need to take the dialogue forward.

“If Copenhagen sends out a message of austerity and low-growth, then there will be few who will accept it. Neither the developed nor the developing world will be amenable to this,” Miliband said during a media interaction.

“I’m here to listen and take the message back to the UK. It is imperative that money is set aside for adaptation so that development is not curtailed once cuts are made. We interacted with the local communities here who are vulnerable to natural disasters and climate change. We have seen some of the threats that climate change has posed on these communities,” he said.

He said he was in India to promote high growth and low carbon emission and to learn the country’s needs ahead of the UN climate summit in Copenhagen in December.

Admitting that the UN Millennium Development Goals have gone off the track, he said the rich countries should also fulfil their promises they had made.

British Minister for International Development Douglas Alexander said, “We are here in South Asia to hear what climate change means for millions of people in India and Bangladesh. For this region, the case for the urgency of tackling climate change is beyond question.

“It’s the poorest who are most vulnerable to these natural disasters.”

He said that Department for International Development (DFID) was spending around Rs.300 crore annually in West Bengal on various sectors including health and nutrition, urban development, public sector reforms and mainstreaming climate change.

Miliband and Alexander, on a two-day visit to India, arrived in Kolkata Sep 1 after visiting Bangladesh where they witnessed the severity of climate change impact on millions of people.

Wednesday, September 2, 2009

GMR to host Rahman’s Jai Ho concert


HYDERABAD: GMR Hyderabad International Airport Ltd.

will be hosting Oscar award winner A R Rahman’s‚ Jai Ho Concert on October 24, which will be organised by Wizcraft, and held at a specially created‚ GMR Arena near the Novotel Hyderabad Airport.

“We will start off the festive celebrations with the Airport Festive Carnival from September 19 to October 25. During this period, any passenger or their relatives and friends who purchase any goods or services worth a minimum of Rs 300, will be eligible for a lucky draw coupon which will enable them to enter for the Grand Draw prize of a return ticket for two, to Singapore.

Additionally, in the weekly draws, two lucky winners will get free tickets to the Jai Ho Concert,” P Sripathy, CEO of GHIAL said.

“The Jai Ho Concert will provide the people of Hyderabad and surrounding areas, an international standard event experience, with state-of-the-art equipment and facilities. Plans are on to provide a special weekend package for outstation enthusiasts in collaboration with the Novotel Hyderabad Airport and Jet Airways,” he added.

Tuesday, September 1, 2009

Scientists Photograph A Single Molecule!



IBM scientists have been able to image the anatomy -- or chemical structure -- inside a molecule with unprecedented resolution, using a complex technique known as noncontact atomic force microscopy. The results push the exploration of using molecules and atoms at the smallest scale and could greatly impact the field of nanotechnology, which seeks to understand and control some of the smallest objects known to mankind.

"Though not an exact comparison, if you think about how a doctor uses an x-ray to image bones and organs inside the human body, we are using the atomic force microscope to image the atomic structures that are the backbones of individual molecules," said Gerhard Meyer, researcher, IBM. "Scanning probe techniques offer amazing potential for prototyping complex functional structures and for tailoring and studying their electronic and chemical properties on the atomic scale."

The team’s current publication follows on the heels of another experiment published just two months ago in the June 12 issue of Science where IBM scientists measured the charge states of atoms using an AFM. These breakthroughs will open new possibilities for investigating how charge transmits through molecules or molecular networks. Understanding the charge distribution at the atomic scale is essential for building smaller, faster and more energy-efficient computing components than today’s processors and memory devices. These components could one day contribute to IBM's vision of a smarter planet by helping instrument and interconnect the physical world.

As reported in the August 28 issue of Science magazine, IBM Research – Zurich scientists Leo Gross, Fabian Mohn, Nikolaj Moll and Gerhard Meyer, in collaboration with Peter Liljeroth of Utrecht University, used an AFM operated in an ultrahigh vacuum and at very low temperatures ( –268oC or – 451oF) to image the chemical structure of individual pentacene molecules. With their AFM, the IBM scientists, for the first time ever, were able to look through the electron cloud and see the atomic backbone of an individual molecule. While not a direct technological comparison, this is reminiscent of x-rays that pass through soft tissue to enable clear images of bones.

The AFM uses a sharp metal tip to measure the tiny forces between the tip and the sample, such as a molecule, to create an image. In the present experiments, the molecule investigated was pentacene. Pentacene is an oblong organic molecule consisting of 22 carbon atoms and 14 hydrogen atoms measuring 1.4 nanometres in length. The spacing between neighbouring carbon atoms is only 0.14 nanometres — roughly 1 million times smaller then the diameter of a grain of sand. In the experimental image, the hexagonal shapes of the five carbon rings as well as the carbon atoms in the molecule are clearly resolved. Even the positions of the hydrogen atoms of the molecule can be deduced from the image.

“The key to achieving atomic resolution was an atomically sharp and defined tip apex as well as the very high stability of the system,” said Leo Gross, scientist, IBM. To image the chemical structure of a molecule with an AFM, it is necessary to operate in very close proximity to the molecule. The range, where chemical interactions give significant contributions to the forces, is less than a nanometre. To achieve this, the IBM scientists were required to increase the sensitivity of the tip and overcome a major limitation: Similar to the way two magnets would attract or repel each other when getting close, the molecules would easily be displaced by or attach to the tip when the tip was approached too closely — rendering further measurements impossible.

Gross added, “We prepared our tip by deliberately picking up single atoms and molecules and showed that it is the foremost tip atom or molecule that governs the contrast and resolution of our AFM measurements.”

A tip terminated with a carbon monoxide (CO) molecule yielded the optimum contrast at a tip height of approximately 0.5 nanometres above the molecule being imaged and — acting like a powerful magnifying glass — resolved the individual atoms within the pentacene molecule, revealing its exact atomic-scale chemical structure.

Furthermore, the scientists were able to derive a complete three-dimensional force map of the molecule investigated. “To obtain a complete force map the microscope needed to be highly stable, both mechanically and thermally, to ensure that both the tip of the AFM and the molecule remained unaltered during the more than 20 hours of data acquisition,” says Fabian Mohn, who is working on his Ph.D. thesis at IBM Research – Zurich.

To corroborate the experimental findings and gain further insight into the exact nature of the imaging mechanism, IBM scientist Nikolaj Moll performed first-principles density functional theory calculations of the system investigated.

He explains, “The calculations helped us understand what caused the atomic contrast. In fact, we found that its source was Pauli repulsion between the CO and the pentacene molecule.” This repulsive force stems from a quantum mechanical effect called the Pauli exclusion principle. It states that two identical electrons can not approach each other too closely.

The glasses that can find anything



You know the feeling. Call it a senior moment, absent-mindedness or a sign of what a busy active brain you have. We’ve all asked ourselves that irritating question: “Where on earth did I leave my car keys?”

Now a team of Japanese scientists claim to have come up with the answer. And the secretive artificial intelligence project codenamed Smart Goggle does not stop at elusive keys. With Yasuo Kuniyoshi’s invention balanced on your nose, nothing – be it the remote control, mobile phone or iPod – should ever go missing again.

Simply tell the glasses what you are looking for and it will play into your eye a video of the last few seconds you saw that item.

Built on to the glasses is a tiny camera which makes a constant record of everything the wearer sees: the tiny display inside the glasses identifies what is being scanned and a small readout instantly announces what the computer thinks the object probably is. For some things that look different from a range of angles, however, the glasses offer only a “best guess” – they are better at identifying a guitar and a chair than a coathanger or battery.

The hardware itself is not extraordinary: what has taken Professor Kuniyoshi several years to perfect is the computer algorithm that allows the goggles to know immediately what they are seeing. It is, he says, a problem that has always vexed the fields of robotics and artificial intelligence.

But working in a team with Tatsuya Harada, one of Japan’s masters of the science of “fuzzy logic”, Mr Kuniyoshi believes he has cracked the problem. Behind the goggles is possibly the world’s most advanced object recognition software and a computer that can learn the identity of new objects within seconds.

So if the user wanders round the house for about an hour telling the goggles the name of everything from that coathanger to the kitchen sink, they will remember. Then if, at some point in the future, you ask them where you last saw a particular item, they will play the appropriate footage.

Professor Kuniyoshi has even greater ambitions for his software, ambitions that owe a lot to the visual display of the Terminator of science fiction. He describes his goggles as the ultimate connection between the real world and the cyber world and believes that they could eventually be loaded with vast quantities of data from the internet.

With that database installed, the glasses might actually know much more about what the wearer is seeing than the wearer himself – species of animal, technical specifications of vehicles and electronics, or even the identity of people. In a demonstration, the professor showed how the user might, for example, gaze at a selection of unknown flowers and the glasses would say which were begonias, which were ferns and which were pansies.

Although the experimental model, shown exclusively to The Times yesterday, is still too bulky for daily use, the team at the Tokyo University School of Information Science and Technology are confident that it can soon be miniaturised. It could even, they suggest, be small enough to look little different from a normal pair of glasses.

But unfortunately, of course, there is one irritating question they would not be able to answer: “Now where did I put my glasses?”