in article [email hidden], John Wilkins at
[email hidden] wrote on 10/22/03 8:23 AM:
Quoted message said:Guy Hoelzer said:in article [email hidden], John Wilkins at [email hidden] wrote on
10/17/03 8:33 AM:
Quoted message said:Guy Hoelzer <[email hidden]> wrote:
> in article [email hidden], John Wilkins at [email hidden] wrote on
> 10/14/03 10:27 PM:
>
>> Guy Hoelzer <[email hidden]> wrote:
>>
>>>> It seems to me a mistake to say there is this "thing", evolution, and ask what is most
>>>> important to it the way we might ask what is a critical path in a manufacturing process.
>>>
>>> Hmm. This seems like a deep difference between our views. I see a universe filled with
>>> entities and processes, and these are often entangled because entities are always products of
>>> processes. By this I mean more than products of past processes. I think that all physical
>>> entities are the products of past and current processes, even if the current processes are
>>> merely slowing the rate of decay (e.g., the tension of forces that hold a rock together). You
>>> may have noticed that I am fond of pointing to logical connections between evolution as a
>>> process (a single processes that can also be decomposed into sub-processes like natural
>>> selection, drift, and mutation) and weather systems as processes. The main reason I like to
>>> do this is to emphasize that evolution is a physically manifested process like a storm. I
>>> argue, for example, that a convection cell in the atmosphere is both a process and a "thing"
>>> with agency (a cause of effects), and I think that evolution is in fact a similar sort of
>>> "thing". I think that evolution is not separable from the biosphere in the same sense that
>>> convection is separable from a convection cell.
>>
>> For a deep division we agree extraordinarily.
>>
>> But is "weather" a thing?
>
> I would say not, but I would say that a particular storm is a thing. I see the biosphere as a
> storm that has persisted for billions of years.
Well in one way you might be right - it is a phenomenal individual - that is to say, we could
locate it in time and space and say "look at what the surface of that planet is doing" (had we
but time enough and space). But my question was alittle more specific - is it a single cohesive
individual? Is it, in short, a single system? Is it one process?
That is my position. Individual tornados, hurricane, and convection cells are each single systems
in the same sense that you and I are single systems.
But I am not a single system in some ways. I am dependent on the massive number of endosymbionts I
support. I require a constant environment with a ready source of food. I must live, because it is
an autapomorphy of my species, in society.
I agree with all of this, so I would have started with the word "And" rather than "But". All natural
systems are open and communicate with the external environment. They must all be externally fueled
and release energy/matter/information back to the outside. They can also be perturbed by outside
influences and cause perturbations to other systems.
Regarding the "John Wilkins" system, you hinted at an excellent point. Those endosymbionts are
essential components of the "John Wilkins" system. They are part of the system, rather than being
external to it. Most systems that we consider, probably all biological systems, are composed of
elements that are themselves complex dynamical systems. Hierarchy theory (sensu Stan Salthe) has
much to say on this point. It seems to me that there is also no general reason to expect that
particular systems must be restricted to participating as elements in only one higher order system.
Many humans, for example, participate in several institutional social systems (e.g., corporations,
families, churches, ...), as well as biological and physical systems. Conflicts of interest
regarding the behavior of "particles" participating in multiple higher order systems would
inevitably arise, but I don't see why this would prevent such "divided loyalties" from occurring.
Quoted message said:Quoted message said:Quoted message said:Now for both weather and evolution, I think it is a series of occasionally coupled systems, and
mostly decoupled.
I think I agree, but I if I am interpreting your comment correctly, I would also argue that all
coherent systems can be statistically decomposed in this way. You, for example, can be decomposed
into organ systems, organs, or cells, each of which exhibits much more tightly coupled dynamics
of its subcomponents than the same type of subcomponents exhibit at the scale of you as a whole.
IMHO, this does not make you a mere epiphenomenon giving the mere illusion of coherent function.
Your intelligent posts reveal otherwise.
Flatterer. But you still don't tell me how we can decompose systems such that I can tell if
something, some subsystem, is a "thing" or not.
This is an old and somewhat sophomoric (soporific?) problem in philosophy. We are asking, in
effect, how far does an explanation need to go. If we draw a line at some point (say, my skin or
my local ecosystem, and so on) we are entitled to ask, why there? If it turns out that we draw the
line there for convenience' sake, then we have only asserted some fact about us as observers.
This is a key point, and I agree that we have yet to determine necessary and sufficient conditions
of "systemhood". Skeptics will continue to play an important role in the growth of complex systems
science until we know those conditions. At the moment I would argue that this set of conditions will
include positive feedback loops that sustain structure and function, and internal constraints that
restrict the potential for component behaviors detrimental to the whole. Structural and functional
dynamics must be driven primarily by internal interactions among components that are merely fueled
by external sources. For example, energy/matter must enter the system from the outside, but
information that drives structural patterning resulting from extraction of work from the fuel comes
primarily from from interactions within the system (e.g., entrainment). This does not prohibit the
imposition of pattern from the outside (e.g., if you were hit hard with an open waffle iron you
would have a pattern imposed), but I can't think of an asystematic way to generate patterns other
than by external imposition. Ultimately, I think the necessary and sufficient conditions will come
from thermodynamics (sensu Prigogine). All systems extract work from their fuel with which they
build and repair their structure, which sustains the temporal efficiency of the system in breaking
down gradients and maximizes the rate of entropy increase at the scale of the whole universe.
Quoted message said:My objection to treating evolution, or weather, as a single thing is that there is none of the
cohesion required to make either of them a functional or cohesive individual. We draw those lines
because there is a reason, a theoretical reason, to do so. I am merely saying that while a tornado
might be a cohesive individual, since it is a dissipative structure, weather is not. Likewise,
while we might treat the speciation of a mammal species into two as a single process (and can ask
sensibly what the mode, frequency and mechanisms were in each case), we can't ask such questions
of "evolution as a whole".
Maybe we can, although we haven't tended to do so. This is, I think, the GAIA proposition. It may
be, for example, that it is very hard to see or imagine the coherent operation of higher order
systems of which we are a part. We may cherish the idea of free will so much that we blind
ourselves to the top-down effects of higher order systems that guide us as compliant parts of some
larger whole, unless the larger wholes spring from our intentional actions (e.g., many social
organizations). We can see the whole when we intend to be part of a team, but we need guidelines
(as you suggested) to help us identify coherent systems that are generally outside of our
perceptive range.
Quoted message said:Quoted message said:Quoted message said:While what happens in the Deccan Traps or Krakatoa or Chixulub or the breakup of Gondwana
*affect* evolution and the weather, the latter are just that - effects. So far as I know, none
of the geological or astronomical phenomena are caused by either the weather or the evolution of
organisms. So I would *not* say that everything that happens *in* weather or evolution is part
of it.
I think I agree here, although I am certain you would find that effects go both ways if you
examined things in sufficient detail. I would agree that the flow of effects is highly
asymmetrical in these comparisons.
To be less critical and more constructive for a moment (i.e., not to behave as a philosopher),
allow me to suggest that what you are looking for *is* dissipation - maintenance of some
phenomenal structure through the input and output of energy and matter. Dissipative structures
form coulds and cuckoos, and we treat such structures and their dynamics as those of individuals.
Yup - this is the Prigogine terminology derived from a thermodynamic perspective, and it
works for me.
Quoted message said:[There's a logical sense of "individual", too, which basically means anything that is
spatiotemorally limited. Hence, the set of all things touched by John Wilkins is an individual in
this sense.]
Right. I tend to think in spatio-temporal terms, too, but this may not be sufficient in all cases.
For example, I have recently had an interesting conversation with a physicist colleague of mine
(Eric Smith from the Santa Fe Institute and Los Alamos) on a kind of boundary that is discrete, but
not in space or time. This is the nature of energy as it falls into the visible spectrum as opposed
to the thermal microwave radiation. The idea is that photons can be decomposed into components (I
don't think we have names for them) that exist in the thermal microwave state (a state of higher
entropy) after decoupling. I would not call visible light and thermal microwave energy individuals,
but then my imagination has its limits.
Quoted message said:Quoted message said:Quoted message said:But even within those two domains - while some aspects of weather affect other aspects - many
things happen in weather than dampen out in larger scales, and so a dustdevil in central
Australia and a snowstorm in Antarctica are decoupled.
Sure. There isn't much detectable interaction between of one of your liver cells and one of your
hair cells either. Whole systems are often held together by indirect interactions (e.g.,
butterfly effects).
Quoted message said:Quoted message said:Exactly. This supports my contention that each of these dynamical, self-supporting (containing
internal, positive feedbacks) structures in the atmosphere are individuated things. This
conclusion does not IMHO preclude the possibility of a coherent global weather system, too.
Not in theory, no.
Quoted message said:
Quoted message said:Likewise, the evolution of a fungus in the Amazon and the evolution of a bee in Europe are
decoupled (until they do meet and affect each other's environment). So I would also not say that
all evolution or all weather is a single cohesive syste.
I agree with your premise, but not your conclusion. My logic is consistent with the dynamical
networks paradigm (e.g., small world graphs) and hierarchy theory sensu Stan Salthe, if you are
familiar with them. Graph theory and hierarchy theory are both largely about nested entities.
I have a bit of familiarity here. I'm still not convinced, though, that this will revolutionise
anythign, but hey, it's worth a try. At worst, like Brooks and Wiley, you get talked about for
a while.
I wouldn't bury Brooks and Wiley yet. That book may have been written before its time, and might
achieve greater importance in the future. You mentioned the book by Depew and Weber (Darwinism
Evolving) previously, which I think is a better exploration of these ideas. I would argue, for
example, that the paper (see below) laying out the functional thermodynamic view of ecosystems is
just beginning to have a strong influence.
Schneider, E. D. & Kay, J. J. 1994 Life as a manifestation of the second law of thermodynamics.
Math. Comp. Modeling 19, 25-48.
Quoted message said:Quoted message said:Quoted message said:Hence I would not say that there has to be a property common to all instances of evolution or
weather, because there is no property-bearer, no single "thing".
I agree that there "would not [have] to be a property common to all instances of evolution or
weather," but disagree as to whether or not there is. I would caution you here to avoid the
common mistake (IMHO) of failing to recognize the dynamical and coherent nature of systems that
function on very different time and spatial scales than those of our existence. For example, most
scientists would quickly accept the notion that a rock is not a dynamical system. In fact, it is,
although it is in a senescent stage of degradation. Its structure, however, is maintained by the
tension caused by attractive and repulsive forces among its component particles. The time scale
of functional activity in evolution is far slower than the time scales at which we exist, which
can obfuscate its functional coherence, if I am right that it exists.
I don't believe that I do make that mistake here. But that doesn't justify claiming that any
collection of things, whether atoms in a rock or organisms in an ecosystem, qualifies as a "property-
bearer" in the theoretical sense.
I agree. I tried to explain why a rock fits this claim, but I strongly argue against the idea that
any collection of things would do so. I think that progress in biology (especially ecology and
evolution) has frequently been limited by failures to make exactly this distinction leading to
studies of collections that do not constitute systems.
Quoted message said:Quoted message said:Quoted message said:>> If so, does it include tectonic processes? Vulcanism? Bolide impacts? All these things impact
>> (sorry :-) on weather processes, so why not.
>
> Again, I would say not. I see tectonics as part of a geological process that is functionally
> uncoupled from the weather. One thing that reveals the uncoupled nature of these processes is
> that the operate on very different time scales. Note that functionally decoupled processes can
> interact, just as two different organisms (which are functionally decoupled entities) can
> interact, and such interactions among entities can contribute to the functional organization of
> some particular functional process/entity at a larger scale (e.g., consider the GAIA
> hypothesis).
But now it is open to me to say that weather *does* affect geology, through erosion and
deposition. Where do you draw that line?
All real systems are open, hence effects enter from the outside as perturbations and effects leak
out to perturb other systems. Showing some form of effective interaction between agents (note
that I don't mean to imply anything about intentionality) does not undermine their existence as
functionally coherent systems. Nature draws the line by causing systemic organization and
compartmentalization, meaning that there is a clear (but never absolute) distinction between the
extent of "particle" interaction within a system compared with between systems. I view it as
perhaps the most fundamental role of all empirical scientists to identify the natural bounds of
real systems before they target someTHING for study. This can be easy and familiar (e.g., the
bounds of an individual mammal) or hard and abstract (e.g., the bounds of an ecosystem).
And it can be wrong. Since nobody starts tabula rasa, everyone is in the business of taking prior
classifications and refining them in concert with theory and observation. Hennig called it, in
another context, reciprocal illumination. One of the things that *can* happen in science is that
you end up dissolving the apparently coherent individual type you began with.
I agree. Wouldn't it be nice to have those necessary and sufficient conditions to examine and
justify the objects of our study?
Quoted message said:Quoted message said:Quoted message said:>> How about Melankovitch cycles <sp?> My point is that something like "weather" is a convention
>> name we give to a range of phenomena that suit us to collect under one term.
>
> You could be right about weather as a general category. I am much more comfortable thinking
> about individual storms as process/entities that have individuated and have agency. I am open
> to considering the global weather in this way (see below), but it is not as clear to me that
> global weather is a single, functional process/entity.
Then why claim the same for the formally analogous process of evolution?
Perhaps I have overstated my case to make it. I would not argue that my position is so
irrefutable or sufficiently tested that it should be universally considered scientific "fact" at
this point. Consider it a hypothesis, which I think is highly likely to be a good one for both
atmosphere and biosphere. I would also argue that the validity of my hypothesis for evolution
does not rise or fall on its validity for weather, although I do think that these contexts seem
to be formally the same.
OK, it is an empirical claim. How can you go about testing it?
My approach of choice at the moment, in the absence of those necessary and sufficient conditions, is
to model the putative system computationally. If you can't get the computational model to generate
emergent structures (self-organize) or behaviors different from what you would expect from bottom-up
only causation, then you either don't have a system or you have missed some key component(s). At
least, at that point I would argue that you have failed to demonstrate that the collection has the
potential to operate as a system. If you do encounter the hallmarks of systematic activity, I think
the computational framework also provides you with a platform for exploring the generic tendencies
(inducible; tendencies about which you can be inductive) of that class of system.
Quoted message said:Quoted message said:Quoted message said:Saying that things evolve and things climatically and atmospherically change doesn't imply that
there is an "evolving" nor a "weathering", so why would we expect to find that there is a
"normal" rate or mode of evolution anyway?
I would not expect a "normal" rate or mode of evolution any more than I would expect a "normal"
rate or mode of weather. Similarly, I would not expect, and we do not see, a "normal" rate or
mode of biological existence. However, I would expect universal "metabolic" scaling properties to
hold for global weather and the biosphere, in the same why folks like Brown and West are
exploring for organisms and ecosystems.
In my continuing role as gadfly, allow me to ask whether it is not actually true that weather has
a "normal" mode on earth. We tend not to get the supersonic roaring forties that occur on Jupiter
or the Sun. We also have no helium ice. So we can say there is a "normal range".
It seems fine to me to say there is a "normal range", although the power laws so often observed for
systems regarding the frequency distribution of event sizes leads me to expect that catastrophic
events outside the "normal range" are likely to happen surprisingly often. In other words, I
wouldn't be surprised to find surprisingly unusual climatological events.
Quoted message said:Quoted message said:Quoted message said:I believe that we have always given into the entification (as Henry Plotkin once called it) of
evolution, and we suffer from that. It causes teleology - we expect to find norms and functions
in things that are entities (cohesive individuals).
That's funny, because I think we have shackled ourselves as scientists with notions like
Skinnerian behaviorism and avoidance of anything that smacks of anthropomorphism. In fact, I am
hoping for a resurgence of the vary things you feel we suffer from. I argue, for example, that
the second law of thermodynamics implies the existence of natural teleology; that is, nature
itself is teleological, and we must accept teleological explanations of natural phenomena if we
are to understand them correctly. I understand why the "shackles" were introduced to science,
which I attribute to the potential for generating uncritical and unconstrained inferences. If I
am right about natural teleology it will be important to figure out a way to embrace teleological
explanations without opening Pandora's box. I like the potential for the framework of
thermodynamics to constrain the kinds of teleological hypotheses and inferences we can accept.
I believe that we name general terms on the basis of our culturally encountered exemplars, and of
course we encounter goal-directed systems all the time. We are they. But we also over-generalise
from our experience, and so we tend to "see" goal-directedness wherever we look. We need to hold
this tendency in check, and ensure that our applications of general terms are trulyt appropriate
in each case. Teleology in biology is almost always inappropriate.
I think we agree in principle, but emphasize different sides of the same coin.
Quoted message said:Quoted message said:Quoted message said:>> It is not a "thing" or "process" in and of itself. Evolution is like that. So properties of
>> that non-thing are empty, or they are properties of particular things and processes we would
>> do better to investigate less generally and not go looking for universalisations like
>> "adaptation is the most important aspect of evolution", etc.
>
> Your position is certainly arguable. I would not dismiss it. However, my view is different, and
> I am convinced that my view is also not so easily dismissed. It may be that the functional
> coherence of evolution comes and goes, much like the functional coherence of weather systems.
> We wouldn't say that the dissipation of a convection cell is tantamount to the end of weather.
> There are top-down global weather effects caused by interactions among weather systems and the
> cohesion of the atmosphere that maintain wide-scale distributions of weather patterns across
> regions of the globe. Evolution is likely to work in a similar way, IMHO. Evolution storms
> (most likely coevolution storms) can spring up in a rush of coordinated self-organization,
> which eventually run there course and dissipate. I think that there are also top-down effects
> that coordinate such local activities (e.g., maintenance of food web structures, tendencies
> toward niche filling, ...), which is basically the GAIA idea. So, my model has evolution as a
> mix of chaos
> (e.g., the effects of mutation and drift) and self-organization, which can manifest locally in
> time and space at several different scales simultaneously.
Gaia is not a counterexample to my view, so long as it can be empirically demonstrated. After
all, if Hamilton entertained it, then it is eminently entertainable. But it has to be shown to
occur. If there is top-down causation, then there is, but I'm from Australia - show me.
Do you accept the notion of top-down causation (or more likely pattern-forming constraints that
facilitate global functioning) in general, or are you skeptical that they exist? What do you
think of the daisy world model?
Yes, yes, and it's interesting but inconclusive. Abstract models abound
- the issue is what ones apply and why them and not all the others. Recall the Raup shellspace of
the 60s. Recall that although the algorithms defined a space, it was in fact only partially
occupied. *That* is the interesting thing - why only those regions? Daisyworld defines the
formal outcomes of a series of assumptions, but we cannot therefore assume it models the actual
world. And what parts of it match and what don't is the interesting part of it all.
Yes, but it is also important to realize that our observations of manifested reality, and perhaps
all of manifested reality, is only a subset of the possible. And it may be an internally correlated
subset, which results in only particular regions of possibility space being occupied. Asking about
the idiosyncratic (historical) reasons for a system's failure to explore the whole space is quite
different from asking whether we have correctly identified the limits to the possibility space.
There is a new movement in the statistics community to develop "possibility theory" as opposed to
"probability theory", which I think is based on this distinction. I would argue that to understand
the nature of a system you want to know about its possibility space, rather than the limits of that
space that have actually been explored.
Quoted message said:Quoted message said:Quoted message said:Hamilton's idea that algal spores form clouds to disseminate the spores is a Gaianesque model -
but one that can be tested. The idea that ther eis "Evolution" because there must be some top-
down causation is argument by assertion unless we get specifics.
I have never argued that there "must be some top-down causation" for the biosphere or any
other putative system. I do argue that there "must be some top-down causation" for a real
system to exist. The question, as you have argued above, is whether or not the putative system
is a real one.
Quoted message said:It seems to me that evolutionary processes will be much more interesting if we can find out how
they *actually* work; more likely there will be a mix of coupled, uncoupled, level-restricted
and multilevel processes, and I want to know what they are, not what we think they will be.
OK, but I am sure that you recognize finding out what they are depends heavily on what we think
they will be.
Not entirely. We can be surprised. I don't hold with this newfangled social construction of
reality stuff. I'm not even sure I like much of the theory-dependence of observation stuff either.
Colour me positivistic if you like.
I don't like the notion of "individual realities" either. This is antithetical to science, IMHO.
I would only add that I am interested in both the fundamental nature of evolution (based on its
systematic tendencies) and its historical manifestation. To use Hennig's terminology as you did, I
see these endeavors as "reciprocally illuminating".
Regards,
Guy