Ada Lovelace Day Featuring: Pamela Gay

Pamela Gay

Yes, this is an actual photo of an actual astrophysicist. Why are you asking?

Good morning! Welcome to Ada Lovelace Day, a day where we celebrate women in technology (etc) through blogging.

I’d like to introduce you to a friend of mine, Dr. Pamela Gay, research astronomer, podcaster, gateway to science for the average Mr. or Ms. Doe, Skye-rider (that’s her horse), and internet-addict. Oh, and P.S. – you didn’t hear it from me but she has two X chromosomes. That’s right, she’s female.

Pamela Online

Although she does many things (in her own words, “Some days I suspect I wear too many hats. Other days, I know I wear too many hats!”) and I’ve heard tell she has a penchant for variable stars, Pamela’s research at the moment is focused online, and on how it is that internet users interact with astronomy content. She certainly has plenty of fodder for this research: her online projects include writing, voicing, and producing Astronomy Cast; masterminding 365 Days of Astronomy (you’ve heard me on there once, and you’ll hear me again in May); and being part of the Zooniverse team – a citizen science astronomy project. Oh, and of course she has a blog: StarStryder.

A la Twitter, I asked her to describe herself in 140 characters or less. I’m not sure I could do it, but she did:

I am a female scientist focused on communicating the majesty of the universe & the realities and struggles of academia one day at a time.

Teaching and Learning

No matter how much you enjoy your job, there are going to be at least a few days where you’d rather not get out of bed. A few tasks you just don’t want to face. On those days you focus on the part you love. For Pamela  it’s easy to identify: “seeing students realize they can be more then they ever imagined and can do more with their lives than they ever dreamed,” she says. I have to agree. Watching a moment of understanding, seeing students achieve something they’ve fought for – that’s the reward for teachers.

It’s also why I admire Pamela’s work. Not only does she have the Ph.D. in Astrophysics, but she pushes back against the idea that this means she has to sit holed up in an office cranking through numbers and churning out papers. She teaches in as many ways as she can, even when colleagues choose not to treat that output as valuable (a judgment both teachers and women have to face fairly often).

Thing is, it’s people like Pamela who will influence the next crop of astrophysics researchers. It is people like Pamela who will convince students that they can become the next Nobel Laureate or the next Carl Sagan or the next professor of Astronomy. And she’s not “just a teacher,” she’s published – over and over and over again. She’s documented her influence scientifically.

Only Human

Sometimes it seems like the women we look up to have superpowers. Guess what? Einstein and Annie Jump Cannon were human, and so is Pamela. She might have caffeine running through her veins rather than blood, but she makes time in her life for her husband, horseback riding (did you hear that girls near the age of seven? You can be an astrophysicist and also continue to love horses!), gardening, and renovating her house.

So, listen to her next podcast and enjoy it, whether you decide to go into astronomy research or not. If you do decide to head in that direction though, “open doors for yourself by playing with technology,” says Pamela. You’ll be able to use the experience. Take some programming classes, some math classes, and definitely learn to write – if you can communicate your ideas you’ll be able to show people why what you do is cool, and you’ll be able to convince folks to give you funding.

Want More?

Last year I blogged about Susan Sakimoto, and mentioned a lot of other people I admire and respect:

I always have trouble deciding who to write about. There’s Ada herself, of course, and Annie Jump Cannon, Cecelia Payne-Gaposhkin, and Williamina Fleming. And then there are the current scientists (most of whom you’ve never heard of because you tend not to get famous until you’re dead or almost dead): Hannah Jang-Condell, Susan Sakimoto, Andrea Dobson, Pamela (the list goes on and on and on). Not to mention my students or the faculty and grad students I’ve met at the University of Washington. Students are really important and really inspiring – except when they’re slacking off. You can see some women in science I’ve met (as interviewed by two high school interns last summer) over at the Scientists Like Me project – which will eventually become part of the We Are All Astronomers project (another Pamela special).

~ A l i c e !

http://findingada.com/

http://www.sdsc.edu/ScienceWomen/cannon.html

http://www.carleton.edu/departments/PHAS/Astro/pages/marga_michele/Cecilia_Payne.html

http://ocp.hul.harvard.edu/ww/people_fleming.html

http://womeninastronomy.blogspot.com/

Jay O’Callahan and the NASA Story

THIS is what I’ve been waiting for. Yesterday I received wonderful news in my e-mail. Jay O’Callahan will tell his NASA Story on PRI’s Living on Earth the weekend after Christmas.

This is a well-written and well-told story of NASA’s first 50 years. You should all mark your calendars and drop everything for it.

I heard this story at the Astronomical Society of the Pacific meeting in September, and Jay moved the audience to tears.

Not often do I believe this vehemently that everyone should watch/listen/or read a certain thing. I may say “You gotta see…” or “This is the best ever…” but it is often hyperbole. This though, this you should hear. I assume a recording will come out at some point, but there has been no noise about such and I have not heard of motions in that direction. So, as it stands this MAY be your only chance to hear this story – sometimes things get lost in the sands of time. Tune in, turn it up, and imagine an grey-haired man with graceful hands beginning to spin a tale in for you.

The e-mail:

Click here to edit this image
Jay’s NASA Story on NPR!




Jay recorded a 48-minute “broadcast” version of his NASA story, Forged in the Stars, before a lively audience for NPR*’s Living on Earth. It will air on Living on Earth the weekend after Christmas. To find out when Living on Earth is broadcast on your local NPR station, go to www.loe.org, click on WHERE TO TUNE IN, then click on your state or go directly to your local NPR station.



Click here to edit this image



You may already have heard a segment of this story called The Eagle Soars on Living on Earth. The upcoming broadcast is the complete “broadcast” version of Forged in the Stars.



www.loe.org



Be sure to tune in! Happy Holidays!
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Read about my journey of the creation of Forged in the Stars



Visit Jay’s blog and Facebook



Click here to edit this image



Visit Jay’s Website
Jay O’Callahan, PO Box 1054, Marshfield, MA 02050
800-626-5356, jay@ocallahan.com, www.ocallahan.com

*As pointed out later, Living on Earth is produced by PRI, not NPR.

~ A l i c e !

Ada Lovelace Day and Carnivals of Space

Susan Sakimoto

I want to tell you about Susan Sakimoto. No, you haven’t heard of her. No, you won’t be asked to write a report on her (at least, probably not this year). She was the unofficial adviser for my Bachelor’s Honors thesis project in Astronomy-Geology at Whitman College. At the time she was working at NASA Goddard, now she’s a professor at Notre Dame. She studies lava flows … on Mars. And the part that really impresses me: she has kids (whose dad also works full-time at Notre Dame), she runs, and yet somehow her house is still cleaner than mine. Let me reiterate that:

Susan has:

  • children (and it’s not like they have a stay-at-home-dad instead of a stay-at-home-mom)
  • a full-time job – doing science (which you kinda never stop thinking about, and sometimes you have to work all night on to meet deadlines, and often sends you to meetings in who-knows-where)
  • a regular “physical” hobby (not the kind of hobby you can put aside for a month and come back to)
  • and then she took me on as an unofficial advisee…
  • oh yeah, and her house is clean!

I dunno about you, but one or two of those sound like plenty to me. She’s one of those amazing people who does it all. I often feel like I can barely handle my full-time job and house chores. You start talking to me about kids and trying to make it to yoga every week, regularly, and I start wondering what I can drop or cut short.

I’m impressed, but these women are not rare. I’ve met many of them, and I continue to meet more. The key seems to be commitment. If you set your mind do something, and commit to it, you can. So go for it!

Ada Lovelace Day

So why am I telling you about Susan Sakimoto? Because today is Ada Lovelace day. Ada is widely attributed as the woman who wrote the first computer program. She worked closely with Charles Babbage on developing the first mechanical computers. She is one of the many amazing women in science and technology.

As part of the celebration of Ada Lovelace Day I signed a pledge saying I would write about a woman I admire, someone who works in technology. Unfortunately for me, there are so many women in science and technology I admire, that I didn’t know who to write about! There’s Ada herself, of course, and Annie Jump Cannon, Cecelia Payne-Gaposhkin, and Williamina Fleming. And then there are the current scientists (most of whom you’ve never heard of because you tend not to get famous until you’re dead or almost dead): Hannah Jang-Condell, Susan Sakimoto, Andrea Dobson, Pamela Gay (the list goes on and on and on). As you now know, I finally settled on Susan.

Carnival of Space

In the interest of clearing up loose ends – I owe you links to several Carnivals of Space:

Where’d I Get My Info:

http://findingada.com/

http://www.sdsc.edu/ScienceWomen/cannon.html

http://www.carleton.edu/departments/PHAS/Astro/pages/marga_michele/Cecilia_Payne.html

http://ocp.hul.harvard.edu/ww/people_fleming.html

http://womeninastronomy.blogspot.com/

Carl Sagan’s Cosmos

I have been sick for several days, hence the lack of posts. Mostly I’ve been watching Heroes, Season 1, but my brain is awake enough now for something more: Carl Sagan’s Cosmos.

I saw this when I was very young, and I haven’t watched it since. Very young. I was born the year that it was originally released.

We just ran into this clip – human evolution, in orange-outlined animated goodness. Please enjoy it with me (and then come and see Lucy’s Legacy at Pacific Science Center).

Tyson’s Speech

This is not mine. It is Neil deGrasse Tyson’s but I can’t find a permanent link to it on the web, and it’s great.

The Search for Life in the Universe
An overview of the scientific and cultural implications of finding life in the cosmos

Neil deGrasse Tyson
Department of Astrophysics & Hayden Planetarium
American Museum of Natural History

11 July 2001

For the House Committee on Science, Subcommittee on Space and Aeronautics.
To be summarized at 10:00AM, 12 July 2001

Rayburn House Office Building, Suite2318, Washington DC

The discovery of what is now more than seventy planets around stars other than the Sun continues to stimulate tremendous public and media interest. In this case, attention was driven not so much by the discovery of the extra-solar planets themselves, but by the prospect of them hosting intelligent life.

Nearly every space move to come from Hollywood includes some encounter between humans and alien life forms. Most recently we have the high-budget Mars-based films Mission to Mars, and The Red Planet. The astrophysics appears to be the ladder to what people really care about: whether or not we are alone in the universe. I have empirical evidence to support this contention. If the person on next to me on a long airplane flight ever finds out that I am an astrophysicist, nine times out of ten they ask, with wide eyes, about life in the universe. And only later do they ask me about the big bang and black holes. I know of no other discipline that triggers such a consistent and reliable reaction in public sentiment. This phenomenon is not limited to Americans. The time-honored question: “What is our place in the universe” might just be genetically encoded in our species. All known cultures across all of time have attempted to answer that question. Today we ask the same question, but with fewer words: “Are we alone?”

Ordinarily, there is no riskier step that a scientist (or anyone) can take than to make sweeping generalizations from just one example. At the moment, life on Earth is the only known life in the universe, but there are compelling arguments to suggest we are not alone. Indeed, most astrophysicists accept a high probability of there being life elsewhere in the universe, if not on other planets or on moons within our own solar system. The numbers are, well, astronomical: If the count of planets in our solar system is not unusual, then there are more planets in the universe than the sum of all sounds and words ever uttered by every human who has ever lived. To declare that Earth must be the only planet in the universe with life would be inexcusably egocentric of us.

Many generations of thinkers, both religious and scientific, have been led astray by anthropocentric assumptions, while others were simply led astray by ignorance. In the absence of dogma and data, history tells us that it’s prudent to be guided by the notion that we are not special, which is generally known as the Copernican principle, named for the Polish astronomer Nicholas Copernicus who, in the mid 1500s, put the Sun back in the middle of our solar system where it belongs. In spite of a third century B.C. account of a sun-centered universe proposed by the Greek philosopher Aristarchus, the Earth-centered universe was by far the most popular view for most of the last 2000 years. Codified by the teachings of Aristotle and Ptolemy, and by the preachings of the Roman Catholic Church, people generally accepted Earth as the center of all motion. It was self-evident: the universe not only looked that way, but God surely made it so. The sixteenth century Italian monk Giordano Bruno suggested publicly that the universe was filled with planets that harbor life. For these thoughts he was burned at the stake. Fortunately, today we live in somewhat more tolerant times.

While there is no guarantee that the Copernican principle will guide us correctly for all scientific discoveries to come, it has humbled our egos with the realization that not only is Earth not in the center of the solar system, but the solar system is not in the center of the Milky Way galaxy, and the Milky Way galaxy is not in the center of the universe. And in case you are one of those people who thinks that the edge may be a special place, then we are not at the edge of anything either.

A wise contemporary posture would be to assume that life on Earth is not immune to the Copernican principle. If so, then how can the appearance or the chemistry of life on Earth provide clues to what life might be like elsewhere in the universe?

I do not know whether biologists walk around every day awestruck by the diversity of life. I certainly do. On this single planet called Earth, there co-exist (among countless other life forms), algae, beetles, sponges, jellyfish, snakes, condors, and giant sequoias. Imagine these seven living organisms lined up next to each other in size-place. If you didn’t know better, you would be hard-pressed to believe that they all came from the same universe, much less the same planet. Try describing a snake to somebody who has never seen one: “You gotta believe me. There is this animal on Earth that 1) can stalk its prey with infrared detectors, 2) swallows whole live animals up to five times bigger than its head, 3) has no arms or legs or any other appendage, yet 4) can slide along level ground at a speed of two feet per second!” Given the diversity of life on Earth, one might expect a diversity of life exhibited among Hollywood aliens. But I am consistently amazed by the film industry’s lack of creativity. With a few notable exceptions such as life forms in The Blob (1958) and in 2001: A Space Odyssey (1968), Hollywood aliens look remarkably humanoid. No matter how ugly (or cute) they are, nearly all of them have two eyes, a nose, a mouth, two ears, a head, a neck, shoulders, arms, hands, fingers, a torso, two legs, two feet — and they can walk. From an anatomical view, these creatures are practically indistinguishable from humans, yet they are supposed to have come from another planet. If anything is certain, it is that life elsewhere in the universe, intelligent or otherwise, will look at least as exotic as some of Earth’s own life forms.

The chemical composition of Earth-based life is primarily derived from a select few ingredients. The elements hydrogen, oxygen, and carbon account for over 95% of the atoms in the human body and in all known life. Of the three, the chemical structure of the carbon atom allows it to bond readily and strongly with itself and with many other elements in many different ways, which is how we came to become carbon-based life, and which is why the study molecules that contain carbon is generally known as “organic” chemistry. The study of life elsewhere in the universe is known as exobiology, which is one of the few disciplines that attempts to function with the complete absence of first-hand data.

Is life chemically special? The Copernican principle suggests that it probably isn’t. Aliens need not look like us to resemble us in more fundamental ways. Consider that the four most common elements in the universe are hydrogen, helium, carbon, and oxygen. Helium is inert. So the three most abundant, chemically active ingredients in the cosmos are also the top three ingredients in life on Earth. For this reason, you can bet that if life is found on another planet, it will be made of a similar mix of elements. Conversely, if life on Earth were composed primarily of, for example, molybdenum, bismuth, and plutonium, then we would have excellent reason to suspect that we were something special in the universe.

Appealing once again to the Copernican principle, we can assume that the size of an alien organism is not likely to be ridiculously large compared with life as we know it. There are cogent structural reasons why you would not expect to find a life the size of the Empire State Building strutting around a planet. But if we ignore these engineering limitations of biological matter we approach another, more fundamental limit. If we assume that an alien has control of its own appendages, or more generally, if we assume the organism functions coherently as a system, then its size would ultimately be constrained by its ability to send signals within itself at the speed of light — the fastest allowable speed in the universe. For an admittedly extreme example, if an organism were as big as the entire solar system (about 10 light-hours across), and if it wanted to scratch its head, then this simple act would take no less than 10 hours to accomplish. Sub-slothlike behavior such as this would be evolutionarily self-limiting because the time since the beginning of the universe may be insufficient for the creature to have evolved from smaller forms of life over many generations.

How about intelligence? Since there is still debate on how to define it and measure it in people, I wonder what the question even means when applied to extraterrestrials. Hollywood has tried, but I give them mixed reviews. I know of some aliens that should have been embarrassed at their stupidity. During a four-hour car trip from Boston to New York City, while I was surfing the FM dial, I came upon a radio play in progress that, as best as I could determine, was about evil aliens that were terrorizing Earthlings. Apparently, they needed hydrogen atoms to survive so they kept swooping down to Earth to suck up its oceans and extract the hydrogen from all the H2O molecules. Now those were some dumb aliens. They must not have been looking at other planets en route to Earth because Jupiter, for example, contains over two-hundred times the entire mass of Earth in pure hydrogen. I guess nobody ever told them that over ninety percent of all atoms in the universe are hydrogen.

And how about all those aliens that manage to traverse thousands of light years through interstellar space, yet bungle their arrival by crash-landing on Earth?

Then there were the aliens in the 1977 film Close Encounters of the Third Kind, who, in advance of their arrival, beamed to Earth a mysterious sequence of repeated digits that were eventually decoded to be the latitude and longitude of their upcoming landing site. But Earth longitude has a completely arbitrary starting point — the prime meridian — which passes through Greenwich, England by international agreement. And both longitude and latitude are measured in peculiar unnatural units we call degrees, 360 of which are in a circle. Armed with this much knowledge of human culture, it seems to me that the aliens could have just learned English and beamed the message, “We’re going to land a little bit to the side of Devil’s Tower National Monument in Wyoming. And since we’re coming in a flying saucer we won’t need the runway lights.”

The award for dumbest creature of all time must go to the alien from the original 1983 film Star Trek, The Motion Picture. V-ger, as it called itself (pronounced vee-jer) was an ancient mechanical space probe that was on a mission to explore and discover and report back its findings. The probe was “rescued” from the depths of space by a civilization of mechanical aliens and reconfigured so that it could actually accomplish this mission for the entire universe. Eventually, the probe did acquire all knowledge and, in so doing, achieved consciousness. The Star Trek crew come upon this now-sprawling monstrous collection of cosmic information at a time when the alien was searching for its original creator and the meaning of life. The stenciled letters on the side of the original probe revealed the characters V and ger. Shortly thereafter, Captain Kirk discovers that the probe was Voyager 6, which had been launched by humans on Earth in the late twentieth century. Apparently, the oya that fits between the V and the ger had been badly tarnished and was unreadable. Okay. But I have always wondered how V-ger could have acquired all knowledge of the universe and achieve consciousness yet not know that its real name was Voyager.

Regardless of how Hollywood aliens are portrayed, or how good or bad the films are, we must not stand in denial of the public’s interest in the subject. Let us assume, for the sake of argument, that humans are the only species in the history of life on Earth to evolve high-level intelligence. (I mean no disrespect to other big-brained mammals. While most of them cannot do astrophysics, my conclusions are not substantially altered if you wish to include them.) If life on Earth offers any measure of life elsewhere in the universe, then intelligence must be rare. By some estimates, there have been more than ten billion species in the history of life on Earth. It follows that among all extraterrestrial life forms we might expect no better than about one in ten billion to be as intelligent as we are, not to mention the odds against the intelligent life having an advanced technology and a desire to communicate through the vast distances of interstellar space.

On the chance that such a civilization exists, radio waves would be the communication band of choice because of their ability to traverse the galaxy unimpeded by interstellar gas and dust clouds. But humans on Earth have only understood the electromagnetic spectrum for less than a century. More depressingly put, for most of human history, had aliens tried to send radio signals to earthlings we would have been incapable of receiving them. For all we know, the aliens have already done this and unwittingly concluded that there was no intelligent life on Earth. They would now be looking elsewhere. A more humbling possibility would be if aliens had become aware of the technologically proficient species that now inhabits Earth, yet they had drawn the same conclusion.

Our life-on-Earth bias, intelligent or otherwise requires us to hold the existence of liquid water as a prerequisite to life elsewhere. A planet’s orbit should not be too close to its host star, otherwise the temperature would be too high and the planet’s water content would vaporize. The orbit should not be too far away either, or else the temperature would be too low and the planet’s water content would freeze. In other words, conditions on the planet must allow the temperature to stay within the 180 degree (Fahrenheit) range of liquid water. As in the three-bowls-of-food scene in the fairy tale Goldilocks and the Three Bears, the temperature has to be just right. When I was interviewed about this subject recently on a syndicated radio talk show, the host commented, “Clearly, what you should be looking for is a planet made of porridge!”

While distance from the host planet is an important factor for the existence of life as we know it, other factors matter too, such as a planet’s ability to trap stellar radiation. Venus is a textbook example of this “greenhouse” phenomenon. Visible sunlight that manages to pass through its thick atmosphere of carbon dioxide gets absorbed by Venus’s surface and then re-radiated in the infrared part of the spectrum. The infrared, in turn, gets trapped by the atmosphere. The unpleasant consequence is an air temperature that hovers at about 900 degrees Fahrenheit, which is much hotter than we would expect knowing Venus’s distance to the Sun. At this temperature, lead would swiftly become molten and a 16″ pepperoni pizza will cook in nine seconds.

The discovery of simple, unintelligent life forms elsewhere in the universe (or evidence that they once existed) would be far more likely and, for me, only slightly less exciting than the discovery of intelligent life. Two excellent nearby places to look are the dried riverbeds of Mars, were there may be fossil evidence of life from when waters once flowed, and the subsurface oceans that are theorized to exist under the frozen ice layers of Jupiter’s moon Europa. Once again, the promise of liquid water defines our targets of search.

Other commonly invoked prerequisites for the evolution of life in the universe involve a planet in a stable, nearly circular orbit around a single star. With binary and multiple star systems, which comprise about half of all “stars” in the galaxy, planet orbits tend to be strongly elongated and chaotic, which induces extreme temperature swings that would undermine the evolution of stable life forms. We also require that there be sufficient time for evolution to run its course. High-mass stars are so short-lived (a few million years) that life on an Earth-like planet in orbit around them would never have a chance to evolve.

The set of conditions to support life as we know it are loosely quantified though what is known as the Drake equation, named for the American astronomer Frank Drake (now at the University of California at Santa Cruz). The Drake equation is more accurately viewed as a fertile idea rather than as a rigorous statement of how the physical universe works. It separates the overall probability of finding life in the galaxy into a set of simpler probabilities that correspond to our preconceived notions of the cosmic conditions that are suitable for life. In the end, after you argue with your colleagues about the value of each probability term in the equation, you are left with an estimate for the total number of intelligent, technologically proficient civilizations in the galaxy. Depending on your bias-level, and your knowledge of biology, chemistry, celestial mechanics, and astrophysics, you may use it to estimate from at least one (we humans) up to millions of civilizations in the Milky Way.

If we consider the possibility that we may rank as primitive among the universe’s technologically competent life forms — however rare they may be — then the best we can do is keep alert for signals sent by others because it is far more expensive to send rather than receive them. Presumably, an advanced civilization would have easy-access to an abundant source of energy such as its host star. These are the civilizations that would be more likely to send rather than receive. The search for extraterrestrial intelligence (affectionately known by its acronym “SETI”) has taken many forms. The most advanced efforts today uses a cleverly designed electronic detector that monitors, in its latest version, billions of radio channels in search of a signal that might rise above the cosmic noise. The “SETI At Home” screen saver analyzes real data (downloaded from the internet) for an intelligent signal that rises above the din of cosmic noise. This software has been downloaded by more than 3-million PCs users around the world, which actively taps an astonishing level computing power from your plugged-in PC that would otherwise be doing nothing while you went to the bathroom. Indeed, “SETI At Home” is, by far, the largest computational project in the history of the world. I note that these projects in particular received their start-up funds from The Planetary Society, a 100,000-member organization that, among other objectives, promotes the search for life in the universe. Public support for this enterprise is real and it is deep.

The discovery of extraterrestrial intelligence, if and when it happens, will impart a change in human self-perception that may be impossible to anticipate. If we don’t soon find life elsewhere, what will matter most is that we had not stopped looking. Our species demands that we keep looking. Deep in our soul of curiosity we are intellectual nomads—in search of other places, in search of other life forms because we derive almost as much fulfillment from the search as we do from the discovery.

Gender Analyzer

Haha!! Gender Analyzer (http://www.genderanalyzer.com) thinks Alice’s Astro Info is written by a man:

Results

We think http://alicesastroinfo.wordpress.com is written by a man.

Do You Write About Astronomy?

If you write about astronomy (or something similar) contact Pamela Gay, she’s doing some hard work for the International Year of Astronomy.

From Pamela:

Here is my need: If you are a content provider, can you please email me at pamela@starstryder.com with the following informing:
Site Name, Site URL, RSS URL, Byline, Tagline, if your site is clean/explicit/somewhere inbetween, and information on what type of feed it is (Blog, images, twitter, video, etc). For office purposes only (where the office is the IAU IYA Secretariat), we also need to know who the correct contact person is, and what their email address is.

And here is my request: If you are a content provider, can you please put out a request on your feeds, your Facebook, and your twitter, to help me find the hidden content providers – the grad students telling their stories of the stars and the research scientists silently slaving over their blogs – so that I can help get their voices heard in the Portal to the Universe.

I’m writing to her right now.

Thanks Mike Brown!

Yii! My blog stats just skyrocketed (for me anyway) – and most of the incoming clicks are from Mike Brown’s blog (Mike Brown of multiplicitous dwarf planet discovery fame).

Wow. The net is so interconnected. (That being the point)

Thanks all. Maybe someday you’ll start commenting. Or maybe not. See you!