Showing posts with label science. Show all posts
Showing posts with label science. Show all posts

Saturday, September 21, 2013

Bernie Krause: The voice of the natural world

Bernie Krause has been recording wild soundscapes -- the wind in the trees, the chirping of birds, the subtle sounds of insect larvae -- for 45 years. In that time, he has seen many environments radically altered by humans, sometimes even by practices thought to be environmentally safe. A surprising look at what we can learn through nature's symphonies, from the grunting of a sea anemone to the sad calls of a beaver in mourning.
Bernie Krause's legendary soundscapes uncover nature’s rich sonic tapestry -- along with some unexpected results. 
This has something to do with complexity but I'm not sure what. Each of the environments he records are complex systems (I think). And, the sound of the system must relfect the complexity. But ...

Wednesday, January 30, 2013

The Making of the Atomic Bomb

Really great book - a mix of the history of science and technology with personalities and social-political forces. It reads like a detective story with questions of morality raised but unanswered. The book is long – 886 pages, but it is definitely worth the effort. I’ve collected a few examples from the book that I really liked. I have not put them in quotes but they all come straight from the book. In some cases I’ve added my footnotes to help understand the selection.

I hope that someone writes a screen play around the struggles that the emigrant scientists had with politicians and the military when they tried to convey the potential of the atomic and later the thermonuclear bombs, and their impacts on political systems.

This is a personal selection of excerpts that appealed to me as I read the book. It’s by no means complete. For an excellent review, read the New York Times book review, “The Men Who Made the Sun Rise” by William J. Broad (http://www.nytimes.com/books/99/09/19/specials/rhodes-making.html)

Thursday, April 21, 2011

Art and Science

John Maeda's artilce On Meaningful Observation that I wrote about earlier got me to thinking when I starting playing with the Books Ngram Viewer. How are art and science written about in English? And, how about the makeup of STEM and IDEA that he talked about?

OK I know I'm already addicted to the Books Ngram Viewer. If you are a concept or word person, beware. It is extremely addictive. It's so easy to ask it questions...

One of the wrtiers about the Books Ngram Viewer commented that he thought the tool was going to raise more questions than answer them. So far I agree with that. Everyime I've used it to answer a question, it's raised several more.

Here's the result of the comparison between art and science. I was surprised by the result given the present priority allocated science of late. it shows that the two are coming togehter up to 2000, but art has had more mentions than science over the 200 year history.

There are three questions that immediately jump to my mind upon viewing the graphic:
  1. Why are they cyclical? Both shows cycles of about 20 years in the 1800s, and slow down to about 40 years near 2000. What would cause the cycles?
  2. Why are the cycles slowing down? Isn't everything we do now speeding up? We're all interconnected electronically.
  3. Why are the cycles of art and science synchronized? Aren't they the opposites of one another - protagonists in the struggle for the control over our minds?
STEM is the acronym for science, technology, engineering and mathematics. What's the pattern of usage for these words?

It came as a surprise to me how modern the word technology is. It really didn't get started until the 1960s. Since that's when I graduated from college, I've always known and used the word. It's now used just about as frequently as science, and in many cases probably used interchangeably, although they are vastly different concepts. What caused the little blip in the early 1900s in technology?*

Mathematics was mentioned more in the 1800s, but engineering now surpasses mathematics in usage. But neither come close to science and technology.

On the art side we have IDEA - intuition, design, emotion and art. What's their usage pattern?

Mentions of art have been declining over the past 200 years and are now surpassed by design. That doesn't surprise me as I seem to be very aware of a design movement in the Western world. What caused the design peak in the early 1800s?

Emotion and intuition don't seem to get mentioned much at all. This surprises me because the combination of those two concepts probably drive most of human activities. Is it just our dirty laundry that we don't want to write about?


*Note: Looking at some of the titles of books published in that time suggests that it was the time period of the development of the technologies of natural and man made materials. But I did not draw a comparison sample from other time periods.

Wednesday, April 20, 2011

On Meaningful Observation: Science and Art

On Meaningful Observation, John Maeda, Seed Magazine, 12/27/10

"A silver lining in the dark cloud of any recession—especially this one, thought to be caused by our own greed and excess—is the opportunity it affords us to reexamine our collective values. On the positive side, the nation seems to be as committed as ever to the power of innovation as America’s saving grace. What is less comforting to me as president of an art and design school is how America defines innovation. Do a search on the White House website for the word “innovation” and the top results revolve around technology; talk to any parent with children in public schools and you will hear about arts-education resources diminishing quickly. I feel there is a disconnect between the words “innovation” and “art” that needs to be resolved if the United States is to prevail as the most creative economy in our world.

Public commitments to STEM—science, technology, engineering, math—education abound all over the country. In the government’s mind, these subjects are the key to innovation. As a lifelong STEM student myself, with degrees in electrical engineering and computer science from MIT, I am certainly not one to diminish its value. Yet in recent years even supremely dedicated geeks like me have begun to question the advances that come from purely technological innovation."

***

"...I’ve begun to wonder recently whether STEM needs something to give it some STE(A)M—an “A” for art between the engineering and the math to ground the bits and bytes in the physical world before us, to lift them up and make them human. What if America approached innovation with more than just technology? What if, just like STEM is made up of science, technology, engineering and math, we had IDEA, made of intuition, design, emotion, and art—all the things that make us humans feel, well, human? It seems to me that if we use this moment to reassess our values, putting just a little bit of our humanity back into America’s innovation engines will lead to the most meaningful kind of progress. By doing so, we will find a way back to integrating thinking with making and being and feeling and living so that left- and right-brained creativity can lift our economy back into the sky."

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Tuesday, March 15, 2011

Design Fiction

I heard Bruce Sterling briefly speak last night at Plutopia 2011, SXSW in Austin about "design fiction". It's an intriguing concept, a concept that is searching for its meaning. Sterling has blogged on the subject.

Sterling quotes Dr. Stuart Candy's definition of design fiction. “Design fiction has emerged as a pre-eminent tool for designing, challenging and understanding speculative future realities. However, design fiction aims to make the extraordinary ordinary. It merges the elastic creativity of science fiction with everyday matter of fact reality. Furthermore, in using current media conventions as a way to express ideas about the future, design fiction is able to twist reality and trick us into accepting the fantastic as possibility.

“This process seems to afford us a moment in which we can reframe our expectations of reality. Consequently, it alters our conditional assumptions and stories we are using to define our future…”

Jullian Bleeker, Near Future Laboratory, blogged a definition of design fiction. "Design Fiction is making things that tell stories. It’s like science-fiction in that the stories bring into focus certain matters-of-concern, such as how life is lived, questioning how technology is used and its implications, speculating bout the course of events; all of the unique abilities of science-fiction to incite imagination-filling conversations about alternative futures. It’s about reading P.K. Dick as a systems administrator, or Bruce Sterling as a software design manual. It’s meant to encourage truly undisciplined approaches to making and circulating culture by ignoring disciplines that have invested so much in erecting boundaries between pragmatics and imagination

When you trace the knots that link science, fact and fiction you see the fascinating crosstalk between and amongst ideas and their materialization. In the tracing you see the simultaneous knowledge-making activities, speculating and pondering and realizing that things are made only by force of the imagination. In the midst of the tangle, one begins to see that fact and fiction are productively indistinguishable.

Design is about the future in a way similar to science fiction. It probes imaginatively and materializes ideas, the way science fiction materializes ideas, oftentimes through stories. What are the ways that all of these things — these canonical ways of making and remaking and imagining the world — can come together in a productive way, without hiding the details and without worrying about the nonsense of strict disciplinary boundaries?"

Thursday, September 23, 2010

The Electrocardiogram, Complex Systems Science and Fundamental Laws of Biology

Tim Buchman
2010-08-18

The heart’s electric currents have been known for one hundred years, but three-quarters of a century later, the ECG is still giving up its secrets. Buchman explains the basic ECG signal and its relationship with the function of the human heart. He then turns to complex systems science to discover hidden structure within the ECG. These lie in frequencies (akin to musical tones); in variability (akin to the change in directions of a walker choosing not-quite-random steps); and in network design (akin to adding/losing elements of a power grid). Finally, he explores the ways in which the ECG might point towards the existence of fundamental laws of biology. Armed with these fundamental laws, we ask how complex systems science might allow us to guide care in the intensive care unit.

The lecture is generously underwritten by Los Alamos National Bank and by Maureen Mestas Abrams, Associate Broker, Prudential Santa Fe Real Estate

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Scientific Commons

ScientificCommons is a project of the University of St. Gallen Institute for Media and Communications Management. The major aim of the project is to develop the world’s largest archive of scientific knowledge with fulltexts freely accessible to the public.

ScientificCommons includes a search engine for publications and author profiles. It also allows the user to turn searches into customized RSS feeds of new publications. ScientificCommons also provides a fulltext caching service for researchers.

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Thursday, June 3, 2010

Towards a Science of Simplicity

Simplicity: We know it when we see it -- but what is it, exactly? In this funny, philosophical talk, George Whitesides chisels out an answer.





In his legendary career in chemistry, George Whitesides has been a pioneer in microfabrication and nanoscale self-assembly. Now, he's fabbing a diagnostic lab on a chip.


Intriguing talk.

It leads to a paradox: The more simple things we create, the more complexity we enable in our society.

Wednesday, January 6, 2010

Science as an Innovation Commons

"If I have seen further it is by standing on the shoulders of Giants" -- Isaac Newton in: Letter to Robert Hooke, February 5, 1675/1676*

Science has more or less successfully had an innovation commons for years. The development of the "scientific method" is credited to Roger Bacon. At times the commons has been limited to specific countries, or regions or alliances. And, at various times threats like trade imbalances, wars, the Cold War, military threats or terrorism have placed limitations upon who can participate and what types of sharing can occur. However, the trend seems to be to expand the science commons to the whole earth.

I've been thinking about this while working on the idea of an innovation commons. I have not researched this issue, I'm just drawing on past knowledge and experience, but there seems to be several principles that one can derive from science:

* The very strong culture of referencing and footnoting contributions.
* A strong culture against plagiarism
* Mechanisms for contributions to exist for a very long time.
* Mechanisms to index and file contributions
* Libraries with low barriers to entry that provide access
* Cultures and enablers that incent participation
* Reputation systems
* An inherent belief in the system not only by participants but by those who administer participants as well
* Institutions that foster the creation of knowledge
* Professional associations that facilitate the commons and help participants to develop
* In some cases, government funding


* See http://c2.com/cgi/wiki?ShouldersOfGiants for more information. This quote, which I've used before, is not nearly as impressive when you understand the context. But, out of context, it makes a good point.

Wednesday, September 2, 2009

Where Have You Gone, Bell Labs?

BusinessWeek
From kurzweil.net

The root of the current lack of new, high-quality job creation is the massive scaling back of science and engineering research, which has in the past made enormous contributions to science, technology, and the economy, including the creation of millions of high-paying jobs, says management consultant Adrian Slywotzky.

Here's what's needed to get that model back on track, he suggests:

• Clear national goals in two or three key areas, such as carbon-free energy and preventive medicine.

• Government commitment of $10 billion a year above and beyond spending for national agencies to jump-start new industrial research labs.

• Government tax credits for corporations that commit to spending 5% to 10% (or more) of R&D on basic research.

More

I have some mixed feeling about this article. Most of my life I would have agreed strongly with the sentiments of the author. I am a graduate of 30 years with IBM as a technologist, technology manager, internal entrepreneur and cultural change agent. And, now 20 years as a futurist and consultant. My instinctive reaction would have been "right on". But, now I'm not sure.

For years we have worshiped at the altar of economic value created for the stockholder. In business this means the rationalization of all its operations to achieving that goal. And, with that, and globalization, comes the stockholder's short term perspective. Investment in research with uncertain and long term payback gets reduced or cut off.

Unfortunately we've adopted a parallel belief system in education. So, we can't depend upon our universities to provide the research either. And, as we continue to inflict more measurements on education all the way down through public schools, we emphasize short term payback.

The change described in the article is either cyclical or its structural. If it's cyclical, then all we have to is wait for the economic flowering when big companies are awash in profits, and in their wisdom, they will invest these profits in research for the future.

If the change is structural, then "big research" is gone forever. There are numerous indications in many different industries that the trends of decentralization, disintemediation, openness and fragmentation are real and structural. If that is so, then what would research look like? How would it work? What kind of research could be done in a fragmented, disintermediated, open and decentralized way?

I don't know. And, I've not heard from anyone that does know.

But, isn't time that we begin to look at this issue head on. If not, and someone else does, we'll really suffer economically in the future.

It's like Morgan Freeman's character said in The Shawshank Redemption, "Get busy living, or get busy dying."

Tuesday, April 28, 2009

Science and Complexity

Warren Weaver
Rockefeller Foundation, New York City

"Science and Complexity", American Scientist, 36: 536 (1948).
Based upon material presented in Chapter 1' "The Scientists Speak," Boni & Gaer Inc.,1947. All rights reserved.

Science has led to a multitude of results that affect men's lives. Some of these results are embodied in mere conveniences of a relatively trivial sort. Many of them, based on science and developed through technology, are essential to the machinery of modern life. Many other results, especially those associated with the biological and medical sciences, are of unquestioned benefit and comfort. Certain aspects of science have profoundly influenced men's ideas and even their ideals. Still other aspects of science are thoroughly awesome.

How can we get a view of the function that science should have in the developing future of man? How can we appreciate what science really is and, equally important, what science is not? It is, of course, possible to discuss the nature of science in general philosophical terms. For some purposes such a discussion is important and necessary, but for the present a more direct approach is desirable. Let us, as a very realistic politician used to say, let us look at the record. Neglecting the older history of science, we shall go back only three and a half centuries and take a broad view that tries to see the main features, and omits minor details. Let us begin with the physical sciences, rather than the biological, for the place of the life sciences in the descriptive scheme will gradually become evident.

Problems of Simplicity
Speaking roughly, it may be said that the seventeenth, eighteenth, and nineteenth centuries formed the period in which physical science learned variables, which brought us the telephone and the radio, the automobile and the airplane, the phonograph and the moving pictures, the turbine and the Diesel engine, and the modern hydroelectric power plant.

The concurrent progress in biology and medicine was also impressive, but that was of a different character. The significant problems of living organisms are seldom those in which one can rigidly maintain constant all but two variables. Living things are more likely to present situations in which a half-dozen, or even several dozen quantities are all varying simultaneously, and in subtly interconnected ways. Often they present situations in which the essentially important quantities are either non-quantitative, or have at any rate eluded identification or measurement up to the moment. Thus biological and medical problems often involve the consideration of a most complexly organized whole. It is not surprising that up to 1900 the life sciences were largely concerned with the necessary preliminary stages in the application of the scientific method-preliminary stages which chiefly involve collection, description, classification, and the observation of concurrent and apparently correlated effects. They had only made the brave beginnings of quantitative theories, and hardly even begun detailed explanations of the physical and chemical mechanisms underlying or making up biological events.

To sum up, physical science before 1900 was largely concerned with two-variable problems of simplicity; whereas the life sciences, in which these problems of simplicity are not so often significant, had not yet become highly quantitative or analytical in character.

Problems of Disorganized Complexity
Subsequent to 1900 and actually earlier, if one includes heroic pioneers such as Josiah Willard Gibbs, the physical sciences developed an attack on nature of an essentially and dramatically new kind. Rather than study problems which involved two variables or at most three or four, some imaginative minds went to the other extreme, and said: "Let us develop analytical methods which can deal with two billion variables." That is to say, the physical scientists, with the mathematicians often in the vanguard, developed powerful techniques of probability theory and of statistical mechanics to deal with what may he called problems of disorganized complexity.

This last phrase calls for explanation. Consider first a simple illustration in order to get the flavor of the idea. The classical dynamics of the nineteenth century was well suited for analyzing and predicting the motion of a single ivory ball as it moves about on a billiard table. In fact, the relationship between positions of the ball and the times at which it reaches these positions forms a typical nineteenth-century problem of simplicity. One can, but with a surprising increase in difficulty, analyze the motion of two or even of three balls on a billiard table. There has been, in fact, considera~e study of the mechanics of the standard game of billiards. But, as soon as one tries to analyze the motion of ten or fifteen balls on the table at once, as in pool, the problem becomes unmanageable, not because there is any theoretical difficulty, but just because the actual labor of dealing in specific detail with so many variables turns out to be impracticable.

Imagine, however, a large billiard table with millions of balls rolling over its surface, colliding with one another and with the side rails. The great surprise is that the problem now becomes easier, for the methods of statistical mechanics are applicable. To be sure the detailed history of one special ball can not be traced, but certain important questions can be answered with useful precision, such as: On the average how many balls per second hit a given stretch of rail? On the average how far does a ball move before it is hit by some other ball? On the average how many impacts per second does a ball experience?

Earlier it was stated that the new statistical methods were applicable to problems of disorganized complexity. How does the word "disorganized" apply to the large billiard table with the many balls? It applies hecu~ise the methods of statistical mechanics are valid only when they are distributed, in their positions and motions, in a helter-skelter, that is to say a disorganized, way. For example, the statistical methods would not apply if someone were to arrange the balls in a row parallel to one side rail of the table, and then start them all moving in precisely parallel paths perpendicular to the row in which they stand. Then the balls would never collide with each other nor with two of the rails, and one would not have a situation of disorganized complexity.

From this illustration it is clear what is meant by a problem of disorganized complexity. It is a problem in which the number of variables Is very large, and one in which each of the many variables has a behavior which is individually erratic, or perhaps totally unknown. However, in spite of this helter-skelter, or unknown, behavior of all the individual variables, the system as a whole possesses certain orderly and analyzable average properties.

A wide range of experience comes under the label of disorganized complexity. The method applies with increasing precision when the number of variables increases. It applies with entirely useful precision to the experience of a large telephone exchange, in predicting the average frequency of calls, the probability of overlapping calls of the same number, etc. It makes possible the financial stability of a life insurance company. Although the company can have no knowledge whatsoever concerning the approaching death of any one individual, it has dependable knowledge of the average frequency with which deaths will occur.

This last point is interesting and important. Statistical techniques are not restricted to situations where the scientific theory of the individual events is very well known, as in the billiard example where there is a beautifully precise theory for the impact of one ball on another. This technique can also be applied to situations, like the insurance example, where the individual event is as shrouded in mystery as is the chain of complicated and unpredictable events associated with the accidental death of a healthy man.

The examples of the telephone and insurance companies suggests a whole array of practical applications of statistical techniques based on disorganized complexity. In a sense they are unfortunate examples, for they tend to draw attention away from the more fundamental use which science makes of these new techniques. The motions of the atoms which form all matter, as well as the motions of the stars which form the universe, come under the range of these new techniques. The fundamental laws of heredity are analyzed by them. The laws of thermodynamics, which describe basic and inevitable tendencies of all physical systems, are derived from statistical considerations. The entire structure of modem physics, our present concept of the nature of the physical universe, and of the accessible experimental facts concerning it rest on these statistical concepts. Indeed, the whole question of evidence and the way in which knowledge can be inferred from evidence are now recognized to depend on these same statistical ideas, so that probability notions are essential to any theory of knowledge itself.

Problems of Organized Complexity

This new method of dealing with disorganized complexity, so powerful an advance over the earlier two-variable methods, leaves a great field untouched. One is tempted to oversimplify, and say that scientific methodology went from one extreme to the other-from two variables to an astronomical number — and left untouched a great middle region. The importance of this middle region, moreover, does not depend primarily on the fact that the number of variables involved is moderate — large compared to two, but small compared to the number of atoms in a pinch of salt. The problems in this middle region, in fact, will often involve a considerable number of variables. The really important characteristic of the problems of this middle region, which science has as yet little explored or conquered, lies in the fact that these problems, as contrasted with the disorganized situations with which statistics can cope, show the essential feature of organization. In fact, one can refer to this group of problems as those of organized complexity.

What makes an evening primrose open when it does? Why does salt water fail to satisfy thirst? Why can one particular genetic strain of microorganism synthesize within its minute body certain organic compounds that another strain of the same organism cannot manufacture? Why is one chemical substance a poison when another, whose molecules have just the same atoms but assembled into a mirror-Image pattern, is completely harmless? Why does the amount of manganese in the diet affect the maternal instinct of an animal? What is the description of aging in biochemical terms? What meaning is to be assigned to the question:

Is a virus a living organism? What is a gene, and how does the original genetic constitution of a living organism express itself in the developed characteristics of the adult? Do complex protein molecules "know how" to reduplicate their pattern, and is this an essential clue to the problem of reproduction of living creatures? All these are certainly complex problems, but they are not problems of disorganized complexity, to which statistical methods hold the key. They are all problems which involve dealing simultaneously with a sizable number of factors which are interrelated into an organic whole. They are all, in the language here proposed, problems of organized complexity.

On what does the price of wheat depend?This too is a problem of organized complexity. A very substantial number of relevant variables is involved here, and they are all interrelated in a complicated, but nevertheless not in helter-skelter, fashion.

How can currency be wisely and effectively stabilized? To what extent is it safe to depend on the free interplay of such economic forces as supply and demand? To what extent must systems of economic control be employed to prevent the wide swings from prosperity to depression? These are also obviously complex problems, and they too involve analyzing systems which are organic wholes, with their parts in close interrelation.

How can one explain the behavior pattern of an organized group of persons such as a labor union, or a group of manufacturers, or a racial minority? There are clearly many factors involved here, but it is equally obvious that here also something more is needed than the mathematics of averages. With a given total of national resources that can be brought to bear, what tactics and strategy will most promptly win a war, or better: what sacrifices of present selfish interest will most effectively con-tribute to a stable, decent. and peaceful world?

These problems-and a wide range of similar problems in the biological, medical, psychological, economic, and political sciences-are just too complicated to yield to the old nineteenth~century techniques which were so dramatically successful on two-, three-, or four-variable problems of simplicity. These new problems, moreover, cannot be handled with the statistical techniques so effective in describing average behavior in problems of disorganized complexity.

These new problems, and the future of the world depends on many of them, requires science to make a third great advance, an advance that must be even greater than the nineteenth~century conquest of problems of simplicity or the twentieth~century victory over problems of disorganized complexity. Science must, over the next 50 years, learn to deal with these problems of organized complexity.

Is there any promise on the horizon that this new advance can really be accomplished? There is much general evidence, and there are two recent instances of especially promising evidence. The general evidence consists in the fact that, in the minds of hundreds of scholars all over the world, important, though necessarily minor, progress is already being made on such problems. As never before, the quantitative experimental methods and the mathematical analytical methods of the physical sciences are being applied to the biological, the medical, and even the social sciences. The results are as yet scattered, but they are highly promising. A good illustration from the life sciences can be seen by a comparison of the present situation in cancer research with what it was twenty-five years ago. It is doubtless true that we are only scratching the surface of the cancer problem, but at least there are now some tools to dig with and there have been located some spots beneath which almost surely there is pay-dirt. We know that certain types of cancer can be induced by certain pure chemicals. Something is known of the inheritance of susceptibility to certain types of cancer. Million-volt rays are available, and the even more intense radiations made possible by atomic physics. There are radioactive isotopes, both for basic studies and for treatment. Scientists are tackling the almost incredibly complicated story of the biochemistry of the aging organism. A base of knowledge concerning the normal cell is being established that makes it possible to recognize and analyze the pathological cell. However distant the goal, we are now at last on the road to a successful solution of this great problem.

In addition to the general growing evidence that problems of organized complexity can be successfully treated, there are at least two promising bits of special evidence. Out of the wickedness of war have come two new developments that may well be of major importance in helping science to solve these complex twentieth-century problems.

The first piece of evidence is the wartime development of new types of electronic computing devices. These devices are, in flexibility and capacity, more like a human brain than like the traditional mechanical computing device of the past. They have memories in which vast amounts of information can be stored. They can be "told" to carry out computations of very intricate complexity, and can be left unattended while they go forward automatically with their task. The astounding speed with which they proceed is illustrated by the fact that one small part of such a machine, if set to multiplying two ten-digit numbers, can perform such multiplications some 40,000 times faster than a human operator can say 'Jack Robinson." This combination of flexibility, capacity, and speed makes it seem likely that such devices will have a tremendous impact on science. They will make it possible to deal with problems which previously were too complicated, and, more importantly, they will justify and inspire the development of new methods of analysis applicable to these new problems of organized complexity.

The second of the wartime advances is the "mixed-team" approach of operations analysis. These terms require explanation, although they are very familiar to those who were concerned with the application of mathematical methods to military affairs.

As an illustration, consider the over-all problem of convoying troops and supplies across the Atlantic. Take into account the number and effectiveness of the naval vessels available, the character of submarine attacks, and a multitude of other factors, including such an imponderable as the dependability of visual watch when men are tired, sick, or bored. Considering a whole mass of factors, some measurable and some elusive, what procedure would lead to the best over-all plan, that is, best from the combined point of view of speed, safety, cost, and so on? Should the convoys be large or small, fast or slow? Should they zigzag and expose themselves longer to possible attack, or dash in a speedy straight line? How are they to be organized, what defenses are best, and what organization and instruments should be used for watch and attack?

The attempt to answer such broad problems of tactics, or even broader problems of strategy, was the job during the war of certain groups known as the operations analysis groups. Inaugurated with brilliance by the British, the procedure was taken over by this country, and applied with special success in the Navy's anti-submarine campaign and in the Army Air Forces. These operations analysis groups were, moreover, what may be called mixed teams. Although mathematicians, physicists, and engineers were essential, the best of the groups also contained physiologists, biochemists, psychologists, and a variety of representatives of other fields of the biochemical and social sciences. Among the outstanding members of English mixed teams. for example, were an endocrinologist and an X-ray crystallographer. Under the pressure of war, these mixed teams pooled their resources and focused all their different insights on the common problems. It was found, in spite of the modern tendencies toward intense scientific specialization, that members of such diverse groups could work together and could form a unit which was much greater than the mere sum of its parts. It was shown that these groups could tackle certain problems of organized complexity, and get useful answers.

It is tempting to forecast that the great advances that science can and must achieve in the next fifty years will be largely contributed to by voluntary mixed teams, somewhat similar to the operations analysis groups of war days, their activities made effective by the use of large, flexible, and highspeed computing machines. However, it cannot be assumed that this will be the exclusive pattern for future scientific work, for the atmosphere of complete intellectual freedom is essential to science. There will always, and properly, remain those scientists for whom intellectual freedom is necessarily a private affair. Such men must, and should, work alone. Certain deep and imaginative achievements are probably won only in such a way. Variety is, moreover, a proud characteristic of the American way of doing things. Competition between all sorts of methods is good. So there is no intention here to picture a future in which all scientists are organized into set patterns of activity. Not at all. It is merely suggested that some scientists will seek and develop for themselves new kinds of collaborative arrangements; that these groups will have members drawn from essentially all fields of science; and that these new ways of working, effectively instrumented by huge computers, will contribute greatly to the advance which the next half century will surely achieve in handling the complex, but essentially organic, problems of the biological and social sciences.

The Boundaries of Science
Let us return now to our original questions. What is science? What is not science? What may be expected from science?

Science clearly is a way of solving problems-not all problems, but a large class of important and practical ones. The problems with which science can deal are those in which the predominant factors are subject to the basic laws of logic, and are for the most part measurable. Science is a way of organizing reproducible knowledge about such problems; of focusing and disciplining imagination; of weighing evidence; of deciding what is relevant and what is not; of impartially testing hypotheses; of ruthlessly discarding data that prove to be inaccurate or inadequate; of finding, interpreting, and facing facts, and of making the facts of nature the servants of man.

The essence of science is not to be found in its outward appearance, in its physical manifestations; it is to be found in its inner spirit. That austere but exciting technique of inquiry known as the scientific method is what is important about science. This scientific method requires of its practitioners high standards of personal honesty, open-mindedness, focused vision, and love of the truth. These are solid virtues, but science has no exclusive lien on them. The poet has these virtues also, and often turns them to higher uses.

Science has made notable progress in its great task of solving logical and quantitative problems. Indeed, the successes have been so numerous and striking, and the failures have been so seldom publicized, that the average man has inevitably come to believe that science is just about the most spectacularly successful enterprise man ever launched. The fact is, of course, that this conclusion is largely justified.

Impressive as the progress has been, science has by no means worked itself out of a job. It is soberly true that science has, to date, succeeded in solving a bewildering number of relatively easy problems, whereas the hard problems, and the ones which perhaps promise most for man's future, lie ahead.

We must, therefore, stop thinking of science in terms of its spectacular successes in solving problems of simplicity. This means, among other things, that we must stop thinking of science in terms of gadgetry. Above all, science must not be thought of as a modern improved black magic capable of accomplishing anything and everything.

Every informed scientist, I think, is confident that science is capable of tremendous further contributions to human welfare. It can continue to go forward in its triumphant march against physical nature, learning new laws, acquiring new power of forecast and control, making new material things for man to use and enjoy. Science can also make further brilliant contributions to our understanding of animate nature, giving men new health and vigor, longer and more effective lives, and a wiser understanding of human behavior. Indeed, I think most informed scientists go even further and expect that the precise, objective, and analytical techniques of science will find useful application in limited areas of the social and political disciplines.

There are even broader claims which can be made for science and the scientific method. As an essential part of his characteristic procedure, the scientist insists on precise definition of terms and clear characterization of his problem. It is easier, of course, to define terms accurately in scientific fields than in many other areas. It remains true, however, that science is an almost overwhelming illustration of the effectiveness of a well-defined and accepted language, a common set of ideas, a common tradition. The way in which this universality has succeeded in cutting across barriers of time and space, across political and cultural boundaries, is highly significant. Perhaps better than in any other intellectual enterprise of man, science has solved the problem of communicating ideas, and has demonstrated the world-wide cooperation and community of interest which then inevitably results.

Yes, science is a powerful tool, and it has an impressive record. But the humble and wise scientist does not expect or hope that science can do everything. He remembers that science teaches respect for special competence, and he does not believe that every social, economic, or political emergency would be automatically dissolved if "the scientists" were only put into control. He does not-with a few aberrant exceptions~expect science to furnish a code of morals, or a basis for esthetics. He does not expect science to furnish the yardstick for measuring, nor the motor for controlling, man's love of beauty and truth, his sense of value, or his convictions of faith. There are rich and essential parts of human life which are alogical, which are immaterial and non-quantitative in character, and which cannot be seen under the microscope, weighed with the balance, nor caught by the most sensitive microphone.

If science deals with quantitative problems of a purely logical character, if science has no recognition of or concern for value or purpose, how can modern scientific man achieve a balanced good life, in which logic is the companion of beauty, and efficiency is the partner of virtue:

In one sense the answer is very simple: our morals must catch up with our machinery. To state the necessity, however, is not to achieve it. The great gap, which lies so forebodingly between our power and our capacity to use power wisely, can only be bridged by a vast combination of efforts. Knowledge of individual and group behavior must be improved. Communication must be improved between peoples of different languages and cultures, as well as between all the varied interests which use the same language, but often with such dangerously differing connotations. A revolutionary advance must be made in our understanding of economic and political factors. Willingness to sacrifice selfish short-term interests, either personal or national, in order to bring about long-term improvement for all must be developed.

None of these advances can be won unless men understand what science really is; all progress must be accomplished in a world in which modern science is an inescapable, ever-expanding influence.

Thursday, March 19, 2009

Science and Religion

In an article in March 8, 2009 edition of the Austin American Statesman, “Primed to Challenge Evolution in Schools: Official Believes Theory Has Holes, Wants that Taught”, Bryan dentist Don McLeroy, chairman of the Texas State Board of Education, is quoted as saying, “Everything that had a beginning we can say had a cause. And now science definitely says that the universes had a beginning. Therefore the universe had had a cause. And that cause is God.” The paper reports that he is a young earth creationist that believes that God created the earth between 6,000 and 10,000 years ago. McLeroy points to the sudden, in geologic terms, appearance of complexity as a reason to not accept evolution as the best explanation we have for the way life changes in the world.

This is a complex issue, no pun intended, and I do not expect my brief criticism of his actions to change his beliefs, nor do I want to. And, that’s the point. We have a right in America to have whatever religious beliefs we want. But our practice of those beliefs can’t impinge on the rights of others.

What no one has the right to do is, as an official or instrument of governance, to teach all children in public schools a specific religious belief or system of religious beliefs. The struggle between religion and government is an old one going back in history thousands of years.

History informs us that any attempt by any nation to either define a state religion or prohibit any form of religion is eventually doomed to failure. As a result, almost all formal religious groups support the principle of the separation of church and state.

The phrase “separation of church and state” is derived from a letter written by Thomas Jefferson in 1802 to a group identifying themselves as the Danbury Baptists. In that letter, referencing the First Amendment to the United States Constitution, Jefferson writes:

“Believing with you that religion is a matter which relies solely between Man and his God, that he owes account to none other for his faith or his worship, that the legitimate powers of the government reach actions only, and not opinions, I contemplate with sovereign reverence that act of the whole American people which declared that their legislature should ‘make no law respecting an establishment of religion, or prohibiting the free exercise thereof,’ thus building a wall of separation between Church and State.”

The founders of the United States valued this principle so strongly that it became the first amendment to the constitution.

In his book, The Spirit of Democratic Capitalism (2002), Michael Novak, a theologian, deeply steeped in the Catholic tradition, a historian, philosopher and an economist, identifies three principles of the American democratic system – free market capitalism, an involved polity in a representative democracy and a pluralistic cultural/moral system. These three principles have to be strong, vital and separate from each other. (See Our Cultural Moral Institutions Have Failed Us )

Alexis de Tocqueville, after studying the American form of democracy for the French government, wrote Democracy in America (1835). One of his findings was Americans’ love of organizing into groups. “Americans of all ages, all stations of life, and all types of disposition are forever forming associations...In democratic countries knowledge of how to combine is the mother of all other forms of knowledge; on its progress depends that of all the others.” A pluralistic moral/cultural system is a great strength. Out of our differences of values and knowledge can come wisdom if we learn how to have conversations. Conversation, which from the roots of the word means turning around together, is not dialog, compromise or debate. Conversation is not a zero sum process. It can result in thoughts that transcend the thoughts of the individuals engaged in it. No one loses and everyone gains.

Modern science, an essential part of democratic capitalism, is not about absolutes, although some science is taught that way. The scientific method is a great contribution to the development of knowledge of our physical world. Some of the first written thoughts about this method go back to Ibn al-Haytham or Alhazen, (965–1039) in Basra, Persia. The scientific method refers to techniques for investigating phenomena, acquiring new knowledge, or correcting and integrating previous knowledge. To be termed scientific, a method of inquiry must be based on gathering observable, empirical and measurable evidence subject to specific principles of reasoning. A scientific method consists of the collection of data through observation and experimentation, prediction, and the formulation and testing of hypotheses.

Thomas Kuhn in the Structure of Scientific Revolutions (1962) teaches us how scientific knowledge advances. When the scientific community is reasonably satisfied with a body of knowledge (i.e. it explains the world sufficiently well for the times), it is collected together into a paradigm. This paradigm is then used over and over to puzzle out solutions to problems. As time goes by, problems are indentified that seem resistant to the accepted paradigm. These are set aside for the time being awaiting better knowledge or equipment. When enough of these anomalies have accumulated, unrest drives deeper thought and experimentation. Eventually a breakthrough occurs and the new paradigm is created that now solves the old and new problems. And, the process begins again. This process occurs in all knowledge, not just scientific knowledge. Kurt Godel (1906 – 1978) proved mathematically that all closed systems have inherent residual errors. Every time the search for knowledge is enclosed within a system and paradigm created, we know that we will find errors.

Evolution is the best paradigm we have for explaining how life on earth developed in the past, is developing now, and will develop in the future. Are there anomalies? Yes. But it is not science to ascribe those anomalies to a supernatural being. Should we teach about those anomalies? Yes. But they should be taught at the stage of development of a child’s mind where the anomalies become a challenge to solve, not the end of knowledge. Besides, why would a child want to learn something difficult if you start with all the things that what your teaching doesn’t do. We start children with simple Newtonian mechanics not quantum mechanics. Why? Because the concepts are easier to grasp and they work for almost all problems they will have to solve.

There are mysteries at the edge of our knowledge and we want children to be excited by those mysteries, to own the thought that they can resolve some of those mysteries. There should be no fear of this process. There will always be mysteries at the edge of our knowledge.

"As we acquire more knowledge, things do not become more comprehensible but more mysterious."
Albert Einstein

Aristotle (384 – 322 bc) posited that there were four causes of reality – a material cause, a formal cause, a productive cause and a final cause. In his view all of reality was driven by this linear process. In 1992, Marshal McLuhan posited the tetrad, or four laws. He saw these as four simultaneous processes governing change – enhancing, reversing, retrieving and obsolescencing. In complexity theory, we now understand that for a wide range of physical phenomena, the cause – effect relationship is broken. For these complex systems one time a small cause will have little or no effect and the next time that same small cause will result in a large effect. The amazing part of this story is that this phenomena is ubiquitous and it lay hidden in our full view until the 1960s. We also now know that complex organization can emerge from what appears to be randomness very quickly. And, even more amazing is the fact that these complex systems exist exists where life exists, at the boundary between order and chaos.

So Mr. McLeroy teach science in science classes and textbooks, and teach your religion within your religion. That is your right, and it is my right not to have your religious views taught to my grandchildren in an educational system I pay for and is an instrument of government.

Tuesday, February 10, 2009

Inspiring 21st Century Scientists and Citizens to Explore a Complex World

Santa Fe Institute

"The core problem is that our education and training systems were built for another era. We can get where we must go only by changing the system itself." —National Center on Education and the Economy 2007, Tough Choices for Tough Times

Learn@sfi is educating the next generation of scientists and citizens. Since 1984, SFI’s leadership role in multidisciplinary research has provided the foundation for educational and outreach programs that challenge the next generation’s brightest scholars and inspire the broader population to think critically about the complex problems facing science and society today.

The learn@sfi philosophy seeks to help students, educators and citizens understand the complex, interacting systems that make up the world around us. Programs for students of all ages and backgrounds prepare today’s scientists, inspire new communities, improve pedagogical methods, and build the foundation for systemic, long-term change in science education.

The study of complex systems through a multidisciplinary approach offers a powerful framework for improving science literacy in all citizens and educating the next generation of scientists, born into a networked world and comfortable with thinking across disciplinary boundaries.

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Inspiring 21st Century Scientists and Citizens to Explore a Complex World

Santa Fe Institute

"The core problem is that our education and training systems were built for another era. We can get where we must go only by changing the system itself." —National Center on Education and the Economy 2007, Tough Choices for Tough Times

Learn@sfi is educating the next generation of scientists and citizens. Since 1984, SFI’s leadership role in multidisciplinary research has provided the foundation for educational and outreach programs that challenge the next generation’s brightest scholars and inspire the broader population to think critically about the complex problems facing science and society today.

The learn@sfi philosophy seeks to help students, educators and citizens understand the complex, interacting systems that make up the world around us. Programs for students of all ages and backgrounds prepare today’s scientists, inspire new communities, improve pedagogical methods, and build the foundation for systemic, long-term change in science education.

The study of complex systems through a multidisciplinary approach offers a powerful framework for improving science literacy in all citizens and educating the next generation of scientists, born into a networked world and comfortable with thinking across disciplinary boundaries.

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