Wednesday, October 22, 2014

A GLIMMER OF HOPE? --- Brazil protects giant swathe of Amazon rainforest.

Tuesday, October 21 2104.

SAO PAULO (Reuters) – The Brazilian government said on Tuesday it has put an environmentally rich area of the Amazon rainforest under federal protection, creating a reserve larger than the U.S. state of Delaware.

The new reserve, called Alto Maues, has 6,680 square km (668,000 hectares or 1.65 million acres) of mostly untouched forests that are not known to have human presence, the Brazilian Environment Ministry said.

Declaring a federal reserve means forest clearing and similar development are forbidden. Putting large areas of mostly intact rainforest under federal protection is one of the tools the Brazilian government has to combat deforestation and reduce its greenhouse gas emissions.

The creation of these reserves is part of the country’s climate policy. Deforestation is the main cause of carbon emissions in Brazil, unlike most countries where the burning of fossil fuels leads emissions.

The decree creating the reserve was eagerly expected by environmental groups. “This is essential to protect unique Amazon species, such as some types of primates,” said Mauro Armelin, a conservationist working for the local office of the World Wildlife Fund (WWF). WWF said at least 13 species of primates and more than 600 species of birds are found in the Alto Maues area. The organization, however, said that declaring the area a federal conservation unit does not guarantee its integrity.

Amazon deforestation went up in Brazil last year for the first time since 2008, as illegal loggers and land grabbers increased their activities, challenging government controls. The destruction of the world’s largest rainforest rose 29 percent in 2013 from the previous year, totaling 5,891 square km (3,360 square miles).

(Reporting by Marcelo Teixeira; Editing by Cynthia Osterman)
Source

Inexplicable signal from unseen universe provides tantalizing clue about one of astronomy's greatest secrets --- dark matter.

Date:
October 16, 2014
Source:
University of Leicester

The first potential indication of direct detection of dark matter -- something that has been a mystery in physics for over 30 years -- has been attained. Astronomers found what appears to be a signature of 'axions', predicted 'dark matter' particle candidates.


FIGURE: A sketch (not to scale) showing axions (blue) streaming out from the Sun, converting in the Earth's magnetic field (red) into X-rays (orange), which are then detected by the XMM-Newton observatory. (Credit: Coopyright University of Leicester)

Cutting-edge paper by Professor George Fraser -- who tragically died in March this year -- and colleagues at the University of Leicester provides first potential indication of direct detection of Dark Matter -- something that has been a mystery in physics for over 30 years.

Space scientists at the University of Leicester have detected a curious signal in the X-ray sky -- one that provides a tantalising insight into the nature of mysterious Dark Matter.

The Leicester team has found what appears to be a signature of 'axions', predicted 'Dark Matter' particle candidates -- something that has been a puzzle to science for years.

In a study being published on Monday 20 October in the Monthly Notices of the Royal Astronomical Society, the University of Leicester scientists describe their finding of a signal which has no conventional explanation.

As first author Professor George Fraser, who sadly died in March of this year, wrote: "The direct detection of dark matter has preoccupied Physics for over thirty years." Dark Matter, a kind of invisible mass of unknown origin, cannot be seen directly with telescopes, but is instead inferred from its gravitational effects on ordinary matter and on light. Dark Matter is believed to make up 85% of the matter of the Universe.

"The X-ray background -- the sky, after the bright X-ray sources are removed -- appears to be unchanged whenever you look at it," explained Dr. Andy Read, also from the University of Leicester Department of Physics and Astronomy and now leading the paper. "However, we have discovered a seasonal signal in this X-ray background, which has no conventional explanation, but is consistent with the discovery of axions."

This result was found through an extensive study of almost the entire archive of data from the European Space Agency's X-ray observatory, XMM-Newton, which will celebrate its 15th year in orbit this December. Previous searches for axions, notably at CERN, and with other spacecraft in Earth orbit, have so far proved unsuccessful.

As Professor Fraser explains in the paper: "It appears plausible that axions -- Dark Matter particle candidates -- are indeed produced in the core of the Sun and do indeed convert to X-rays in the magnetic field of the Earth." It is predicted that the X-ray signal due to axions will be greatest when looking through the sunward side of the magnetic field because this is where the field is strongest.

Dr. Read concludes: "These exciting discoveries, in George's final paper, could be truly ground-breaking, potentially opening a window to new physics, and could have huge implications, not only for our understanding of the true X-ray sky, but also for identifying the Dark Matter that dominates the mass content of the cosmos."

President of the Royal Astronomical Society Professor Martin Barstow, who is Pro-Vice-Chancellor, Head of the College of Science & Engineering and Professor of Astrophysics & Space Science at the University of Leicester said: "This is an amazing result. If confirmed, it will be first direct detection and identification of the elusive dark matter particles and will have a fundamental impact on our theories of the Universe."

The XMM-Newton observatory, its operations and data archive, constitute a major international collaboration within the European Space Agency (ESA) member states and beyond. The work of a number of authors on the calibration of XMM-Newton was supported by the UK Space Agency (UKSA).

Story Source:
The above story is based on materials provided by University of Leicester. Note: Materials may be edited for content and length.

Journal Reference:
G. W. Fraser, A. M. Read, S. Sembay, J. A. Carter, E. Schyns. Potential solar axion signatures in X-ray observations with the XMM-Newton observatory.Monthly Notices of the Royal Astronomical Society, 20 October, 2014 (in press) [link]

Source

Thursday, January 3, 2013

Bilingual brain boost: Two tongues, two minds.


WHEN I was just a newborn baby, my mother gazed down at me in her hospital bed and did something that was to permanently change the way my brain developed. Something that would make me better at learning, multitasking and solving problems. Eventually, it might even protect my brain against the ravages of old age. Her trick? She started speaking to me in French.
At the time, my mother had no idea that her actions would give me a cognitive boost. She is French and my father English, so they simply felt it made sense to raise me and my brothers as bilingual. Yet as I’ve grown up, a mass of research has emerged to suggest that speaking two languages may have profoundly affected the way I think.
Cognitive enhancement is just the start. According to some studies, my memories, values, even my personality, may change depending on which language I happen to be speaking. It is almost as if the bilingual brain houses two separate minds. All of which highlights the fundamental role of language in human thought. “Bilingualism is quite an extraordinary microscope into the human brain,” says neuroscientist Laura Ann Petitto of Gallaudet University in Washington DC.
The view of bilingualism has not always been this rosy. For many parents like mine, the decision to raise children speaking two languages was controversial. Since at least the 19th century, educators warned that it would confuse the child, making them unable to learn either language properly. At best, they thought the child would become a jack-of-all-trades and master of none. At worst, they suspected it might hinder other aspects of development, resulting in a lower IQ.
These days, such fears seem unjustified. True, bilingual people tend to have slightly smaller vocabularies in each language than their monolingual peers, and they are sometimes slower to reach for the right word when naming objects. But a key study in the 1960s by Elizabeth Peal and Wallace Lambert at McGill University in Montreal, Canada, found that the ability to speak two languages does not stunt overall development. On the contrary, when controlling for other factors which might also affect performance, such as socioeconomic status and education, they found that bilinguals outperformed monolinguals in 15 verbal and non-verbal tests (Psychological Monographs, vol 76, no 27, p 1).
Unfortunately, their findings were largely overlooked. Although a trickle of research into the benefits of bilingualism followed their study, most researchers and educators continued to cling to the old ideas. It is only within the last few years that bilingualism has received the attention it deserves. “For 30 years I’ve been sitting in my little dark room doing my thing and suddenly in the last five years it’s like the doors have swung open,” says Ellen Bialystok, a psychologist at York University in Toronto, Canada.
In part, the renewed interest comes from recent technological developments in neuroscience, such as functional near-infrared spectroscopy (fNIRS) - a form of brain imaging that acts as a silent and portable monitor, peering inside the brains of babies as they sit on their parents’ laps. For the first time, researchers can watch young babies’ brains in their initial encounters with language.
Using this technique, Petitto and her colleagues discovered a profound difference between babies brought up speaking either one or two languages. According to popular theory, babies are born “citizens of the world”, capable of discriminating between the sounds of any language. By the time they are a year old, however, they are thought to have lost this ability, homing in exclusively on the sounds of their mother tongue. That seemed to be the case with monolinguals, but Petitto’s study found that bilingual children still showed increased neural activity in response to completely unfamiliar languages at the end of their first year (Brain and Language, vol 121, p 130).
She reckons the bilingual experience “wedges open” the window for learning language. Importantly, the children still reached the same linguistic milestones, such as their first word, at roughly the same time as monolingual babies, supporting the idea that bilingualism can invigorate rather than hinder a child’s development. This seems to help people like me acquire new languages throughout our lives. “It’s almost like the monolingual brain is on a diet, but the bilingual brain shows us the full, plump borders of the language tissue that are available,” says Petitto.
Indeed, the closer the researchers looked, the more benefits they discovered, some of which span a broad range of skills. Bialystok first stumbled upon one of these advantages while asking children to spot whether various sentences were grammatically correct. Both monolinguals and bilinguals could see the mistake in phrases such as “apples growed on trees”, but differences arose when they considered nonsensical sentences such as “apples grow on noses”. The monolinguals, flummoxed by the silliness of the phrase, incorrectly reported an error, whereas the bilinguals gave the right answer (Developmental Psychology, vol 24, p 560).
Bialystok suspected that rather than reflecting expertise in grammar, their performance demonstrated improvement in what is called the brain’s “executive system”, a broad suite of mental skills that centre on the ability to block out irrelevant information and concentrate on a task at hand. In this case, they were better able to focus on the grammar while ignoring the meaning of words. Sure enough, bilingual kids in subsequent studies aced a range of problems that directly tested the trait. Another executive skill involves the ability to switch between different tasks without becoming confused, and bilinguals are better at these kinds of challenges too. When categorising objects, for instance, they can jump from considering the shape to the colour without making errors (Bilingualism: Language and Cognition, vol 13, p 253).

A second viewpoint

These traits are critical to almost everything we do, from reading and mathematics to driving. Improvements therefore result in greater mental flexibility, which may explain why the bilingual people performed so well in Peal and Lambert’s tests, says Bialystok.
Its virtues may even extend to our social skills. Paula Rubio-Fernández and Sam Glucksberg, both psychologists at Princeton University, have found that bilinguals are better at putting themselves in other people’s shoes to understand their side of a situation. This is because they can more easily block out what they already know and focus on the other viewpoint (Journal of Experimental Psychology: Learning, Memory and Cognition, vol 38, p 211).
So what is it about speaking two languages that makes the bilingual brain so flexible and focused? An answer comes from the work of Viorica Marian at Northwestern University in Evanston, Illinois, and colleagues, who used eye-tracking devices to follow the gaze of volunteers engaged in various activities. In one set-up, Marian placed an array of objects in front of Russian-English bilinguals and asked them to “pick up the marker”, for example. The twist is that the names of some of the objects in the two languages sound the same but have different meanings. The Russian word for stamp sounds like “marker”, for instance, which in English can mean pen. Although the volunteers never misunderstood the question, the eye-tracker showed that they would quickly glance at the alternative object before choosing the correct one (Bilingualism: Language and Cognition, vol 6, p 97).
This almost-imperceptible gesture gives away an important detail about the workings of the bilingual brain, revealing that the two languages are constantly competing for attention in the back of our minds. As a result, whenever we bilinguals speak, write, or listen to the radio, our brain is busy choosing the right word while inhibiting the same term from the other language. It is a considerable test of executive control - just the kind of cognitive workout, in fact, that is common in many commercial “brain-training” programs, which often require you to ignore distracting information while tackling a task.
It did not take long for scientists to wonder whether these mental gymnastics might help the brain resist the ravages of ageing. After all, there is plenty of evidence to suggest that other forms of brain exercise can create “cognitive reserve”, a kind of mental padding that cushions the mind against age-related decline. To find out, Bialystok and her colleagues collected data from 184 people diagnosed with dementia, half of whom were bilingual. The results, published in 2007, were startling - symptoms started to appear in the bilingual people four years later than in their monolingual peers (Neuropsychologia, vol 45, p 459). Three years later, they repeated the study with a further 200 people showing signs of Alzheimer’s disease. Again, there was around a five-year delay in the onset of symptoms in bilingual patients (Neurology, vol 75, p 1726). The results held true even after factors such as occupation and education were taken into account. “I was as surprised as anyone that we found such large effects,” Bialystok says.
Besides giving us bilinguals a brain boost, speaking a second language may have a profound effect on behaviour. Neuroscientists and psychologists are coming to accept that language is deeply entwined with thought and reasoning, leading some to wonder whether bilingual people act differently depending on which language they are speaking. That would certainly tally with my experience. People often tell me that I seem different when I speak English compared with when I speak French.
Such effects are hard to characterise, of course, since it is not easy to pull apart the different strands of yourself. Susan Ervin-Tripp, now at the University of California, Berkeley, found an objective way to study the question in the 1960s, when she asked Japanese-English bilinguals to complete a set of unfinished sentences in two separate sessions - first in one language, then the other. She found that her volunteers consistently used very different endings depending on the language. For example, given the sentence “Real friends should…” a person using Japanese replied “…help each other out,” yet in English opted for “…be very frank”. Overall, the responses seemed to reflect how monolinguals of either language tended to complete the task. The findings led Ervin-Tripp to suggest that bilinguals use two mental channels, one for each language, like two different minds.
Her theory would seem to find support in a number of recent studies. David Luna from Baruch College in New York City and colleagues, for example, recently asked bilingual English-Spanish volunteers to watch TV adverts featuring women - first in one language and then six months later in the other - and then rate the personalities of the characters involved. When the volunteers viewed the ads in Spanish, they tended to rate the women as independent and extrovert, but when they saw the advert in English they described the same characters as hopeless and dependent (Journal of Consumer Research, vol 35, p 279). Another study found that Greek-English bilinguals reported very different emotional reactions to the same story depending on the language - finding themselves “indifferent” to the character in one version, but feeling “concerned” for his progress in the other, for example (Journal of Multilingual and Multicultural Development, vol 25, p 124).
One explanation is that each language brings to mind the values of the culture we experienced while learning it, says Nairán Ramírez-Esparza, a psychologist at the University of Washington in Seattle. She recently asked bilingual Mexicans to rate their personality in English and Spanish questionnaires. Modesty is valued more highly in Mexico than it is in the US, where assertiveness gains respect, and the language of the questions seemed to trigger these differences. When questioned in Spanish, each volunteer was more humble than when the survey was presented in English.
Some of the behavioural switches may be intimately linked to the role of language as a kind of scaffold that supports and structures our memories. Many studies have found that we are more likely to remember an object if we know its name, which may explain why we have so few memories of early childhood. There is even some evidence that the grammar of a language can shape your memory. Lera Boroditsky at Stanford University in California recently found that Spanish speakers are worse at remembering who caused an accident than English speakers, perhaps because they tend to use impersonal phrases like “Se rompióel florero” (“the vase broke itself”) that do not state the person behind the event (Psychonomic Bulletin Review, vol 18, p 150).
The result seems to be that a bilingual person’s recollections will change depending on the language they are speaking. In a clever but simple experiment, Marian and Margarita Kaushanskaya, then at Northwestern University, asked Mandarin-English bilinguals a general knowledge question, first in one language then the other. For instance, they were asked to “name a statue of someone standing with a raised arm while looking into the distance”. They found people were more likely to recall the Statue of Liberty when asked in English, and a statue of Mao when asked in Mandarin (Psychonomic Bulletin & Review, p 14, vol 925). The same seems to occur when bilinguals recall personal, autobiographical memories. “So childhood memories will come up faster and more often when you are reinstating that language,” Marian says.
Despite the recent progress, the researchers may just be seeing the tip of the iceberg when it comes to the impact of bilingualism, and many questions remain. Chief among them will be the question of whether any monolingual person could cash in on the benefits. If so, what better incentive to bolster language education in schools, which is flagging in both the UK and US.
Much has been made of the difficulties of learning a new language later in life, but the evidence so far suggests the effort should pay off. “You can learn another language at any age, you can learn it fluently, and you can see benefits to your cognitive system,” says Marian. Bialystok agrees that late language-learners gain an advantage, even if the performance boost is usually less pronounced than in bilingual speakers. “Learn a language at any age, not to become bilingual, but just to remain mentally stimulated,” she says. “That’s the source of cognitive reserve.”
As it is, I’m grateful that particular challenge is behind me. My mother could never have guessed the extent to which her words would change my brain and the way I see my world, but I’m certain it was worth the effort. And for all that I just have to say: Merci!
Catherine de Lange is a writer based in London

Curtesy of New Scientist

Sunday, December 11, 2011

Various approaches to constructing AI

Self-Improving Artificial Intelligence




Whole Brain Emulation: The Logical Endpoint of Neuroinformatics?



Saturday, December 10, 2011

Time estimation ability predicts mathematical intelligence

Being good at estimating time can be a useful skill on its own, but it may also indicate higher mathematical intelligence as well, according to a new study published in the Dec. 7 issue of the online journal PLoS ONE.

A test of 202 students, evenly divided between males and females, revealed that those subjects who were better at estimating the durations of a series of short tones were also more likely to correctly answer various mathematical questions relative to their more poorly estimating counterparts.

This correlation was not seen with a general intelligence test, suggesting that time estimation is specifically related to mathematical intelligence.

The authors, led by Peter Kramer of the University of Padua in Italy, conclude that this relationship is likely due to a common reliance on spatial ability. "Encouraging this tendency might help improve mathematical intelligence and satisfy one of modern society's greatest needs", says Dr. Kramer.


Source EurekaAlert!

Swarms of bees could unlock secrets to human brains

Scientists at the University of Sheffield believe decision making mechanisms in the human brain could mirror how swarms of bees choose new nest sites.

Striking similarities have been found in decision making systems between humans and insects in the past but now researchers believe that bees could teach us about how our brains work.
Experts say the insects even appear to have solved indecision, an often paralysing thought process in humans, with scouts who seek out any honeybees advertising rival nest sites and butt against them with their heads while producing shrill beeping sounds.

Dr James Marshall, of the University of Sheffield's Department of Computer Science, who led the UK involvement in the project and has also previously worked on similarities between how brains and insect colonies make decisions, said: "Up to now we've been asking if honeybee colonies might work in the same way as brains; now the new mathematical modelling we've done makes me think we should be asking whether our brains might work like honeybee colonies.

"Many people know about the waggle dance that honeybees use to direct hive mates to rich flower patches and new nest sites. Our research published in the journal Science (on December 9), shows that this isn't the only way that honeybees communicate with each other when they are choosing a new nest site; they also disrupt the waggle dances of bees that are advertising alternative sites."

Biologists from Cornell University, New York, University of California Riverside and the University of Bristol set up two nest boxes for a homeless honeybee swarm to choose between and recorded how bees that visited each box interacted with bees from the rival box. They found that bees that visited one site, which were marked with pink paint, tended to inhibit the dances of bees advertising the other site, which were marked with yellow paint, and vice versa.

Tom Seeley of Cornell University, author of the best-selling book Honeybee Democracy said "We were amazed to discover that the bees from one nest box would seek out bees performing waggle dances for the other nest box and butt against them with their heads while simultaneously producing shrill beeping sounds. We call this rough treatment the 'stop signal' because most bees that receive this signal will cease dancing a few seconds later."

Dr Patrick Hogan of the University of Sheffield, who constructed the mathematical model of the bees, added: "The bees target their stop signal only at rivals within the colony, preventing the colony as a whole from becoming deadlocked with indecision when choosing a new home. This remarkable behaviour emerges naturally from the very simple interactions observed between the individual bees in the colony."

Monday, December 5, 2011

Discovery of the fastest-rotating massive star ever recorded

(Santa Barbara, Calif.) –– An international team of scientists has found the fastest-rotating massive star ever recorded. The star spins around its axis at the speed of 600 kilometers per second at the equator, a rotational velocity so high that the star is nearly tearing apart due to centrifugal forces. This confirms a prediction put forward by astrophysicist Matteo Cantiello, a postdoctoral fellow with UC Santa Barbara's Kavli Institute for Theoretical Physics, who contributed to the discovery published this week in theAstrophysical Journal Letters.

This is an artist's concept of the fastest-rotating massive star found to date. The massive, bright young star, called VFTS 102, rotates at about two million kilometers per hour. Centrifugal force from this dizzying spin rate has flattened the star into an oblate shape, and spun off a disk of hot plasma, seen edge on in this view from a hypothetical planet. The star may have "spun up" by accreting material from a binary companion star. Scientists believe that the rapidly evolving companion star later exploded as a supernova. The whirling star lies 160,000 light years away in the Large Magellanic Cloud, a satellite galaxy of the Milky Way.

The observations were made at the European Southern Observatory's Very Large Telescope, at the Paranal Observatory in Chile, as part of a survey of the heaviest and brightest stars in a region called the Tarantula Nebula. The Tarantula Nebula is a region of star formation located in a neighboring galaxy called the Large Magellanic Cloud, about 160,000 light years from Earth. The reported star, VFTS 102, is extremely hot and luminous, shining about 100,000 times more brightly than the sun. According to the research team, this star had a violent past and was ejected from a double star system by its exploding companion star.

Cantiello and collaborators explained that stars could reach such rapid rotation via a "cosmic dance" with another star so close that gravity strips gas from its surface. "This gas falls onto the companion star, increasing the mass and spinning it up," said Cantiello. "Similar to a tennis ball spinning fast after being hit by a glancing blow, a star rotates quickly after being hit off-center by the in-falling gas."
Cantiello previously predicted the possibility of observing this type of star. He reported this theoretical finding with Sung-Chul Yoon, Norbert Langer, and Mario Livio in a paper published in 2007 in Astronomy & Astrophysics Letters. This theoretical investigation of stars in binary systems predicted extreme rotational velocities after mass accretion. The observed rotational velocity for the star agrees with this prediction.


The star is unusual not only because it rotates so fast, but also because it is moving away from its neighboring stars at a velocity of about 70,000 miles per hour, or 30 kilometers per second. "Having been part of a binary system could explain this space oddity," said Cantiello. "It has been known for over 40 years that a star in a massive binary system can be shot away from its surroundings when the companion ends its life in a spectacular explosion called a supernova. In our theoretical calculations we noticed that the 'spun-up' star would also be moving from its surroundings at a high rate. It is very exciting to find a star that matches both of these predictions."

The star is located close to a pulsar and a supernova remnant, which may be left over from the companion star that once spun-up the observed star. If confirmed, this would provide additional support for the theoretical explanation put forward by Cantiello and collaborators in 2007.
Cantiello said that this star may produce dramatic fireworks as it dies. Such a rapidly rotating, massive star is believed to be the progenitor of some of the brightest explosions in the universe: gamma-ray bursts. These occur when the star's fast rotation produces powerful jets of light and matter.

Smallest habitable world around sun-like star found

Astronomers have found the smallest planet ever detected in the habitable zone around a star like the sun.
The new planet was found with the KeplerMovie Camera telescope, which searches for signs that a star's light has dimmed because a planet has passed between it and the telescope – an event called a transit.
Kepler-22b is just 2.4 times as wide as Earth(Image: NASA/Ames/JPL-Caltech)
"This discovery supports the growing belief that we live in a universe crowded with life," team member Alan Boss of the Carnegie Institution for Science said in a statement. "Kepler is on the verge of determining the actual abundance of habitable, Earth-like planets in our galaxy."
The planet, named Kepler-22b, lies 600 light years away around a star of the same type (called G) as the sun. It is about 2.4 times as wide as Earth and orbits its star every 290 days, right in the middle of its star's habitable zone, where liquid water can exist on an object's surface.
Transit observations cannot pinpoint its mass, however. Astronomers have used other telescopes to search for signs that the planet's gravitational tugs are causing its host star to wobble, but so far have not detected any wobbles. That means the planet's mass must be less than 36 times that of the Earth.
It is close in size to a class of planets called super-Earths, which are up to about 2 times as wide as Earth. "We have no planet like this in our solar system," says Bill Borucki, Kepler's chief scientist at NASA's Ames Research Center in Moffett Field, California. He announced the find on Monday at the Kepler Science Conference at NASA Ames.

Just right

The allowed mass range means the planet could be rocky and could contain water, Borucki says. Ground-based observations in mid-2012, when the patch of sky where the planet lies is more easily visible, could help astronomers nail down the planet's mass. That will help them identify its composition.
Two previous rocky planet candidatesMovie Camera have been found in the habitable zones of their stars, but in both cases the stars were cooler than the sun.
And neither candidate was found right in the middle of its star's "Goldilocks" zone, which could boast the best conditions for hosting life as we know it. Kepler-22b's surface is probably a balmy 22 °C, Borucki said.

Scanning for ET

The Kepler telescope has been staring at more than 150,000 stars between the constellations Cygnus and Lyra for the past 1000 days. The Kepler team has now found more than 2300 candidate exoplanets, about 1000 more than itreported in February. Ten of those span no more than about twice Earth's width.
To confirm a new planet, scientists must observe three of its transits. Mission scientists saw the first transit of Kepler-22b three days after Kepler began collecting data in 2009. The third transit appeared in December 2010. "It's a great gift," Borucki said. "We consider this our Christmas planet."
"It's conceivable that these new planet candidates and their [potential] moons could have life," Borucki said.
The SETI Institute in Mountain View, California, will observe the new candidates with its Allen Telescope Array of radio telescopes in California in the hopes of detecting signals from any extraterrestrial civilisations there, said the institute's Jill Tarter. The array had been offline since April due to budget cuts but restarted observations on Monday after raising funds by partnering with the US air force and crowdsourcing donations.

Saturday, December 3, 2011

Entangled diamonds blur quantum-classical divide


Two diamonds as wide as earring studs have been made to share the spooky quantum state known as entanglement. The feat, performed at room temperature, blurs the divide between the classical and quantum worlds, since typically the quantum link has been made with much smaller particles at low temperatures.
One laser pulse entangled two diamonds and the next measured the entanglement
Entanglement is one of the weird aspects of quantum mechanics, where the fates of two or more particles are intertwined – even when they are physically far apart. Electrons, for example, have been entangled, so that changing the quantum spin of one affects the spins of its entangled partners.
Macroscopic objects, on the other hand, are supposed to mind their own business – flipping one coin shouldn't force a neighbouring flipped coin to come up heads.
But that's just what happened with two 3-millimetre-wide diamonds on a lab bench at the University of Oxford. Physicists there led by Ka Chung Lee andMichael Sprague were able to show that the diamonds shared one vibrational state between them.
Other researchers had previously shown quantum effects in a supercooled 0.06-millimetre-long strip of metal, which was set in a state where it wasvibrating and not vibrating at the same time. But quantum effects are fragile. The more atoms an object contains, the more they jostle each other about, destroying the delicate links of entanglement.

Fleeting link

Cooling an object down to fractions of a degree above absolute zero was thought to be the only way to keep atoms from doing violence to each other.
"In our case we said, let's not bother doing that," says Ian Walmsley of Oxford, head of the lab where the diamonds were entangled. "It turns out all you need to do is look on a very short timescale, before all that jostling and mugging around has a chance to destroy the coherence."
The team placed two diamonds in front of an ultrafast laser, which zapped them with a pulse of light that lasted 100 femtoseconds (or 10-13 seconds).
Every so often, according to the classical physics that describes large objects, one of those photons should set the atoms in one of the diamonds vibrating. That vibration saps some energy from the photon. The less energetic photon would then move on to a detector, and each diamond would be left either vibrating or not vibrating.
But if the diamonds behaved as quantum mechanical objects, they would share one vibrational mode between them. It would be as if both diamonds were both vibrating and not vibrating at the same time. "Quantum mechanics says it's not either/or, it's both/and," Walmsley says. "It's that both/and we've been trying to prove."

Same state

To show that the diamonds were truly entangled, the researchers hit them with a second laser pulse just 350 femtoseconds after the first. The second pulse picked up the energy the first pulse left behind, and reached the detector as an extra-energetic photon.
If the system were classical, the second photon should pick up extra energy only half the time – only if it happened to hit the diamond where the energy was deposited in the first place. But in 200 trillion trials, the team found that the second photon picked up extra energy every time. That means the energy was not localised in one diamond or the other, but that they shared the same vibrational state.
Entangled diamonds could some day find uses in quantum computers, which could use entanglement to carry out many calculations at once.
"To actually realise such a device is still a way off in the future, but conceptually that's feasible," Walmsley says. He notes that the diamonds were entangled for only 7000 femtoseconds, which is not long enough for practical applications.

Quantum limit

The real value of the experiment may be in probing the boundary between quantum mechanics and classical physics. "We think that it is the first time that a room-temperature, solid-state system has been demonstrably put in this entangled quantum state," Walmsley says. "This is an interesting avenue for thinking about how quantum mechanics can emerge into the classical world."
Erika Andersson of Heriot-Watt University in Edinburgh, UK, agrees.
"We want to push and see how far quantum mechanics goes," she says. "The reported work is a major step in trying to push quantum mechanics to its limits, in the sense of showing that larger and larger physical systems can behave according to the 'strange' predictions of quantum mechanics."

Tuesday, November 29, 2011

Study shows medical marijuana laws reduce traffic deaths

Leads to lower consumption of alcohol


DENVER (Nov. 29, 2011) – A groundbreaking new study shows that laws legalizing medical marijuana have resulted in a nearly nine percent drop in traffic deaths and a five percent reduction in beer sales.
"Our research suggests that the legalization of medical marijuana reduces traffic fatalities through reducing alcohol consumption by young adults," said Daniel Rees, professor of economics at the University of Colorado Denver who co-authored the study with D. Mark Anderson, assistant professor of economics at Montana State University.

The researchers collected data from a variety of sources including the National Survey on Drug Use and Health, the Behavioral Risk Factor Surveillance System, and the Fatality Analysis Reporting System.
The study is the first to examine the relationship between the legalization of medical marijuana and traffic deaths.
"We were astounded by how little is known about the effects of legalizing medical marijuana," Rees said. "We looked into traffic fatalities because there is good data, and the data allow us to test whether alcohol was a factor."
Anderson noted that traffic deaths are significant from a policy standpoint.
"Traffic fatalities are an important outcome from a policy perspective because they represent the leading cause of death among Americans ages five to 34," he said.

The economists analyzed traffic fatalities nationwide, including the 13 states that legalized medical marijuana between 1990 and 2009. In those states, they found evidence that alcohol consumption by 20- through 29-year-olds went down, resulting in fewer deaths on the road.
The economists noted that simulator studies conducted by previous researchers suggest that drivers under the influence of alcohol tend to underestimate how badly their skills are impaired. They drive faster and take more risks. In contrast, these studies show that drivers under the influence of marijuana tend to avoid risks. However, Rees and Anderson cautioned that legalization of medical marijuana may result in fewer traffic deaths because it's typically used in private, while alcohol is often consumed at bars and restaurants.

"I think this is a very timely study given all the medical marijuana laws being passed or under consideration," Anderson said. "These policies have not been research-based thus far and our research shows some of the social effects of these laws. Our results suggest a direct link between marijuana and alcohol consumption."
The study also examined marijuana use in three states that legalized medical marijuana in the mid-2000s, Montana, Rhode Island, and Vermont. Marijuana use by adults increased after legalization in Montana and Rhode Island, but not in Vermont. There was no evidence that marijuana use by minors increased.

Opponents of medical marijuana believe that legalization leads to increased use of marijuana by minors.
According to Rees and Anderson, the majority of registered medical marijuana patients in Arizona and Colorado are male. In Arizona, 75 percent of registered patients are male; in Colorado, 68 percent are male. Many are under the age of 40. For instance, 48 percent of registered patients in Montana are under 40.
"Although we make no policy recommendations, it certainly appears as though medical marijuana laws are making our highways safer," Rees said.

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The study is entitled, "Medical Marijuana Laws, Traffic Fatalities, and Alcohol Consumption." It can be found at:http://www.iza.org/en/webcontent/personnel/photos/index_html?key=4915

Source: Eureka Alert!

A revolution in knot theory

Providence, RI--- In the 19th century, Lord Kelvin made the inspired guess that elements are knots in the "ether". Hydrogen would be one kind of knot, oxygen a different kind of knot---and so forth throughout the periodic table of elements. This idea led Peter Guthrie Tait to prepare meticulous and quite beautiful tables of knots, in an effort to elucidate when two knots are truly different. From the point of view of physics, Kelvin and Tait were on the wrong track: the atomic viewpoint soon made the theory of ether obsolete. But from the mathematical viewpoint, a gold mine had been discovered: The branch of mathematics now known as "knot theory" has been burgeoning ever since.



This knot has Gauss code O1U2O3U1O2U3.

In his article "The Combinatorial Revolution in Knot Theory", to appear in the December 2011 issue of the Notices of the AMS,, Sam Nelson describes a novel approach to knot theory that has gained currency in the past several years and the mysterious new knot-like objects discovered in the process.
As sailors have long known, many different kinds of knots are possible; in fact, the variety is infinite. A *mathematical* knot can be imagined as a knotted circle: Think of a pretzel, which is a knotted circle of dough, or a rubber band, which is the "un-knot" because it is not knotted. Mathematicians study the patterns, symmetries, and asymmetries in knots and develop methods for distinguishing when two knots are truly different.

Mathematically, one thinks of the string out of which a knot is formed as being a one-dimensional object, and the knot itself lives in three-dimensional space. Drawings of knots, like the ones done by Tait, are projections of the knot onto a two-dimensional plane. In such drawings, it is customary to draw over-and-under crossings of the string as broken and unbroken lines. If three or more strands of the knot are on top of each other at single point, we can move the strands slightly without changing the knot so that every point on the plane sits below at most two strands of the knot. A planar knot diagram is a picture of a knot, drawn in a two-dimensional plane, in which every point of the diagram represents at most two points in the knot. Planar knot diagrams have long been used in mathematics as a way to represent and study knots.

As Nelson reports in his article, mathematicians have devised various ways to represent the information contained in knot diagrams. One example is the Gauss code, which is a sequence of letters and numbers wherein each crossing in the knot is assigned a number and the letter O or U, depending on whether the crossing goes over or under. The Gauss code for a simple knot might look like this: O1U2O3U1O2U3.

In the mid-1990s, mathematicians discovered something strange. There are Gauss codes for which it is impossible to draw planar knot diagrams but which nevertheless behave like knots in certain ways. In particular, those codes, which Nelson calls *nonplanar Gauss codes*, work perfectly well in certain formulas that are used to investigate properties of knots. Nelson writes: "A planar Gauss code always describes a [knot] in three-space; what kind of thing could a nonplanar Gauss code be describing?" As it turns out, there are "virtual knots" that have legitimate Gauss codes but do not correspond to knots in three-dimensional space. These virtual knots can be investigated by applying combinatorial techniques to knot diagrams.

Just as new horizons opened when people dared to consider what would happen if -1 had a square root---and thereby discovered complex numbers, which have since been thoroughly explored by mathematicians and have become ubiquitous in physics and engineering---mathematicians are finding that the equations they used to investigate regular knots give rise to a whole universe of "generalized knots" that have their own peculiar qualities. Although they seem esoteric at first, these generalized knots turn out to have interpretations as familiar objects in mathematics. "Moreover," Nelson writes, "classical knot theory emerges as a special case of the new generalized knot theory."

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Related to this subject are an upcoming issue of the Journal of Knot Theory and its Ramifications, devoted to virtual knot theory, and the upcoming Knots in Washington conference at George Washington University, December 2-4, 2011, which will focus on on "Categorification of Knots, Algebras, and Quandles; Quantum Computing".

Courtesy of Eureka Alert!