Showing posts with label perception. Show all posts
Showing posts with label perception. Show all posts

6 Jan 2017

Uexküll (3.5) Theoretical Biology, “The Indications”, summary

 

by Corry Shores

 

[Search Blog Here. Index tabs are found at the bottom of the left column.]

 

[Central Entry Directory]

[Jakob von Uexküll, entry directory]

[Uexküll, Theoretical Biology, entry directory]

 

[The following is summary. All boldface and bracketed commentary is my own. Proofreading is incomplete, so please forgive my typos. Page citations refer to the 1928 German edition first and to the 1926 English edition second. Note: German terms are repeatedly inserted to facilitate comparison with translations of other Uexküll texts.]

 

 

 

 

Summary of

 

Jakob von Uexküll

 

Theoretical Biology

[Theoretische Biologie]

 

Ch.3 The Content-Qualities

[Die Inhaltsqualitäten]

 

3.5 The Indications

[Die Merkmale]

 

 

 

Brief summary:

We experience qualitative variations as mark-signs [Merkzeichen], and insofar as the qualities are attributed to the things in the world, the mark-signs serve as “indications” [Merkmalen] that are thought to be part of the outer world. The outer world of indications conforms to our inner world of mark-signs in structure and relation between parts. We constitute our world of objects on the basis of the many particular indications (which taken together can be considered indication-material / Merkmalsmaterial). Then, after the objects are constituted, they themselves can become indications of their own.

 

 

 

Summary

 

§386

[Our world only has those properties that we can attribute to the things in it. Mark-signs (Merkzeichen) are qualitative determinations that when are attributed to things in the world serve as “indications” (Merkmalen), which are then thought to be a part of the outer world.]

 

[Uexküll will explain how the things in our world gain their properties. Recall from the prior section that mark-signs correspond to changes in our attention when we are perceiving qualitative or intensive variations. Uexküll seems to be saying that these subjective marks of quality are then attributed to the things in the world. Insofar as mark-signs [Merkzeichen] are serving to tell us something about the thing in the world, they are acting as “indications [Merkmalen]”. But for Uexküll the indications (Merkmalen) apparently are thought to be elements of the external world.]

In constructing the world, mental sensations become properties of things; or, in other words, the subjective qualities build up the objective world. If we put the mark-sign [Merkzeichen] in place of the sensation or subjective quality, we may say that the mark-signs [Merkzeichen] of our attention become “indications” [Merkmalen] as to the world.

(66 / 77, bracketed insertions mine)

 

 

§387

[The laws governing the outer world of indications (Merkmalen) conforms to our inner world of mark-signs  (Merkzeichen)]

 

[Uexküll then discusses the way law is involved in the relation between mark-signs (Merkzeichen) and indications (Merkmalen). I do not grasp this part entirely, but the idea might be the following. There are certain laws that govern the structures and relations at work with the mark-signs. These same laws will hold also for the structures and relations at work in the indications in the outer world (and thus of the physical things in the outer world). This could be a matter of the outer world conforming to our inner Kantian a priori representations, like that of time and space. Let me quote, because I am not sure:]

Accordingly, the laws that are binding for the internal mark-signs [inneren Merkzeichen] must also hold good for the external indications [äußeren Merkmale]. Immutable laws of this kind we call natural laws. All the dicta of physics relate to indications [Merkmale] of the world, and are based on the laws that fall to their share as mark-signs [Merkzeichen] of our attention. The fact that, like the moments in time, the places in space cannot be interchanged nor the intervals between them altered, is put beyond all question merely because such relations depend on the form of our attention which precedes all experience. By means of this theory, Kant laid bare, for all to see, the very foundations of human knowledge.

(66 / 77,  bracketed insertions mine)

 

 

§388

[The indication-circles conform structurally to the mark-sign quality-circles.]

 

[In section 3.2 we discussed quality-circles (Qualitätskreise). Now we will discuss indication-circles (Merkmalskreise). My guess is that the circles of features we attribute to the world (Merkmalskreise) correspond one-to-one with the circle of threshold variations in quality (Qualitätskreise) of our inner experience. And furthermore, on the basis of this idea of the conformity of the world to our inner a priori representations, the laws and structures of the indication-circles will correspond isomorphically to those of the indication-circles, and these laws and structures precede any actual experience of the indications. I am not entirely sure I follow the reasoning. I would think that such things can be variable. For example, I was mostly tone-deaf for most of my life, but now I think I can hear some more differences in pitch. So I do not think the number of pitches preceded my experiences, because that number increased with continued interaction with sounds. However, perhaps the idea is that there is a maximum number possible for our human bodies, and while we might uncover more indications gradually in experience, they were set out as possibilities of experience somehow in advance. Let me quote so you can see for yourself:]

This theory, however, must be applied in the same way to all the indication-circles  [Merkmalskreise]. The number of indications [Merkmale], as well as their arrangement, precedes all experience. Even if this arrangement is not extensive, and so cannot be directly intuited, still the law of the regular increase in indications [Merkmale] from threshold to threshold is immediately certain for each indication-circle  [Merkmalskreis]. From the very beginning, with all the inevitability of Nature, the distance between the thresholds | and the regularity of the increase in this distance are determined for colours and for sounds, for smells and for flavours, just as for temperature and for sensations of touch.

(67 / 77-78,  bracketed insertions mine)

 

 

§389

[The structural relations between qualitative parts of the outer and inner world both remain immutable.]

 

[Uexküll’s next point seems to be the following. In the physical world, there are given properties, situations, and variables that are simply facts. They are “immutable” in the sense that they are governed by certain unchangeable laws, and they are objective and thus do not vary depending on perspectives. In the same way, the inner world of quality discernment involves sequences and structures that remain the same over many similar experiences. Let me again quote so you can see:]

Just as the distance separating two places and the direction this separation takes, remain immutable, so also does the difference in colour between two impure tints and the direction of the increase in its intensity. A degree of hardness differs from another degree of hardness or of softness according to the number of thresholds, as well as by the direction of increase, exactly in the same way that a certain low note in the scale remains always as far removed from a certain high note, and can never change places with it.

(67 / 77-78)

 

 

§390

[So when indications appear to us in the world, they are already governed by these inner experiential structures.]

 

[So, even though indications are attributed to the features of things in the world, their interrelations are already governed even without reference to those things.]

When indications [Merkmale] make their appearance in the world, they are already in the grip of these laws, and this without any reference to the objects with which they are associated.

(67 / 78,  bracketed insertion mine)

 

 

§391

[The things in our world are built up from indication-material and then themselves become indications all their own.]

 

[Uexküll’s next point alludes to ideas in the next chapter and for that reason remains incomplete. It seems he is saying the following. We notice many indications in the world, and we then synthesize them somehow into objects and tools. But those constituted objects then themselves become indications all their own.]

As soon as indications [Merkmale] appear in the world, caught, so to speak, by the bull's-eye lantern of our attention, the process of apperception sets in, and creates from them new structures, i.e. things [Dinge], objects [Objekte] and implements [Gegenstände]. In the following chapter we shall deal fully with the nature of this process. Here we shall merely point out that each new formation appears as a unity, and then, in its turn, becomes an indication [Merkmal]. Our world is filled with these indications [Merkmalen], which we usually describe as objects [Gegenstände]; but we must not forget that, one and all, objects are built up from the indication-material [Merkmalsmaterial] of our qualities.

(67 / 78,  bracketed insertions mine)

 

 

 

 

 

Works cited (in this order):

 

Uexküll, Jakob von. 1928. Theoretische Biologie, 2. gänzlich neu bearbeitete Auflage. Berlin: Springer.

 

Uexküll, Jakob von. 1926. Theoretical Biology. Translated by Doris Livingston MacKinnon. London: Kegan Paul, Trench, Trubner & Co. / New York: Harcourt, Brace & Company. PDF available at:

http://www.archive.org/details/theoreticalbiolo00uexk

 

 

.

5 Jan 2017

Uexküll (3.3) Theoretical Biology, “The Principle of Comparison”, summary

 

by Corry Shores

 

[Search Blog Here. Index tabs are found at the bottom of the left column.]

 

[Central Entry Directory]

[Jakob von Uexküll, entry directory]

[Uexküll, Theoretical Biology, entry directory]

 

[The following is summary. All boldface and bracketed commentary is my own. Proofreading is incomplete, so please forgive my typos. Page citations refer to the 1928 German edition first and to the 1926 English edition second.]

 

 

 

 

Summary of

 

Jakob von Uexküll

 

Theoretical Biology

[Theoretische Biologie]

 

Ch.3 The Content-Qualities

[Die Inhaltsqualitäten]

 

3.3 The Principle of Comparison

[Das Prinzip der Vergleichung]

 

 

 

Brief summary:

We have been using geometrical shape-diagrams to represent the experience of non-spatial sorts of continuous variations, like experiences of color. The “common denominator” between these experiences and the diagram shapes are marked changes, which in experience are changes in attention, and in the shapes, are changes in the direction of the lines.

 

 

 

Summary

 

§376

[We want to know more about how to spatially represent certain qualitative variations that are not experienced spatially or quantitatively, like the changes between qualitatively distinct colors along a continuous spectrum of color variation.]

 

[In the prior section we examined intensive quality circles, particularly the color circle. Here we drew a square, which showed relations between four colors that stood out in the spectrum, namely, red, yellow, blue and green.

Uexkull.-Theoretical-Biology.-Fig1.E[4][3]

What we take special note of here is the fact that the colors are not spatially arranged in this way in experience. The right angles that turn from one color to another represent more how we experience the colors as veering qualitatively from continua of variation.] Uexküll now asks how we transfer relationships like that between colors in our experience to the spatial realm of our diagrammatic representations. We are especially concerned with how “while our eye ran along the band of the spectrum, we noticed at certain points that a new colour-mixture appeared. This turning-point in the color sequence we transformed into the turning-point in a line in space” (64-65 / 75). [In other words, we want to understand better how it is that we determine points where in our minds a qualitative variation reaches a “turn” when objectively speaking it would still be seen as undergoing a linear variation, like the light waves increasing or decreasing quantitatively while we perceive qualitatively distinct colors that do not seem to be more and less of something. Blue does not seem more or less of a common variable found in red.]

 

 

§377

[Along the continua of variation we experience turning points, like the different distinct and “pure” colors along the color spectrum.]

 

[In this prior section, one of the first things we noted was that the four colors (red, yellow, green, blue) stood out as distinct and pure colors.

visible-color-spectrum-soho-nasa_thu[3]

So objectively speaking there is a continuum of variation that privileges no point along the change. But in our experiences, as our eyes move down the line, it is as if we cross through privileged points. So there is another layer of the motion, which is not linear and continuous. It is as if these privileged points were like pivot points swinging us toward another privileged point. We represented that in our diagram by having the lines turn at an angle.

Uexkull.-Theoretical-Biology.-Fig1.E[12][3]

]

Our attention, at first focussed on the red-yellow colour- mixture, was suddenly compelled to turn to the mixture of yellow with green. Even in ordinary speech we speak of our attention, “taking a new direction.” By drawing a line which suddenly takes a new direction, we give a concrete form to the expression.

(65 / 75)

 

 

§378

[As our eyes move between the pure colors, we experience a change in our attention that we can represent spatially by means of angles that turn the continuum of variation. These attention changes are the “common denominator” between a non-spatial color experience a spatial representation of it.]

 

[The next idea references some ideas from prior sections. See chapter 2 on moment-signs. Time is not space, but we can measure its flow by finding a pulse (46 / 54). And we can then represent that pulse by placing line markings in a row (47 / 55). This means that we have sound recurring at intervals (represented perhaps by muscle movements like taps) and a visual phenomenon recurring at intervals, like the lines or tick-marks written out in a row to represent the temporal repetition. Uexküll then asks what is the common basis between these two different dimensions of representation or experience that allows the two sorts of representation to be interchangeable? What is common, he says, is that both sorts of markings designate changes that appear to our apperception (47-48 / 56-57). We can also think of them as each marking a “change in the attention” (48 / 57). Since they are transposable in both temporal and spatial experience and representation, we can think of such attention changes as a common denominator. Now, there are certain quantitative variations that objectively are continuous but whose continuity of variation we cannot measure well by means of our own senses alone. Consider for example if we hold a bucket into which a slow and steady flow of water fills it gradually. We feel that the weight is increasing over time, but we have difficulty measuring that increase, because it is not like we have in our minds a dial with numerical markings telling us each time we go up an objective standard unit of weight. Uexküll refers us to Weber’s solution (see this entry and its initial links for more). Weber introduces the notion of a threshold of our perception. (Uexküll defines threshold in the following way: “Threshold means the just perceptible difference between two intensities of a quality.” (52 / 63).) The objective increase in weight will vary continuously, and if it is slow enough, it will go unnoticed, until we cross a threshold when we notice the difference. At lower weights, we are more sensitive to changes, and thus the thresholds correspond to smaller increases in the objective weight of the bucket. But as it fills heavier, we become less sensitive, as the thresholds correspond to greater intervals of weight-change (49 / 58-59). (This bracketed summarization of ideas found in prior sections holds for this and the following paragraphs, which will be quoted).]

In both instances, a change occurs in the process of attention. This yields us the common denominator that permits us to reproduce in the form of an event familiar to the eye one that is of quite another kind.

(65 / 75)

 

§379

[We made a similar spatial transposition when marking time-beats with strokes drawn side-by-side.]

 

[See the summary in the above section.]

 

We were employing the same method when we converted time-beats into a series of strokes set side by side, and thereby transformed time into space. Our attention was able to keep the change of content quite separate from the nature of the content, and to give this change a concrete expression by transference into spatial relations.

(65 / 75)

 

 

§380

[With this in mind, we could represent musical tones with a seven-sided pillar where the angles mark notes (with the variations between them on the intervening lines), but they are arranged so that each octave takes another horizontal layer of the pillar, placing all of the equivalent notes in vertical alignment.]

 

We can also spatially represent other sorts of non-spatial qualitative experiences. For example, “In order to reproduce in concrete form the relationship-form of musical sounds, we shall employ a seven-sided pillar, and on its edges we shall arrange all the sounds in a spiral, so that those that differ by an octave lie below one another. On the faces we shall place the transitional half-tones and quarter-tones” (65 / 75).

 

§381

[Other shapes can be used for other sorts of content-qualities.]

 

Henning suggests a prism to represent the “relationship-form” of olfactory qualities, but the other content-qualities could be represented using a two-dimensional plane shape (65 /75).

 

 

§382

[In all our diagrams, the turning-points in our attention correspond with angles in the shape.]

 

But even though we use different shapes, we maintain the same organizing principle, namely, that we demarcate the turning-points in our attention with changes of angles in the diagram shape (65 / 75-76).

The particular procedure in every case depends on the same principle: the turning-points at which our attention acquires a new direction are fixed concretely by the angles or edges of a spatial figure.

(65 / 75-76)

 

 

 

 

 

Works cited (in this order):

 

Uexküll, Jakob von. 1928. Theoretische Biologie, 2. gänzlich neu bearbeitete Auflage. Berlin: Springer.

 

Uexküll, Jakob von. 1926. Theoretical Biology. Translated by Doris Livingston MacKinnon. London: Kegan Paul, Trench, Trubner & Co. / New York: Harcourt, Brace & Company. PDF available at:

http://www.archive.org/details/theoreticalbiolo00uexk

 

 

.

Uexküll (3.2) Theoretical Biology, “The Form of the Quality-Circles”, summary


by Corry Shores

[Search Blog Here. Index tabs are found at the bottom of the left column.]

[Central Entry Directory]
[Jakob von Uexküll, entry directory]
[Uexküll, Theoretical Biology, entry directory]

[The following is summary. All boldface and bracketed commentary is my own. Proofreading is incomplete, so please forgive my typos. Page citations refer to the 1928 German edition first and to the 1926 English edition second. Note for this section: I do not yet have the original 1920 German first edition on which the translation seems to have been based. So some references to prior sections will refer just to the English edition for now.]




Summary of

Jakob von Uexküll

Theoretical Biology
[Theoretische Biologie]

Ch.3 The Content-Qualities
[Die Inhaltsqualitäten]

3.2 The Form of the Quality-Circles
[Die Form der Qualitätskreise]



Brief summary:
We obtain sense data from various nerves, along with local signs telling us the spatial location of the stimulus and as well moment-signs telling us the temporal location. For each location there can only be one quality datum, or “content-quality”, and thus there cannot be contradictory qualities in the same location. The perceived space around us forms spheres of larger sizes, with us at the center. So we can think of there being content-qualities occupying spatial locations along a spatial circle haloing around us. But qualities can also take on circular relations of intensity. This is evident with the quality circle for color. As we move from red to yellow, there is between them a continuum of color mixture. From yellow we go to green, but since green is qualitatively very different from the red-yellow spectrum, we can think of the yellow-green continuum as moving in another direction. We turn yet another direction to go from green to blue. What comes after blue in the color spectrum is violet, which is a mixture of red and blue. Thus we turn from blue back toward red to complete our circle.



Summary

§369
[In chapter 1 we noted that the animal’s perception of space is like a series of larger and larger spheres centered on the creature.]

[The first couple paragraphs of this section will summarize some ideas from prior sections. Not all of the prior sections correspond between this English translation and the German edition I am using, presumably because the English edition is based on the German first edition, which I do not currently have access to. As such, I will refer to the English pages primarily to summarize these points. Uexküll begins this section by saying that in order to investigate the appearance-worlds [Erscheinungswelten] of others, we need to have an exact knowledge of our own (62 / 72). He then refers to an idea from the first chapter on space. One notion from the section “The Space of Animals / Die Räume der Tiere” (36 / 40) is that we can think of animals having a sphere of space surrounding them that is “like an invisible soap-bubble” (62 / 72). In this earlier section, he addresses the question, ‘What does space look like that surrounds animals?’ (??? / 40). We first need to create a diagram for human space, and then we modify it “according to the faculties of the animal under investigation” (??? / 40). To do this we should first note the idea of local signs. The basic idea is that our nerve endings give us qualities, like touch sensations. But they also tell us where on the body the sensation is coming from. These spatial indicators are called local signs [Lokalzeichen] (5 / 2). (See their description by Lotze here. The basic idea in that context is that the sense data coming from the nerves is not enough to provide spatial relations between the data. And thus we would not know how to spatially arrange the data in our minds. What is also needed are the local signs which give us those spatialized relations between impulse sources.) I am not certain, but I get the sense that the local signs are indicative not simply of the bodily location of the nervous stimulus but as well can be indicative of spatial features of the stimulus source out in the world. So perhaps for example there are local signs to tell us when a visual stimulus comes more from the distance, but I am not sure. “Direction-signs” involve the relation between local signs. “The sensation of direction comes in only when one local sign strikes up while the others most nearly related to it have not yet quite died away [...]. [...] what we call ‘motion’ is only that change in quality which is connected with the quality of direction.” (7 / 6) “I call that which connects local signs a direction sign” (???{cf.11} / 6). (In other words, if a tactile stimulus moves from one nerve on our skin to another located somewhere else on our skin, the relation between the local sign for the beginning place and that of the ending place gives us a direction of the movement of the stimulus). We return now to the space of animals and humans. Uexküll has us consider there being three circular pieces of cardboard, and we intersect them along the three planes of direction (??? /40-41). (I suppose we have one lying flat horizontally. The other two will stand upright vertically. So the second of the three circles will be vertical facing forward, while the third will be vertical at a right angle to the second, with all three of them sharing the same center-point. The three circles give us the main directions: forward-backward, up-down, and right-left.) We then place spheres of increasing size emanating from the center-point. There will be small spheres near the center that are placed close to one another. As we move outward to larger spheres, the distance between them increases. This distance between the spheres represents the discernible layers of depth. We are most sensitive to the distances in front of us, so we can differentiate the layers more precisely. This is why the spheres nearest us are closer together. But as we go further away, we are less able to make such precise determinations of distance. And, “Each sphere has just as many places on it as there are local signs available. Hence there are much fewer to the same surface of the larger and more distant spheres than there are on the smaller ones close at hand” (??? / 41). (The idea here might be that since the only way we have to differentiate spatial properties of the stimuli is by means of local signs, then there are just as many locations in the sphere as there are local signs for distinguishing them. Now if we consider geometrically how the rays of an angle grow further apart as they move into the distance, then we can imagine that the locations on the more distant spheres are also spaced further apart. “Place” is like all the locations on each spherical surface along one ray, standing one behind the other. “Position” is the location upon one such sphere. Position might instead just be like a designation of the sphere itself, which makes a coordinate with the place, or it might be that coordinate itself. I am not sure. The next idea might be that we can also transpose the places in our perception with places of the world understood according to more of a homogeneously metrical, decentralized understanding of space, as it is understood objectively in physics.) But space as we experience it, or “intuited space,” is what concerns us in biology (??? / 42). Humans have the three planes of direction (the three cardboard circles), but other animals may have just two or one. They may even have none and instead work only with the line of the horizon. For humans the larger and larger spheres are related also to our motor behaviors and thus we can use them to think of steps-into-distance. When studying other animals we should also look at their capacities for making steps-into-distance with respect to their spatial perception. We also must learn the number and distribution of the places in the animals space. (??? / 42). The next idea in this earlier section takes us to the notion of the soap bubble which is relevant to the current section we are examining. The idea seems to be that there is something like an a priori sort of representation of space in animals in the sense that the creature has a certain outer limit to their perception of space, but they assume there is more space beyond that boundary and that it will become apparent upon moving toward it. In this way, we can think of each animal being surrounded by a “soap-bubble” into which parts of the world enter as it moves its bubble around.
Every spatial animal world, however limited as regards places and steps-into-distance, and even though it be without planes of direction, is nevertheless surrounded by the pure extended, which, as necessary form, precedes all space-creating. The extended lies immediately behind the last step-into-distance. So the space peculiar to each animal, wherever that animal may be, can be compared to a soap-bubble which completely surrounds the creature at a greater or less distance. The soap-bubble of the extended constitutes for the animal the limit of what for it is finite, and therewith the limit of its world; what lies behind that is hidden in infinity.
(??? / 42)
So returning again to the current section, Uexküll says that we can describe the space around an animal as being like an invisible soap-bubble [Seifenblase] (62 / 72). After reminding us of a few features of animal space, he notes that “The laws of the content-qualities of our mind are as changeless as the spatial laws of our appearance-world [Erscheinungswelt]” (63 / 72, bracketed insertion mine. See pages 22-23 / 14-16).]
A preliminary condition for the investigation of the appearance-worlds of others is an exact knowledge of our own. In the first chapter, which dealt with the spatial qualities, we succeeded in forming an idea of space that permitted us to describe around every animal a space like an invisible soap-bubble, within which all its activities were carried on. A number of fixed places give support for its sense-organs, and a definite number of direction-steps give the measurement of the magnitudes, and determine the movement of its limbs. The direction of movement is fixed, in many cases, by immutable direction-planes. The laws of the content-qualities of our mind are as changeless as the spatial laws of our appearance-world [Erscheinungswelt].
(62-63 / 72, bracketed insertion mine)


§370
[We will study the ways that the content-qualities work in our minds by seeing them in action.]

Uexküll, again referring to past sections, says that we cannot simply learn the laws that regulate our own mind, because “The activity of our qualities consists in constructing our appearance-world [Erscheinungswelt]” (63 / 72, bracketed insertion mine). [The idea seems to be that the laws of the organization of the qualities given to our senses only come to light when we see that organizational process. Let me quote.] “Considered by themselves, all our qualities seem just a confused heap of building-materials, all more or less alike. The laws are revealed only when the work of construction is in progress” (63 / 72).


§371
[Content-qualities are found at particular locations by means of local signs. The same place cannot have contradictory content-qualities.]

[The next idea seems to be that the content-qualities coordinate with spatial locations by means of the local signs. Perhaps we might consider looking at a painting. Different spatial locations (corresponding perhaps somehow to different optical nerve locations) give us different color qualities. What is important to emphasize here is that for each location there can only be one content-quality for each sense modality. In other words, one location cannot have contradictory qualities.]
When the content-qualities are fitted into the local signs, fixed places appear, having definite properties. And now the outline of a fundamental law is revealed. The “circles” of relationship, which were but faintly indicated in the original material, can be de-limited one from another. Each place, that is to say, can receive only one property from each quality-circle. A certain place may be blue-green, but never blue | and green. It may be of medium hardness, but never both hard and soft; it may be lukewarm, but never both hot and cold at the same time.
(63 / 72-73)
[I am not sure I understand the idea of the quality-circles. Given that they are related to local sigs, perhaps they would be like qualities located on one spatial sphere. Or perhaps the circle is meant simply to give a non-spatial sort of indication of relations. I am not certain.]


§372
[Given that there can only be one content-quality per place, that means you cannot have two different related qualities in the same place.]

[The next idea seems to reinforce the prior one regarding there being just one content-quality per place. Now the notion emphasizes that the appearance of a quality at one place prevents there being a related quality at the same place. Let me quote to be sure:]
This circumstance (i.e. that at each place properties from all the relationship circles may be assembled, but never more than one single quality from each) shows that the qualities of each circle are connected together by law in such a way that the appearance of one quality excludes the simultaneous appearance of a related quality at the same place.
(63/73)


§373
[We can consider the content-qualities extensively as occupying spatially a place in an extensive quality-circle, or we can think of content-qualities occupying an intensive quality-circle.]

[The next idea seems to be the following, but since I am uncertain, please consult the quotation to follow. We so far have considered the extensive spatial relations between the quality contents, as their spatial relations are given by means of the local signs. There is also the matter of intensive differences between the content qualities. We will now form intensive quality-circles so to study their laws. Let me quote, as there is more to this that I am missing:]
As soon as it enters into activity, the material of our mental qualities reveals a form governed by law, which form may enter into appearance along with space and time, or must especially be sought out for the content-qualities. Since only the form of the extensive quality-circles of the local signs and direction-signs is given by intuition, we must try to include within that extensive form the intensive quality-circles, in order to arrive at a clear idea of the laws governing them. To admit of comparison between the extensive qualities themselves, we have already expressed in spatial terms the form of the moment-signs, which is not intuited; and so we shall now attempt to represent in terms of space the other quality-circles likewise.
(63 / 73)


§374
[We can arrange the relations between colors as being on a spectrum but one that wraps around upon itself. The color mixtures can take a hexagonal form.]

Uexküll has us consider if we view a color spectrum. [Let us consider this manner of presenting one:
visible color spectrum soho nasa
] Uexküll says when we look at it, “four fixed points immediately strike our eye, at which certain colours emerge pure from the mixture,” namely, pure yellow, red, green, and blue. But between every two points of pure color there is a continuum of color mixture. So we begin with two, the red and the yellow. We will now make our own diagram for these color quality relations. We have fixed yellow and red as points of pure color.
Uexkull. Theoretical Biology. Fig1.Eng.ColorSquare.PS.Vb
And we can draw a straight line between them to represent the continuum of mixture between them (with a color-band added in the diagram below).
Uexkull. Theoretical Biology. Fig1.Eng.ColorSquare.PS.Wb
[The next observation is interesting. Uexküll seems to be saying that the difference between these two color points varies continuously and linearly. But as we go to a third color, it is not on that same continuum of variation. He does not explain why, but it seems that it has something to do with the qualitative difference that defies quantitative variations of more and less. In other words, we can say that between yellow and red is a range of variations of yellow-red mixtures, but when we move further to green, there is not a continuation that carries forward a larger range of red-green mixtures (As I understand, if you mix red and green light, you get yellow. But maybe the idea here is that we do not perceive yellow as somehow being between green and red, although we perceive orange as being between yellow and red, because it seems to have qualities of both). Rather, we are starting a new mixture sequence, and for this reason he depicts the variations as taking a right turn.]
We cannot carry the straight line from the red any further, for here we are dealing no longer with red-yellow colours, but with colours that are a mixture of yellow and green. To express the difference, we must give the line a new direction. So we shall place the green point below the yellow and connect these two by means of a line representing the colours that are a mixture of yellow and green.
(64 / 74)
Uexkull. Theoretical Biology. Fig1.Eng.ColorSquare.PS.Xb
This holds again for the next sequence between green and blue.
Uexkull. Theoretical Biology. Fig1.Eng.ColorSquare.PS.Yb
At this point Uexküll makes another interesting observation, namely, that as we go further from blue in the linear spectrum, we move into violet, which is a mixture of blue and red. This brings us then back to red.
Uexkull. Theoretical Biology. Fig1.Eng.ColorSquare.PS.Zb
As we can see from this wheel portrayal, the spectrum can be understood as circular.
circle spectrum
Uexküll describes further modifications:
So we may bring back the line from the blue point straight to the red. In this way we get a square, on which we may set equilateral pyramids, one above and one below; this gives a hexagon. The apex of the upper pyramid shall be white and that of the lower one black. While all the angles of the hexagon carry pure colours, on each of the edges will lie colours arising from a mixture of two. The faces of the hexagon, on the other hand, will display colours formed by mixture of three colours, which radiate outwards, in diminishing strength, from the three angles surrounding each face. If we make a transverse section through a face, we can always tell at what level the single colours lie above one another, in order to produce in this way all possible mixed colours.
(64 / 74)
[I can imagine combining two pyramids with a square base to them, placing them base-to-base, so to form an eight-sided diamond-like figure. But I do not know how to obtain a hexagon from that. Perhaps the “equilateral pyramids” are triangular on all faces, and perhaps furthermore they are placed together offset so that their bases taken together create the six points of a hexagon. So it might perhaps resemble something along the lines of this diagram.
color wheel hexigon(And possibly furthermore we are to think of the top pyramid having pure tones at its base, but tapering continuously to white at the apex, and the bottom one tapering to black. I am not sure however why they would converge at a point. Maybe the top pyramid represents the combination of colors as light and the bottom as the combination of colors as pigments. If it were just to show light and dark variations of each color hue, I would think they would not converge at a center but rather rise up and down like in a cylinder.) But in that case of combining pyramids with triangular bases, I am not sure how to situate them in relation to the original square we drew. So I am not certain about the shape Uexküll is forming.]


§375
[This hexagonal arrangement provides a visualization of the laws of the color-quality circle.]

This color hexagon depicts the laws in the circle of the color-qualities (64 / 74). [The laws seem to be the laws of color relations, including those of mixing.]




Works cited (in this order):

Uexküll, Jakob von. 1928. Theoretische Biologie, 2. gänzlich neu bearbeitete Auflage. Berlin: Springer.

Uexküll, Jakob von. 1926. Theoretical Biology. Translated by Doris Livingston MacKinnon. London: Kegan Paul, Trench, Trubner & Co. / New York: Harcourt, Brace & Company. PDF available at:
http://www.archive.org/details/theoreticalbiolo00uexk


Other image sources:

Visible color spectrum, linear:
SOHO (Solar and Helospheric Observatory). “Making your cerealbox spectroscope.” https://soho.nascom.nasa.gov/classroom/spectroscope.html

Color spectrum wheel:
Programming Design Systems. “Computational Color”. http://printingcode.runemadsen.com/lecture-color/

Color wheel with hexagon:
Artfactory.com. “Color Terms for Art and Design, I”.
http://www.artyfactory.com/color_theory/color_terms_1.htm



.

29 Aug 2016

Bickhard and Richie (1.2) On the Nature of Representation, Ch.1.2, “A Historical Summary of [James] Gibson’s Theory,” summary

 

by Corry Shores

 

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[The following is summary. All boldface and bracketed commentary are my own. I apologize in advance for my typos. Proofreading is incomplete.]

 

 

 

Summary of

 

Mark Bickhard and D. Richie

 

On the Nature of Representation:

A Case Study of James Gibson’s Theory of Perception

 

Ch.1 Foundations

 

1.2 A Historical Summary of Gibson’s Theory

 

 

 

Very brief summary:

The important information about the world we perceive is not something our minds place into our perceptions by organizing and processing them one way or another. Rather, that information is built into the world (the “ecology”) itself and especially in the patterns, structures, and ways we perceive it when we actively interact with it. And we directly, without further processing, discern these significances in our perceived world when our perceptual interactions tell us the possible uses of (or potential further interactions with) the perceived things, which are called their “affordances”.

 

 

Brief summary:

Gibson rejected two predominate views of perception of his time and proposed a new theory. The first predominate view are the sensation-based theories (of for example Berkeley, Müller, and Helmholtz) which say that our eyes directly receive and encode our fragmented visual data and secondarily we construct full perceptions on their basis by applying to them processes of memory, inference, and judgment. The other view is the Gestalt one, which sees the process of perception as a relatively spontaneous sensory organization that also involves some reconstructive work on the part of the perceiver. But Gibson’s own scientific studies showed that humans and animals react to their environment in a way that is too accurate and immediate for there to be additional acts of processing of the data, as in these two theories. Instead of the important information being encoded into the perceptual data by means of perceptual and mental processes, Gibson instead came to hold that the important information about the environment was fully given in the sensory data already and directly discerned without further processing of it. His work with motion parallax illustrates his thinking. (Motion parallax is the visual experience that we have when we are moving, and the things further away from us pass through our field of vision slower compared with nearer things.)  The two existing models would say that on the basis of a static impression of what is given to our vision while we remain passive observers, we process that data to obtain knowledge of the properties of depth in the scene before us. However, motion parallax shows us that we are not passive observers, because we actively make decisions about how we position ourselves in the world, and in that way we in fact interact with our surroundings. And also, what we perceive is not a static image, because it requires that we see a flow of information and we recognize certain patterns in it. But it was not so clear in his early theories that he can avoid what he called the homunculus problem, which plagued the other theories. The idea is that because an interpretative sort of process was needed to “encode” the raw data with other important significances, like depth relations, there needed to be an internal agency that receives that data and interprets it, like a miniature human living in our brain. This leads to an infinite regress, because that homunculus would need some internal interpretative agent of its own as well, and so on. Gibson, thus, needs to explain the nature of the discerned significant information and the way it is obtained in a manner that shows how it does not involve an interpretative component. This danger arises on account of his notion that schematic perception is based on literal perception. Our literal perceptions give us data about the physical spatial properties of things in our perceived world, while our schematic perceptions tell us about the perceived things’ potential uses and significances. Schematic perception is in some sense obtained from literal  perceptions secondarily, and this leaves open the possibility that Gibson’s theory falls to the homunculus problem (for, it could be that there needs to be an additional process that “reads” the literal perceptions to interpret their schematic significances). What he says instead is that humans and animals, by perceiving the physical features of things, in that same act thereby perceive their potential uses or interactive possibilities, called their affordances, of that perceived thing.  Thus there is no ‘encoding’ or processing to obtain knowledge of the perceived thing’s significance; it is perceived and recognized directly when seeing its physical features. Given that this interactive element with the environment directly contains the important information about it, Gibson moved the locus of perception away from the passive perceiver’s internal workings and relocated it in the surrounding “ecology” of interwoven environmental elements that are also interactively interwoven with the observer. [For this reason, it is called “ecological psychology,” as Gibson argued that] perception is a “process that can only be understood in terms of its natural ecology” (Bickhard & Richie 10).

 

 

 

 

Summary

 

Bickhard and Richie (henceforth written as BR) will discuss James Gibson’s theory of perception by first examining its historic context and then its conceptual development (BR 8).

 

BR begin by noting the basic context of Gibson’s original studies:

Gibson (1950) points out that the study of perception had long been dominated by the problem of how the mind can generate our full experienced perceptual knowledge from the inadequate data provided by the senses, with vision and the eyes always the primary focus. The major approaches to this problem were based on the works of Berkeley (1709/1922), Müller (1838/1948), and Helmholtz (1896/1952), who proposed that the eyes directly receive and encode certain basic sensations, such as patches of color, lines, points, and so on, and that full visual perceptions are then constructed on the basis of such sensations through various processes of comparisons with memory, inferences based on cues within the sensations, and, ultimately, judgments concerning the nature of the external stimulus.

(BR 8)

Although there were disagreements on the nature of the sensations and of their processing, “all such models, including a slight variant in which the retinal image served in the role of sensations, assume that perceptions must be generated out of primitive sensations or retinal images. They assume that the senses receive fragmented or incomplete information about the world that must be enriched by mental processing (Gibson & Gibson, 1955)” (BR 9a).

 

Gestaltists “objected to this approach,” because they thought that “the sensory elements seemed impossible to specify” and also that this approach at best tells how we make judgements about the world but does not explain how we actually see the world [in a more encompassing sense] (9). Rather, “Gestaltists argued that ‘experience is not reducible to elements or additive units’ and proposed instead that the process of perception ‘was one of a relatively spontaneous sensory organization’ (Gibson, 1950, p. 22)” (9). This notion of sensory organization applied well to the perception of form, but not so well to the perception of space. And in both cases it was difficult to specify [what the nature of the sensory organization is]. What interested Gibson with regard to the Gestaltists was that they “formulated genuinely relevant problems for space perception, problems concerning the characteristics of the actual experienced visual world rather than the flat geometric visual field (Gibson, 1950, p. 23)” (9).

 

With these two theories in mind, Gibson conducted his own experiments in depth perception during the second World War (9). What he found was that “depth perception was more accurate than could be explained by any model based on depth cues” (9). This meant specifically that the sensation models failed but also the Gestalt theories proved inadequate [for some reason] as well (9).

 

In 1950, Gibson writes The Perception of the Visual World, and here he goes beyond both theories. BR assesses the role of these alternative theories in this way:

From the Gestaltists, he accepted and adapted the idea that the most basic problems of visual perception were those regarding the experienced three-dimensional visual world, not the flat geometric visual field, but he rejected the proposed process of sensory organization. From the sensation-based approaches, he accepted very little, neither their basic problems nor their basic solutions.

(BR 9)

 

[I am not certain, but perhaps we can say the following about Gibson’s critique. He will say that humans and animals react to the spatial environment in a way that shows they have a very precise understanding of its spatial features. This means that the two theories fail. The sensation-based approaches perhaps do not explain this, because this theory might say that people’s and animal’s understanding of the spatial environment is based on just what they sense. But too little is sensed to support such a detailed knowledge of the environment. The Gestalt approach does not work, because this would say that the mind constructs a lot of its knowledge of the environment artificially. But were that so, there would be more errors in that construction than are actually there. Let me quote, as that was just a guess.]

Gibson argued that people and animals “appear to react to the spatial environment with an accuracy and precision too great for any known theory of space perception to be able to explain. ... If the solid visual world is a contribution of the mind, if the mind constructs the world for itself, where do the data for this construction come from, and why does it agree so well with the environment in which we actually move and get about” (p. 14). This basic rejection of mental constructivism, of mental processing was one of the most fundamental moves in the development of Gibson’s own theory. Consistent with this rejection, Gibson also rejected the premise that made such processing necessary and the particular distinctions and processes by which it was presumed to occur.

(BR 9-10, citing Gibson 1950)

 

Gibson especially “rejected the basic premise that the data available to the senses were inadequate to perception” (10). [I am not sure, but this notion might work against both theories. The Gestaltists seem to be saying that there are additional constructions and organizations on the basis of what is given, and the sensation-based approaches discuss certain unconscious cognitive processes that formulate inferences and judgements on the basis of what is given. But if what we perceive is already adequate, none of this additional work is needed to develop a sufficient understanding of the world around us.]

In particular, and most fundamentally, Gibson rejected the basic premise that the data available to the senses were inadequate to perception: “Even complex perceptual qualities must have stimuli” (p. 8); “If the total stimulation contains all that is needed to account for visual perception, the hypothesis of sensory organization is unnecessary” (p. 25). Clearly, if the total stimulation contains all that is necessary to account for visual perception, then the (unconscious) inferences, comparisons with memory, and judgments – the mental processing – of the sensation-based models are also unnecessary. If we ask the right question, Gibson suggests, if we ask about the experienced visual world based on surfaces and edges, rather than about the flat geometric visual field, then we find that the information available to the visual senses is sufficient to perception, and information enhancement via mental processing is a superfluous and flawed postulate.

(BR 10, citing Gibson 1950)

 

Because Gibson rejected this sense of mental processing as involving enhancements, he thereby also rejected “the classical distinction between sensations and perceptions;” for, “that distinction is based on the assumptions that sensations are informationally impoverished and that mental processing enriches them into perceptions” (10). [In other words, according to this view that Gibson rejects, we have raw sensations that are inadequate possibly because they are fragmented and/or disorganized, and thus perception is the process by which these sensations are made adequate perhaps by organizing them and/or by completing them where they leave informational gaps.]

 

Sensation-based models often see the perceiver as passively and statically receiving sensations on the basis of which she forms perceptions. Gibson rejects this idea, because human perceivers are very active while perceiving, making spontaneous decisions like changing where to look and how to orient themselves in their environment in order to perceive it better. Gibson also argued that perception is a “process that can only be understood in terms of its natural ecology” (BR 10). [Perhaps by this is meant that perception is always bound up with the conditions of the environment and one’s interactions with it, but I am not sure.] One way that Gibson supported this notion was by noting ways that changes the perceiver makes in their motion within their setting can enhance their perception, which can in fact even “modify the retinal images in a quite specific way”, as when for example certain physical movements provide “powerful information for depth perception in the form of motion parallax” (10).

 

[I am not very familiar with this notion of motion parallax. I found this helpful diagram.

parallax%20motion%20auto_zpsik5ce1lx

Motion parallax seems to be that very familiar phenomenon where when we are moving, objects in the distance seem to pass through our field of vision slower in comparison to things nearer to us. We might normally notice this when looking out of a train or automobile window. Until I read the source text by Gibson, I will not know what to say about this. But perhaps we might note at least that here depth perception is attained by moving around interactively in an environment, rather than simply taking in some sensory information passively, processing it, and then discerning the depth afterward.]

 

Gibson had yet another strong argument against the sensation-based models of perception, namely, the “homunculus problem” (10). To understand this issue, we should first take note of “retinal-image theories,” which say that it is necessary for people to process the stimulation on the eye’s retina. Gibson argues against this. He first observes that this view thinks that an image forms on the retina like an image projected onto a screen, and thus “the retinal image is something to be seen” (BR 11, quoting from Gibson, 1979, p. 60). [The idea here is that there is a sort of second act of seeing, that is, seeing the image on the “screen” of the eye.] Gibson considers this then a matter of a homunculus problem, because it is, as he calls it, “the little man in the brain theory” of the retinal image (BR 11, citing Gibson 1966, p. 226), “which conceives the eye as a camera at the end of a nerve cable that transmits the image to the brain. Then there has to be a little man, a homunculus, seated in the brain who looks at the physiological image. The little man would have to have an eye to see it with, of course, a little eye with a little retinal image connected to a little brain, and so we have explained nothing by this theory” (11 again from quotation). In fact, this theory only makes the matter worse, because it entails an endless series of little perceivers inside little perceivers (11). As BR explain, there other versions of this argument, but they all have in common “that something, or someone, must ultimately do the perceiving, and that is what was to be accounted for in the first place” (BR 20). They say that this homunculus problem is found in “any form of inputs-followed-by-processing-followed-by-perception model” (11).

 

Sensation-based models posit constructions by means of perceptual processes in order to account for “the problem of how full perceptions are derived from impoverished sense data” (11). But Gibson’s “assertion that the total stimulation is informationally adequate to perception” rejects the assumptions underlying that problem (11). “Gibson continued to develop his arguments against sensation-processing and other input-processing models” (11).

 

Gibson, seeing the shortcomings of sensation-based and Gestalt models of perception, offered his own model that BR describe as “an ecological direct-encoding model” (11). [The notion of an ecological model of perception is not very well defined for me yet, but perhaps that becomes clearer as we continue. It might mean a model in which the perceiver takes an active role in interacting with the perceived world while perceiving it. In this sense it might be something like Merleau-Ponty’s notion of how the perceiver is integrated with the world they perceive, forming one flesh. The fact that it is encoded seems to mean that the information is still discerned by placing it into what is perceived, but this is somehow done directly. But I am not sure. From what is said later, the notion of direct encoding might be related to the idea of resonance. So maybe our mind encodes the information into the sense data by resonating with the information that is already in a sense encoded in the way the data is given to us. But that is wild guessing on my part.] BR continue,

Gibson rejected the sensation-based conception of the perceiver as a passive individual confronting a flat visual field in favor of an active perceiver confronting an ecologically structured visual world – thus, | an ecological model. He also rejected both the mental constructivism of the sensation-based models and the sensory organization of the Gestaltists in favor of a direct correspondence between stimulation and perception  thus, a direct encoding model.

(11-12)

 

BR then note how “The direct encoding aspect of Gibson’s 1950 model was both a methodological move and a theoretical move” (12). The methodological component is his locating the basic problem of perception as being the problem of “establishing an empirical correspondence between the stimulus and its conscious resultant,” and this means that he proposes a sort of ecological psychophysics (BR 12, quoting Gibson 1950, p. 52). The theoretical component lies in the fact that he “rejected any intermediate processing of encoded sensations between the stimulation and the perception and in his corresponding rejection of the sensation-perception distinction” (12).

 

BR acknowledge that “It is not entirely clear that Gibson would have agreed with the ‘encoding’ part of our designation of his model as an ‘ecological direct-encoding’, especially in his late career” (BR 12). [Our summaries so far have skipped over BR’s own way of using Gibson’s thinking.] But, his 1950 model “seems committed to some form of a direct encoding model” (12).

 

If we adopt an encoding model, then we then have to explain how these encodings occur (12). As we will see, his “conceptualization of an ecologically active perceiver contains the germ of his later answers to that question and, we argue, the germ of interactive insights that allowed him to largely transcend the encoding approach altogether” (12). BR will now discuss the later development of his model.

 

The later model develops the “internal implications” of the 1950 model (12).

 

In the 1950 model was a sort of retinal-image-based model of perception, and “He described his psychophysics program as involving a ‘jump from the retinal image directly to the perceptual experience’ (p. 51)” (BR p. 12, qtg. Gibson 1950).

 

But as Gibson came more to an “ecological emphasis on the importance of the active perceiver,” this retinal-image focus proved inadequate (12d). For, “The retinal image of an active perceiver changes too much, too fast, and too continuously, in contrast with relatively stable perception, to be the primary locus of perception” (BR 13a). Gibson writes, “The active observer [however] gets invariant perception despite varying sensations” (BR p. 13, qtg. Gibson 1966, p. 3, bracketed insertion is BR’s).

 

So Gibson needed to find a “different locus of perception information” (13). It would need on the one hand to remain stable like how our perceptions are, while at the same time be “adequate to those perceptions” (13). [I am not sure what is meant by them being adequate to the perceptions. Perhaps the idea is that his model would need to juggle both the fact that sensory information is highly variable and thus not similar to perceptions, which are stable, while at the same time needing to somehow have this stability that perceptions have. So if we say that the sensory information is directly perceived but is variable, then it is not adequate to the perceptions, which are less variable. I am not certain however.] [The notion of a “perceptual locus” is important here, but I am not entirely sure I grasp what is meant by it. It seems to me that BR are saying that for Gibson, the locus of perception is actually somehow in the environment. But I am not exactly sure what is meant by that yet. They will refer again to motion parallax, and they write, “Motion parallax is a phenomenon of the structure of the ambient light through which the eye moves. The clear suggestion is that the broader spatial and temporal patterns in the ambient light might well be the actual locus of visual perception.” So the idea here might be the following: the structures by which depth is discerned are found not in the way the visual information is processed in the perceiver’s mind but rather it is located within the structures of the visual data itself as it is already in its raw givenness. So contained within the visual data hitting our eyes when we pass through the fields of light beams found in the space along our train ride, there is already the far away items “moving” slowly relative to the faster moving things nearer and nearer to us. Gibson might then be saying we thus perceive the depth directly, because that depth is already built into the way the light beams are structured in their patterns of givenness. Thus, we have a direct perception of depth on the basis of whatever visual data we get in whatever way it is given, without needed to process it.]

A different locus of perceptual information was required, one that maintained a stability comparable to that of perceptions and one that was adequate to those perceptions. A new perceptual locus was required by Gibson’s recognition of the importance of the active perceiver; such a locus was suggested by that same recognition. Gibson’s original emphasis on the active perceiver stemmed in part from the motion parallax information concerning depth that was thereby derived. Motion parallax is a phenomenon of the structure of the ambient light through which the eye moves. The clear suggestion is that the broader spatial and temporal patterns in the ambient light might well be the actual locus of visual perception.1 Certainly, on the one hand, there is no information available in the retinal image that is not available in the ambient light, and, on the other hand, it is difficult to conceive what alternative external locus for visual perception might be possible. Furthermore, very encouraging success was obtained in investigating the information that was in fact available in the ambient light. Correspondingly, “In my book, The Perception of the Visual World (1950), I took the retinal image to be the stimulus for an eye. In this book I will assume that it is only the stimulus for a retina and that ambient light is the stimulus for the visual system”  (1966, p. 155).

(BR 13)

[Endnote 1 on page 85 (quoting):

1. Such a shift to patterns in the ambient light as the locus of perception is clearly prefigured by his 1950 point that patterns of stimulation could themselves be stimuli (p. 9), even though at that time he was referring to retinal patterns. The shift is also consistent with his general ecological emphasis, but neither of these points is sufficient to force that shift – the active observer is sufficient.]

 

RB note two revisions that are called for in light of Gibson’s discovery. The first revision shifts the “postulated locus of visual perception from the retinal image to the ambient light” (13). [I might not follow the second revision. It seems to be that as a result of the first revision, we now need to change our view of the perceiver as someone who simply interprets the visual data given on the retina to instead be an active participant in the perceptual process by making spatial modifications in order to find patterns in the resulting changes in the visual data. Let me quote.]

Thus, consideration of the fact and necessity of the active perceiver forced a shift in the postulated locus of visual perception from the retinal image to the ambient light. Consideration of the ambient light as the locus of perception forced, in its turn, a reciprocal revision of the conception of the perceiver. The logic of the second revision derives from the fact that such broader spatial and temporal patterns in the ambient light cannot simply be sought by the visual system, then, when found, statically, retinally perceived. They are, by definition, too big for that. They must be scanned, sampled, or otherwise interacted with in such a way as to detect and identify - to pick up – an encounter with a discriminable pattern.

The detection and differentiation of such a broader pattern, a variant or invariant in the ambient light-the pickup of such information – is intrinsically interactive. The active perceiver of 1950 had to become a truly interactive perceiver: |

There is a loop from response to stimulus to response again (1966, p. 31).

An explanation of constant perception ... should be sought in the neural loop of an active perceptual system that includes the adjustments of the perceptual organ. Instead of supposing that the brain constructs or computes the objective information from a kaleidoscopic inflow of sensations, we may suppose that the orienting of the organs of perception is governed by the brain so that the whole system of input and output resonates to the external information, (1966, p. 5).

The process of pick up is postulated to depend on the input-output loop of a perceptual system (1979, p. 250)

The process is circular, not a one way transmission (1979, p. 61)

The course of the whole interaction can be critical. It is the course of the interaction by the visual system, for example, the scanning, both input and output and the relationships between them, that differentiates the pattern interacted with; it is not the ‘final’, static, retinal image that ‘completes’ the interaction that picks up such a pattern, nor even the ‘succession of images’ or, better, the flow of retinal stimulation that accompanies the interaction. Retinal stimulation is relegated to the input side of an overall interactive visual system that engages in such interactions and discriminates such patterns. It is the pattern of the interaction that differentiates and, thus, identifies the pattern interacted with; it is not any piece or component of the interaction.

(BR pp. 13-14, block qtg. Gibson)

 

[The next point reminds me very strongly of what Merleau-Ponty writes in section 1.2.1 of The Structure of Behavior. He describes the dynamic process of responding to a stimulus. Humans and animals do not know at the very start of a stimulus the correct response to it, because what needs to be recognized in the stimulus is a pattern that unfolds over time. And, while that pattern is unfolding, the responding creature modifies its receptivity in real time so to better sense the stimulus and respond appropriately. One example is how the ear of a cat responds to different sorts of touches:

Five different reflex responses can be obtained by stimulating the ear of a cat depending on the structure of the excitant employed. The pinna of the ear flattens out when it is bent, but responds to tickling with a few rapid twitches. The character of the response is completely modified depending on the form of electrical excitation (faradic or galvanic) or its strength; for example, weak strengths evoke rhythmic responses; strong ones evoke tonic reflexes. [...] (Sherrington and Miller). [qtd in Merleau-Ponty English translation p.11 /  French p.9]

He also seems to have a view of the perceiver not being passive, as it interacts with the stimuli in order to perceive it in such a way as to respond to it properly.

The organism cannot properly be compared to a keyboard on which the external stimuli would play and in which their proper form would be delineated for the simple reason that the organism contributes to the constitution of that form. (Merleau-Ponty 13 / 11)

And he has the example of holding an animal in an instrument and adjusting one’s hold in response to the creature’s movements. The idea here seems to be that if the animal changed its body shape so to escape the instrument, then we lose the ability to feel its movements. However, if we sense its body changing its shape and immediately respond by changing our hold on it, then we can continue sensing it. In other words, perception involves self-modification in immediate interactive response to what we are perceiving.

When my hand follows each effort of a struggling animal while holding an instrument for capturing it, it is clear that each of my movements responds to an external stimulation; but it is also clear that these stimulations could not be received without the movements by which I expose my receptors to their influence. “... The properties of the object and the intentions of the subject ... are not only intermingled; they also constitute a new whole.” (Merleau Ponty 13 / 11; the quotation is cited as “Weizsäcker, Reflexgesetze, p.45. “L’organisme est, dit Weizsäcker, Reizgestalter.” [Note: Reizgestalter is misspelled as Reizgestaller in the English translation.])

And he illustrates the real-time modifications to receptivity with how telephones seemed to work at that time. Apparently you dialed the receiving person’s name. After dialing the first letter, the connecting station then becomes sensitive to only those sets of letters that it knows can come after that first letter, and so on. (But I am not sure exactly how these phones worked.)

The model of the automatic telephone appears more satisfactory. Here indeed we find an apparatus which itself elaborates the stimuli. | In virtue of the devices installed in the automatic central, the same external action will have a variable effect according to the context of the preceding and following actions. An "O" marked on the automatic dial will have a different value depending on whether it comes at the beginning, as when I dial the exchange "Oberkampf," for example, or second, as in dialing "Botzaris." Here, as in the organism, it can be said that the excitant — that which puts the apparatus in operation and determines the nature of its responses — is not a sum of partial stimuli, because a sum is indifferent to the order of its factors; rather it is a constellation, an order, a whole, which gives its momentary meaning to each of the local excitations. The manipulation “B” always has the same immediate effect, but it exercises different functions at the automatic central depending on whether it precedes or follows the manipulation “O,” just as the same painted panel takes on two qualitatively distinct aspects depending on whether I see a blue disc on a rose-colored ground or, on the contrary, a rose-colored ring in the middle of which would appear a blue ground. In the simple case of an automatic telephone constructed for a limited number of manipulations, or in that of an elementary reflex, the central organization of the excitations can itself be conceived as a functioning of pre-established devices: the first manipulation would have the effect of making accessible to subsequent ones only a certain keyboard where the latter would be registered.

(Merleau-Ponty 13|14 / 12)

Gibson’s point of course is not identical to Merleau-Ponty’s, but let us note what seems to be two important similarities. In both cases, what is being perceived is something dynamic, and its unity is to be understood in terms of a pattern of variation. The second similarity is the interactive nature of the perception. The perceiver cannot simply remain in the same mode of receptivity. Rather, they need to adjust or modify themselves (in relation to their environment in general or to the external stimulus specifically) in one way or another in order to properly perceive the important patterns of the stimulus’ dynamic variations.]

 

BR next discuss the parallax example in terms of information. The light patterns are the information itself, found in the field of ambient light. BR also characterize the perceptive act by which the depth is discerned as involving information-extracting interactions as a means of picking up information. [But I would suppose this is not a matter of processing the information but rather of picking out the information already given immediately.] But Gibson does not mean for “information” to have its normal sense of “knowledge communicated to a receiver,” because Gibson does not want to imply necessarily that the information needs to be encoded and communicated to the perceiver [rather than being completely apparent from the beginning and immediately available as such to the perceiver (without further ‘encoding’ or ‘decoding’)] (BR 14).

 

Gibson does still think that retinal stimulation plays a role in visual perception. His emphasis however is on the nature of that role they play [I am not entirely certain, but it seems Gibson thinks the role is the following (and then I will quote so you can check). The role of the retinal stimulation is to provide the information in its physiological form, and perhaps we are to think of it as nervous signals. But Gibson emphasizes that the information about depth for example does not need to be acquired by further processing that visual information; for, it is already built into the structure of that information and it can be directly (without mediation) discerned by the perceiver.]

Gibson was also well aware that retinal stimulation does occur, that it plays a central role in visual perception, and that it is involved in (interactive) processes. The issue is the nature of that involvement: “The inputs of the receptors have to be processed, of course, because they in themselves do not specify anything more than the anatomical units that are triggered” (1979, p. 251). Information, however, “is not something that has to be processed” (1979), p. 251). “Information is conceivable as available in the ambient energy flux, not as signals in a bundle of nerve fibers” (1979, p. 263). Information is extracted by the interactions of sensory systems, not | encoded and transmitted by sensory organs. The eye and its stimulations participate in information-extracting patterns of interactions; they do not encode that information.

(BR 14-15)

 

Gibson’s interactive theories of perception involve the criticism of the notion of encoding and decoding in perception (BR 15).

 

The information in ambient light [with regard to parallax motion] does not need to be encoded, but there still needs to be a “process of pickup,” which he explained using the metaphor of resonance:

The perceiver interactively resonates with the available information (for example, 1966, p. 5; 1979, p. 246). Consistent with this suggestive metaphor, he also referred to the process of becoming able to extract information, of learning to resonate to available information, with a metaphor of “tuning.”

(BR 15)

 

But resonance is not the only way “energy patterns can be picked up without intermediate enhancement of encoded information” (15). Another problem with these metaphors is that “resonance requires periodicities in patterns to resonate to, and those are not necessarily available in information to be perceived” (15). A third problem is that “even if such periodicities were available, it is neither at all clear what it is about the interactive loop that would resonate to them nor how it would do so” (16). And a final problem with these metaphors, and also the most important one,  is that “that which resonates generally resonates at the same (or a directly related) frequency as that which is resonated to. The resonant frequency is a copy, a duplicate, of the original frequency. Such vestiges of picture, of image, of encoding conceptualizations are regretfully distortive of Gibson’s basic interactive insight in his concept of information extraction. The pattern of an interaction need not have any particular structural correspondence whatsoever with the pattern of ambient light that it differentiates” (15).

 

[So this metaphor of resonance is not entirely helpful for understanding the process of picking up information by means of interactive perceptions of the patterns in the environment’s dynamics. This also means that, without other explanations, we might have difficulty conceiving how this pick up process works.] But despite these problems with the metaphors, “the basic direction of the evolution of Gibson’s theory seems clear” BR explain (15). And in fact, that development continued even after his discovery of “interactive information extraction” (15). But Gibson’s model could involve the homunculus problem, [because the nature of the extraction has not been specified] so he needed to make a further step in the theory’s development, and that step “involved the problem of meaningful perception” (15).

 

Gibson already in his 1950 book The Perception of the Visual World worked with a notion of meaningful perception. There he “made a distinction between ‘The perception of the substantial or spatial world and ... the perception of the world of useful and significant things to which we ordinarily attend’ (p. 10 italics omitted)” (BR 15). Gibson’s term for the perception of the substantial or spatial world is literal perception, and the perception of the world of useful and significant things to which we ordinarily attend is called schematic perception. BR explain that “Schematic perception was presumed to be based on literal perception because literal perception ‘provides the fundamental repertory of impressions for an experience’ (p. 10), and the two forms of perception were presumed to have importantly different properties. Meanings were presumed to be attached to, and detachable from, the spatial impressions of literal perception” (BR 16).

 

BR then explain how this relates to the homunculus problem. For there to be meaningful perception, it would seem to require a homunculus to receive the literal spatial impressions and interpret them as having their appropriate meanings (16). And thus “Literal spatial impressions must be enhanced, presumably via some kind of processing with meanings” (16).

 

BR trace Gibson’s solution to this problem to beginning steps in his work of 1950, where he tied the usefulness of objects to their spatial features [and perhaps thus also our literal perceptions were tied to our schematic ones.] Gibson calls this squeezability: “He recognized [...] that ‘squeezableness is something which seems to be located in the object, not in the hand.... Visual objects appear to have soaked up such qualities and to be fairly saturated with them, the use of the object and the shape of the object being almost indistinguishable’ (pp. 203, 204). The idea that needs to be avoided still is that “the perception of the functional nature is dependent on the perception of the spatial nature” (16).

 

BR then have us look at Gibson’s model in a light that does not necessarily lead to this idea. We know already that when [for example in the case of parallax motion] we directly perceive the information [about depth], what we perceive are patterns that result from interactions. And furthermore, the information that we obtain indicates “potentialities for further actions and interactions” (BR 16). In other words, “what are most directly perceived are functional potentialities, potential usefulnesses” (16). [So when for example we interact with the environment by moving around it in order to obtain data that directly tells us of its spatial feature of depth, what that tells us are the different sorts of spatial ways that we may further interact with that space by moving through it in all its available dimensions.] Thus these “patterns of interactions [...] are simply functional indicators” (BR 16). [BR continue in the endnote to this passage: “From this perspective, in fact, the spatial is subsidiary to the functional. Surfaces, objects, and the like are constructed as patterns of potential interactions, including further perceptual interactions, that may be indicated by particular perceptual interactions, that is that may be perceived. Such construction of the physical and spatial out of the functional is in the general spirit of Piaget” (BR, endnote 2, p.85).] [I am not exactly sure what is meant here by “functional indicators”. Perhaps they are indications of ways that certain interactions with the environment can produce certain types of possible results. So for example, knowledge of how far a mountain is away from us, along with its relative height in comparison with its surroundings, can indicate the sorts of views we might have were we to climb it and the approximate amounts of time and effort it would take to accomplish that.]

 

What he previously called squeezability he later refines into his notion of affordance. [An affordance seems to be the directly apparent uses of things we perceive. So in the same act by which we observe the physical features of something, we thereby perceive its usability for certain purposes. But this usability is observed directly, because it is directly evident in the thing’s physical features.]

Such an imbuing of perception with direct, functional, ecological meaning, already hinted at in his 1950s discussion of squeezability, yield Gibson's concept of affordance. “The affordance of anything is a specific combination of the properties of its substance and its surfaces taken with reference to an animal” (1977, p. 67, italics omitted). Affordances are those things the environment “offers the animal, what it provides or furnishes either for good or ill" (1979, p. 127).3 And such affordances are intrinsic to perception:4

The composition and layout of surfaces constitute what afford ... to perceive them is to perceive what they [surfaces] afford ... it implies that the “values” and “meanings” of things in the environment can be directly perceived (1979, p. 127).

The perceiving of an affordance is not a process of perceiving a value-free physical object to which meaning is somehow added in a way that no | one has yet been able to agree upon; it is a process of perceiving a value-rich ecological object (1979, p. 140).

(BR 16-17)

[Endnotes 3 and 4 from page 85 (qtg.):

3. Affordances, of course, are therefore “relative to the animal. They are unique for that animal. They are not just abstract physical properties” (Gibson, 1979, p. 127). “Knee-high [therefore affording the potentiality of sitting on] for a child is not the same as knee-high for an adult” (Gibson, 1979, p. 128). Horizontal support for water bugs is different than for heavy terrestrial animals (Gibson, 1979, p. 127).

4. Gibson’s discussion, however, still suggests too much independence of the spatial from the functional; there is an incomplete recognition of the construction of physical and spatial representation out of functional representation. (Such construction would be a part of Gibson’s tuning, not his information extraction.) Gibson still wants to go “from surfaces to affordances,” he does so by having “the composition and layout of surfaces constitute what they afford” (1979, p. 127), but such constitution still leaves the question of what representation of a surface is as logically prior, though no longer temporally prior, to a representation of an affordance. Yet infants can perceive affordances without necessarily perceiving the surfaces, edges, and full objects that provide, or constitute, those affordances.]

 

 

BR’s final point seems to be that originally Gibson had a notion of ecological direct encoding, where we directly perceive the information because our minds somehow resonate with it [and in that way “encode” it in the sense of endowing its internal form with an informational value that was already there in its external form, but I am guessing]. But on account of there needing still to be some process encoding that information, it was abandoned later for this notion of affordance and interactive information extraction, where the meaning or information to be discerned in something perceived is given by interacting with it, which gives us its important physical features that thereby directly informs us of its possible uses. In other words, the significance of a perceived thing is its potential uses, and that is directly perceived by interaction with it and its environment rather than by some cognitive process whereby that information about its significance is decoded from our static perceptions of it. [Note, I might be missing the idea, because BR are using the term “encoding” rather than “decoding”. I am a little confused how it all works. Apparently according to some models, somehow at the site of sensations there is an encoding of information, and perhaps, but I am not sure, these models would have to say there later is a process that decodes this information (as if by a homunculus). The model is not very obvious to me yet. I wonder by the way if the encoding is anything like Lotze’s “local signs”.]

 

Interactive information extraction and affordances were the culminations of Gibson’s major moves away from his early ecological direct encoding. Although we later argue that those moves were nontrivially incomplete, nevertheless they transcended that early encoding model by constructing an intrinsically interactive mode of perception. Essentially, Gibson started with ecological direct encoding, then filled in the detection-differentiation-identification process, the process of ‘transducing’ the encodings, with so much interactive activity – extraction, resonance, pickup, affordance – so as to make it clear that whatever ultimate perceptual encoding, if any, occurred it was not primary nor necessary nor independent, but, rather, subsidiary to interactive extraction. Gibson’s basic insight was that it is possible to derive information about an environment from interactions with that environment without encoding anything from that environment.

(BR 17)

 

 

 

From:

 

Bickhard, Mark, & D. Richie. On the Nature of Representation: A Case Study of James Gibson’s Theory of Perception. New York [and other cities]: Praeger, 1983.

 

 

Bickhard and Richie cited a number of Gibson sources:

 

Gibson, J. J. The ecological approach to visual perception. Boston: Houghton Mifflin, 1979.

 

Gibson, J. J. The perception of the visual world. Boston: Houghton Mifflin, 1950.

 

Gibson, J. J., & Gibson, E. J. Perceptual learning: Differentiation or enrichment? Psychological Review, 1955, 62, 32–41.

 

Gibson, J. J. The senses considered as perceptual systems. Boston: Houghton Mifflin, 1966.

 

 

Or if otherwise noted:


Merleau-Ponty, Maurice. The Structure of Behavior. Transl. Alden L. Fisher. Boston: Beacon Press, 1963.


Merleau-Ponty, Maurice. La structure du comportement. Paris: Presses universitaires de France, 1942 / 1967.

 

 

Image credits:

Automobile parallax motion diagram:

Travis Schirner, ¨Mission Possible?¨
https://travisschirner.wordpress.com/2013/06/08/mission-possible/

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