Monday, 18 September 2017

Consortium

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A consortium is an association of two or more individuals, companies, organizations or governments (or any combination of these entities) with the objective of participating in a common activity or pooling their resources for achieving a common goal.
Consortium is a Latin word, meaning "partnership", "association" or "society" and derives from consors 'partner', itself from con- 'together' and sors 'fate', meaning owner of means or comrade.


Examples[edit]

Educational[edit]

The Big Ten Academic Alliance and Five Colleges, Inc., along with the Claremont Consortium are among the oldest and most successful higher education consortia in the United States. The Big Ten Academic Alliance, formerly known as the Committee on Institutional Cooperation, includes the members of the Big Ten athletic conference. The participants in Five Colleges, Inc. are: Amherst College, Hampshire College, Mount Holyoke College, Smith College, and the University of Massachusetts Amherst. Another example of a successful consortium is the Five Colleges of Ohio of Ohio: Oberlin College, Ohio Wesleyan University, Kenyon College, College of Wooster and Denison University. The aforementioned Claremont Consortium (known as the Claremont Colleges) consists of Pomona College, Claremont Graduate University, Scripps College, Claremont McKenna College, Harvey Mudd College, Pitzer College, and Keck Graduate Institute. These consortia have pooled the resources of their member colleges and the universities to share human and material assets as well as to link academic and administrative resources.
An example of a non-profit consortium is the Appalachian College Association located in Richmond, Kentucky. The association consists of 35 private liberal arts colleges and universities spread across the central Appalachian mountains in Kentucky, North Carolina, Tennessee, Virginia, and West Virginia. Collectively these higher education institutions serve approximately 42,500 students. Six research universities in the region (University of Kentucky, University of North Carolina, University of Tennessee, West Virginia University, University of Virginia, and Virginia Tech) are affiliated with the ACA. These institutions assist the ACA in reviewing grant and fellowship applications, conducting workshops, and providing technical assistance. The ACA works to serve higher education in the rural regions of these five states.

Commercial[edit]

An example of a for-profit consortium is a group of banks that collaborate to make a loan—also known as a syndicate. This type of loan is more commonly known as a syndicated loan. In England it is common for a consortium to buy out financially struggling football clubs in order to keep them out of liquidation.
Hulu, the American video streaming service, is owned by a consortium of large media conglomerates including Time Warner, 21st Century Fox, Comcast, and the Walt Disney Company.[2]
Alyeska Pipeline Service Company, the company that built the Trans-Alaska Pipeline System in the 1970s, initially was a consortium of BP, ARCO, ConocoPhillips, Exxon, Mobil, Unocal, and Koch Alaska Pipeline Company.

Aerospace[edit]

Airbus example[edit]

Airbus Industries was formed in 1970 as a consortium of aerospace manufacturers. The retention of production and engineering assets by the partner companies in effect made Airbus Industries a sales and marketing company.[3] This arrangement led to inefficiencies due to the inherent conflicts of interest that the four partner companies faced; they were both shareholders of, and subcontractors to, the consortium. The companies collaborated on development of the Airbus range, but guarded the financial details of their own production activities and sought to maximize the transfer prices of their sub-assemblies.[4]
In 2001, EADS (created by the merger of French, German and Spanish Airbus partner companies) and BAE Systems (the British partner company) transferred their Airbus production assets to a new company, Airbus SAS. In return, they got 80% and 20% shares respectively. BAE would later sell its share to EADS.

Panavia Tornado[edit]

The Tornado was developed and built by Panavia Aircraft GmbH, a tri-national consortium consisting of British Aerospace (previously British Aircraft Corporation), MBB of West Germany, and Aeritalia of Italy. It first flew on 14 August 1974 and was introduced into service in 1979–1980. Due to its multirole design, it was able to replace several different fleets of aircraft in the adopting air forces. The Royal Saudi Air Force (RSAF) became the only export operator of the Tornado in addition to the three original partner nations. Including all variants, 992 aircraft were built.

Coopetition[edit]

Coopetition is a word coined from cooperation and competition. It is used when companies otherwise competitors collaborate in a consortium to cooperate on areas non-strategic for their core businesses. They prefer to reduce their costs on these non-strategic areas and compete on other areas where they can differentiate better.
For example, the GENIVI Alliance is a not-for-profit consortium between different car makers in order to ease building an in-vehicle infotainment system.
Another example is the World Wide Web Consortium (W3C), which is a consortium that standardizes web technologies like HTML, XML and CSS.

Government, academia & industry[edit]

The Institute for Food Safety and Health is a consortium consisting of the Illinois Institute of Technology, the Food and Drug Administration's Center for Food Safety and Applied Nutrition, and members of the food industry. Some of the work done at the institute includes, "assessment and validation of new and novel food safety and preservation technologies, processing and packaging systems, microbiological and chemical methods, health promoting food components, and risk management strategies."[5]

See also[edit]

References[edit]

 This article incorporates text from a publication now in the public domain: Herbermann, Charles, ed. (1913). "passim". Catholic Encyclopedia. New York: Robert Appleton. 
  1. Jump up ^ "Contract Signed for Final Design and Construction of Largest Adaptive Mirror Unit in the World". Retrieved 22 June 2015. 
  2. Jump up ^ Steel, Emily (2016-08-03). "Time Warner Acquires 10% Stake in Hulu". The New York Times. ISSN 0362-4331. Retrieved 2016-10-27. 
  3. Jump up ^ Done, Kevin (2 February 2001). "Survey - Europe Reinvented: Airbus has come of age". Financial Times. 
  4. Jump up ^ Sparaco, Pierre (19 March 2001). "Climate Conducive For Airbus Consolidation". Aviation Week & Space Technology. 
  5. Jump up ^ "About". IIT IFSH. Illinois Institute of Technology. Archived from the original on 28 June 2013. Retrieved 21 March 2014. 

Comparative

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In linguistics, the comparative is a syntactic construction that serves to express a comparison between two (or more) entities or groups of entities in quality,or degree. See comparison (grammar) for an overview of comparison, as well as positive and superlative degrees of comparison.
Ex: " This sofa is more comfortable than that one. " "James is smaller than Chris." The syntax of comparative constructions is poorly understood due to the complexity of the data. In particular, the comparative frequently occurs with independent mechanisms of syntax such as coordination and forms of ellipsis (gapping, pseudogapping, null complement anaphora, stripping, verb phrase ellipsis). The interaction of the various mechanisms complicates the analysis.


Absolute and null forms[edit]

A number of fixed expressions use a comparative form where no comparison is being asserted, such as higher education or younger generation. These comparatives can be called absolute.
Similarly, a null comparative is one in which the starting point for comparison is not stated. These comparisons are frequently found in advertising, for example, in typical assertions such as Our burgers have more flavor, Our picture is sharper or 50% more. These uses of the comparative do not mention what it is they are being compared to. In some cases it is easy to infer what the missing element in a null comparative is. In other cases, the speaker or writer has been deliberately vague, for example "Glasgow's miles better".
Scientific classification, taxonomy, and geographical categorization conventionally include the adjectives greater and lesser, when a large or small variety of an item is meant, as in the greater celandine as opposed to the lesser celandine. These adjectives may at first sight appear as a kind of null comparative, when as is usual, they are cited without their opposite counterpart. It should be apparent, however, that an entirely different variety of animal, scientific, or geographical object is intended. Thus it may be found, for example, that the lesser panda entails a giant panda variety, and a gazetteer would establish that there are the Lesser Antilles as well as the Greater Antilles. It is in the nature of grammatical conventions evolving over time that it is difficult to establish when they first became widely accepted, but both greater and lesser in these instances have over time become mere adjectives (or adverbial constructs), so losing their comparative connotation. Further, Greater indicates the inclusion adjacent areas when referring to metropolitan areas, such as when suburbs are intended. Although it implies a comparison with a narrower definition that refers to a central city only, such as Greater London versus the City of London, or Greater New York versus New York City, it is not part of the "comparative" in the grammatical sense of this article. A comparative always compares something directly with something else.

Comparative coordination vs. comparative subordination[edit]

At times the syntax of comparatives matches the syntax of coordination, and at other times, it must be characterized in terms of subordination.

Comparative coordination[edit]

The syntax of comparatives can closely mirror the syntax of coordination. The similarity in structure across the following a- and b-sentences illustrates this point. The conjuncts of the coordinate structures are enclosed in square brackets:[1]
a. [The boys] and [the girls] sent flowers to him today.
b. More [boys] than [girls] sent flowers to him today.
a. [The boys sent] and [the girls dropped off] flowers for him today.
b. [More boys sent] than [girls dropped off] flowers for him today.
a. The boys sent [flowers to him] and [chocolates to her] today.
b. More boys sent [flowers to him] than [chocolates to her] today.
a. The boys sent [flowers to him today] and [chocolates to her yesterday].
b. More boys sent [flowers to him today] than [chocolates to her yesterday].
The structure of the b-sentences involving comparatives is closely similar to the structure of the a-sentences involving coordination. Based on this similarity, many have argued that the syntax of comparatives overlaps with the syntax of coordination at least some of the time.[2] In this regard, the than in the b-sentences should be viewed as a coordinator (coordinate conjunction), not as a subordinator (subordinate conjunction).

Comparative subordination[edit]

Examples of the comparative that do not allow an analysis in terms of coordination (because the necessary parallel structures are not present) are instances of comparative subordination.[3] In such cases, than has the status of a preposition or a subordinator (subordinate conjunction), e.g.
a. We invited more people than wanted to come.
b. A better striker was playing for them than we have.
c. More passengers than the airline had issued tickets tried to board the plane.[4]
d. More guests than we had chairs showed up.
e. Who did he eat more hotdogs than?
Since the parallel structures associated with coordinate structures, i.e., the conjuncts, cannot be acknowledged in these sentences, the only analysis available is one in terms of subordination, whereby than has the status of a subordinator (as in sentences a-d) or of a preposition (as in sentence e). What this means is that the syntax of comparatives is complex because at times an analysis in terms of coordination is warranted, whereas at other times, the analysis must assume subordination.

Comparative deletion and subdeletion[edit]

There are two types of ellipsis that are unique to the than-clauses of comparatives: comparative deletion and comparative subdeletion. The existence of comparative deletion as an ellipsis mechanism is widely acknowledged,[5] whereas the status of comparative subdeletion as an ellipsis mechanism is more controversial.[6]

Comparative deletion[edit]

Comparative deletion is an obligatory ellipsis mechanism that occurs in the than-clause of a comparative construction. The elided material of comparative deletion is indicated using a blank, and the unacceptable b-sentences show what is construed as having been elided in the a-sentences:
a. Fred reads more books than Susan reads ___.
b. *Fred reads more books than Susan reads books. - Sentence is bad because comparative deletion has not occurred.
a. We invited more people than ___ came.
b. *We invited more people than people came. - Sentence is bad because comparative deletion has not occurred.
a. She was happier than I was ___.
b. *She was happier than I was happy. - Sentence is bad because comparative deletion has not occurred.

Comparative subdeletion[edit]

Comparative subdeletion is a second type of ellipsis in comparatives that some accounts acknowledge.[7] It occurs when the focused constituent in the than-clause is not deleted because it is distinct from its counterpart in the main clause. In other words, comparative subdeletion occurs when comparative deletion does not because the constituents being compared are distinct, e.g.
a. He has more cats than he has __ dogs.
b. Fewer women showed up than __ men wanted to dance.
c. You were happier than I was __ sad.
b. The table is as wide as it is __ tall.
Accounts that acknowledge comparative subdeletion posit a null measure expression in the position marked by the blank (x-many, x-much). This element serves to focus the expression in the same way that -er or more focuses its counterpart in the main clause. Various arguments are put forth that motivate the existence of this null element.[8] These arguments will not be reproduced here, though. Suffice it to say that the sentences in which subdeletion is supposedly occurring are qualitatively different from sentences in which comparative deletion occurs, e.g., He has more cats than you have ___ .

Independent ellipsis mechanisms in than-clauses[edit]

There are a number of independent ellipsis mechanisms that occur in the than-clauses of comparative constructions: gapping, pseudogapping, null complement anaphora, stripping, and verb phrase ellipsis. These mechanisms are independent of comparative clauses because they also occur when the comparative is not involved. The presence of these ellipsis mechanisms in than-clauses complicates the analysis considerably, since they render it difficult to discern which aspects of the syntax of comparatives are unique to comparatives.
a. You should visit me on Tuesday, and I ___ you on Wednesday. - Gapping without the comparative
b. You visited me on Tuesdays more than I ___ you on Wednesdays. - Gapping with the comparative
a. He will say it twice before she has ___ once. - Pseudogapping without the comparative
b. More people will say it twice than ___ will ___ just once. - Pseudogapping with the comparative; comparative deletion also present
a. He did it as I expected ___ . - Null complement anaphora without the comparative
b. He did it more than I expected ___ . - Null complement anaphora with the comparative
a. Men did it, and women ___ too. - Stripping without the comparative
b. More men did it than women ___ . - Stripping analysis possible here
a. Susan has helped when you have ___ . - Verb phrase ellipsis without the comparative
b. Susan has helped more than you have ___ . - Verb phrase ellipsis with the comparative
The fact that the five independent ellipsis mechanisms (and possibly others) can occur in the than-clauses of comparatives has rendered the study of the syntax of comparatives particularly difficult. One is often not sure which ellipsis mechanisms are involved in a given than-clause. One thing is clear, however: the five ellipsis mechanisms illustrated here are distinct from the two ellipsis mechanisms that are unique to comparatives mentioned above (comparative deletion and comparative subdeletion).

See also[edit]

Notes[edit]

  1. Jump up ^ The examples are taken from Osborne (2009:428).
  2. Jump up ^ For examples of accounts that argue that the syntax of comparatives overlaps with the syntax of coordination at least some of the time, see Pinkham (1982), Napoli (1983), McCawley 1988, Lechner (2004), Corver (2006), and Osborne (2009).
  3. Jump up ^ The distinction between comparative coordination and comparative subordination is discussed at length by Osborne (2009).
  4. Jump up ^ The example is taken from Pinkham (1982:50).
  5. Jump up ^ The classic work that explores comparative deletion is Bresnan (1973). See Corver (2006) also.
  6. Jump up ^ Osborne (2009:447), for instance, rejects the ellipsis analysis of structure assumed to involve comparative subdeletion.
  7. Jump up ^ For analyses of comparative subdeletion, see for instance Bresnan (1973), Grimshaw (1987), and Corver (2006).
  8. Jump up ^ See Bresnan (1973) and Corver (2006) for the arguments in favor of an ellipsis analysis of subdeletion.

References[edit]

  • Bresnan, J. 1973. Syntax of the comparative clause construction in English. Linguistic Inquiry 35, 275-343.
  • Bresnan, J. 1976. On the form and functioning of transformations. Linguistic Inquiry 7, 3-40.
  • Corver, N. 2006. Comparative deletion and subdeletion. Volume 1, The Blackwell companion to syntax, eds. M. Everaert and H. van Riemsdijk, 582-637. Malden: Blackwell.
  • Grimshaw, J. 1987. Subdeletion. Linguistic Inquiry, 659-669.
  • Huddleston, R. and G. Pullum. 2002. The Cambridge gammar of the English Language.
  • Lechner, W. 2004. Ellipsis in comparatives. Berlin: Mouton de Gruyter.
  • Napoli D.J. 1983. Comparative ellisis: A phrase structure analysis. Linguistic Inquiry 14, 675-694.
  • Osborne, T. 2009. Comparative coordination vs. comparative subordination. Natural Language and Linguistic Theory 27, 427-454.
  • Pinkham, J. 1982. The formation of comparative clauses in French and English. Doctoral dissertation, Harvard University.
  • Ryan, K. 1983. Than as a coordination. Papers from the nineteenth regional meeting of the Chicago Linguistics Society. 353-361.

Enquiry

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A question mark
An inquiry is any process that has the aim of augmenting knowledge, resolving doubt, or solving a problem. A theory of inquiry is an account of the various types of inquiry and a treatment of the ways that each type of inquiry achieves its aim.

Inquiry theories[edit]

Deduction[edit]

When three terms are so related to one another that the last is wholly contained in the middle and the middle is wholly contained in or excluded from the first, the extremes must admit of perfect syllogism. By 'middle term' I mean that which both is contained in another and contains another in itself, and which is the middle by its position also; and by 'extremes' (a) that which is contained in another, and (b) that in which another is contained. For if A is predicated of all B, and B of all C, A must necessarily be predicated of all C. ... I call this kind of figure the First. (Aristotle, Prior Analytics, 1.4)

Induction[edit]

Inductive reasoning consists in establishing a relation between one extreme term and the middle term by means of the other extreme; for example, if B is the middle term of A and C, in proving by means of C that A applies to B; for this is how we effect inductions. (Aristotle, Prior Analytics, 2.23)

Abduction[edit]

The locus classicus for the study of abductive reasoning is found in Aristotle's Prior Analytics, Book 2, Chapt. 25. It begins this way:
We have Reduction (απαγωγη, abduction):
  1. When it is obvious that the first term applies to the middle, but that the middle applies to the last term is not obvious, yet is nevertheless more probable or not less probable than the conclusion;
  2. Or if there are not many intermediate terms between the last and the middle;
For in all such cases the effect is to bring us nearer to knowledge.
By way of explanation, Aristotle supplies two very instructive examples, one for each of the two varieties of abductive inference steps that he has just described in the abstract:
  1. For example, let A stand for "that which can be taught", B for "knowledge", and C for "morality". Then that knowledge can be taught is evident; but whether virtue is knowledge is not clear. Then if BC is not less probable or is more probable than AC, we have reduction; for we are nearer to knowledge for having introduced an additional term, whereas before we had no knowledge that AC is true.
  2. Or again we have reduction if there are not many intermediate terms between B and C; for in this case too we are brought nearer to knowledge. For example, suppose that D is "to square", E "rectilinear figure", and F "circle". Assuming that between E and F there is only one intermediate term — that the circle becomes equal to a rectilinear figure by means of lunules — we should approximate to knowledge. (Aristotle, "Prior Analytics", 2.25, with minor alterations)
Aristotle's latter variety of abductive reasoning, though it will take some explaining in the sequel, is well worth our contemplation, since it hints already at streams of inquiry that course well beyond the syllogistic source from which they spring, and into regions that Peirce will explore more broadly and deeply.

Inquiry in the pragmatic paradigm[edit]

In the pragmatic philosophies of Charles Sanders Peirce, William James, John Dewey, and others, inquiry is closely associated with the normative science of logic. In its inception, the pragmatic model or theory of inquiry was extracted by Peirce from its raw materials in classical logic, with a little bit of help from Kant, and refined in parallel with the early development of symbolic logic by Boole, De Morgan, and Peirce himself to address problems about the nature and conduct of scientific reasoning. Borrowing a brace of concepts from Aristotle, Peirce examined three fundamental modes of reasoning that play a role in inquiry, commonly known as abductive, deductive, and inductive inference.
In rough terms, abduction is what we use to generate a likely hypothesis or an initial diagnosis in response to a phenomenon of interest or a problem of concern, while deduction is used to clarify, to derive, and to explicate the relevant consequences of the selected hypothesis, and induction is used to test the sum of the predictions against the sum of the data. It needs to be observed that the classical and pragmatic treatments of the types of reasoning, dividing the generic territory of inference as they do into three special parts, arrive at a different characterization of the environs of reason than do those accounts that count only two.
These three processes typically operate in a cyclic fashion, systematically operating to reduce the uncertainties and the difficulties that initiated the inquiry in question, and in this way, to the extent that inquiry is successful, leading to an increase in knowledge or in skills.
In the pragmatic way of thinking everything has a purpose, and the purpose of each thing is the first thing we should try to note about it.[1] The purpose of inquiry is to reduce doubt and lead to a state of belief, which a person in that state will usually call knowledge or certainty. As they contribute to the end of inquiry, we should appreciate that the three kinds of inference describe a cycle that can be understood only as a whole, and none of the three makes complete sense in isolation from the others. For instance, the purpose of abduction is to generate guesses of a kind that deduction can explicate and that induction can evaluate. This places a mild but meaningful constraint on the production of hypotheses, since it is not just any wild guess at explanation that submits itself to reason and bows out when defeated in a match with reality. In a similar fashion, each of the other types of inference realizes its purpose only in accord with its proper role in the whole cycle of inquiry. No matter how much it may be necessary to study these processes in abstraction from each other, the integrity of inquiry places strong limitations on the effective modularity of its principal components.
In Logic: The Theory of Inquiry, John Dewey defined inquiry as "the controlled or directed transformation of an indeterminate situation into one that is so determinate in its constituent distinctions and relations as to convert the elements of the original situation into a unified whole"[2] Dewey and Peirce's conception of inquiry extended beyond a system of thinking and incorporated the social nature of inquiry. These ideas are summarize in the notion Community of inquiry.[3][4][5]

Art and science of inquiry[edit]

For our present purposes, the first feature to note in distinguishing the three principal modes of reasoning from each other is whether each of them is exact or approximate in character. In this light, deduction is the only one of the three types of reasoning that can be made exact, in essence, always deriving true conclusions from true premises, while abduction and induction are unavoidably approximate in their modes of operation, involving elements of fallible judgment in practice and inescapable error in their application.
The reason for this is that deduction, in the ideal limit, can be rendered a purely internal process of the reasoning agent, while the other two modes of reasoning essentially demand a constant interaction with the outside world, a source of phenomena and problems that will no doubt continue to exceed the capacities of any finite resource, human or machine, to master. Situated in this larger reality, approximations can be judged appropriate only in relation to their context of use and can be judged fitting only with regard to a purpose in view.
A parallel distinction that is often made in this connection is to call deduction a demonstrative form of inference, while abduction and induction are classed as non-demonstrative forms of reasoning. Strictly speaking, the latter two modes of reasoning are not properly called inferences at all. They are more like controlled associations of words or ideas that just happen to be successful often enough to be preserved as useful heuristic strategies in the repertoire of the agent. But non-demonstrative ways of thinking are inherently subject to error, and must be constantly checked out and corrected as needed in practice.
In classical terminology, forms of judgment that require attention to the context and the purpose of the judgment are said to involve an element of "art", in a sense that is judged to distinguish them from "science", and in their renderings as expressive judgments to implicate arbiters in styles of rhetoric, as contrasted with logic.
In a figurative sense, this means that only deductive logic can be reduced to an exact theoretical science, while the practice of any empirical science will always remain to some degree an art.

Zeroth order inquiry[edit]

Many aspects of inquiry can be recognized and usefully studied in very basic logical settings, even simpler than the level of syllogism, for example, in the realm of reasoning that is variously known as Boolean algebra, propositional calculus, sentential calculus, or zeroth-order logic. By way of approaching the learning curve on the gentlest availing slope, we may well begin at the level of zeroth-order inquiry, in effect, taking the syllogistic approach to inquiry only so far as the propositional or sentential aspects of the associated reasoning processes are concerned. One of the bonuses of doing this in the context of Peirce's logical work is that it provides us with doubly instructive exercises in the use of his logical graphs, taken at the level of his so-called "alpha graphs".
In the case of propositional calculus or sentential logic, deduction comes down to applications of the transitive law for conditional implications and the approximate forms of inference hang on the properties that derive from these. In describing the various types of inference I will employ a few old "terms of art" from classical logic that are still of use in treating these kinds of simple problems in reasoning.
Deduction takes a Case, the minor premise
and combines it with a Rule, the major premise
to arrive at an Act, the demonstrative conclusion
Induction takes a Case of the form
and matches it with a Fact of the form
to infer a Rule of the form
Abduction takes a Fact of the form
and matches it with a Rule of the form
to infer a Case of the form
For ease of reference, Figure 1 and the Legend beneath it summarize the classical terminology for the three types of inference and the relationships among them.
o-------------------------------------------------o
|                                                 |
|                   Z                             |
|                   o                             |
|                   |\                            |
|                   | \                           |
|                   |  \                          |
|                   |   \                         |
|                   |    \                        |
|                   |     \   R U L E             |
|                   |      \                      |
|                   |       \                     |
|               F   |        \                    |
|                   |         \                   |
|               A   |          \                  |
|                   |           o Y               |
|               C   |          /                  |
|                   |         /                   |
|               T   |        /                    |
|                   |       /                     |
|                   |      /                      |
|                   |     /   C A S E             |
|                   |    /                        |
|                   |   /                         |
|                   |  /                          |
|                   | /                           |
|                   |/                            |
|                   o                             |
|                   X                             |
|                                                 |
| Deduction takes a Case of the form X → Y,       |
| matches it with a Rule of the form Y → Z,       |
| then adverts to a Fact of the form X → Z.       |
|                                                 |
| Induction takes a Case of the form X → Y,       |
| matches it with a Fact of the form X → Z,       |
| then adverts to a Rule of the form Y → Z.       |
|                                                 |
| Abduction takes a Fact of the form X → Z,       |
| matches it with a Rule of the form Y → Z,       |
| then adverts to a Case of the form X → Y.       |
|                                                 |
| Even more succinctly:                           |
|                                                 |
|           Abduction Deduction Induction         |
|                                                 |
| Premise:     Fact Case Case                     |
| Premise:     Rule Rule Fact                     |
| Outcome:     Case Fact Rule                     |
|                                                 |
o-------------------------------------------------o
Figure 1.  Elementary Structure and Terminology
In its original usage a statement of Fact has to do with a deed done or a record made, that is, a type of event that is openly observable and not riddled with speculation as to its very occurrence. In contrast, a statement of Case may refer to a hidden or a hypothetical cause, that is, a type of event that is not immediately observable to all concerned. Obviously, the distinction is a rough one and the question of which mode applies can depend on the points of view that different observers adopt over time. Finally, a statement of a Rule is called that because it states a regularity or a regulation that governs a whole class of situations, and not because of its syntactic form. So far in this discussion, all three types of constraint are expressed in the form of conditional propositions, but this is not a fixed requirement. In practice, these modes of statement are distinguished by the roles that they play within an argument, not by their style of expression. When the time comes to branch out from the syllogistic framework, we will find that propositional constraints can be discovered and represented in arbitrary syntactic forms.

Example of inquiry[edit]

Examples of inquiry, that illustrate the full cycle of its abductive, deductive, and inductive phases, and yet are both concrete and simple enough to be suitable for a first (or zeroth) exposition, are somewhat rare in Peirce's writings, and so let us draw one from the work of fellow pragmatician John Dewey, analyzing it according to the model of zeroth-order inquiry that we developed above.
A man is walking on a warm day. The sky was clear the last time he observed it; but presently he notes, while occupied primarily with other things, that the air is cooler. It occurs to him that it is probably going to rain; looking up, he sees a dark cloud between him and the sun, and he then quickens his steps. What, if anything, in such a situation can be called thought? Neither the act of walking nor the noting of the cold is a thought. Walking is one direction of activity; looking and noting are other modes of activity. The likelihood that it will rain is, however, something suggested. The pedestrian feels the cold; he thinks of clouds and a coming shower. (John Dewey, How We Think, 1910, pp. 6-7).

Once over quickly[edit]

Let's first give Dewey's example of inquiry in everyday life the quick once over, hitting just the high points of its analysis into Peirce's three kinds of reasoning.

Abductive phase[edit]

In Dewey's "Rainy Day" or "Sign of Rain" story, we find our peripatetic hero presented with a surprising Fact:
  • Fact: C → A, In the Current situation the Air is cool.
Responding to an intellectual reflex of puzzlement about the situation, his resource of common knowledge about the world is impelled to seize on an approximate Rule:
  • Rule: B → A, Just Before it rains, the Air is cool.
This Rule can be recognized as having a potential relevance to the situation because it matches the surprising Fact, C → A, in its consequential feature A.
All of this suggests that the present Case may be one in which it is just about to rain:
  • Case: C → B, The Current situation is just Before it rains.
The whole mental performance, however automatic and semi-conscious it may be, that leads up from a problematic Fact and a previously settled knowledge base of Rules to the plausible suggestion of a Case description, is what we are calling an abductive inference.

Deductive phase[edit]

The next phase of inquiry uses deductive inference to expand the implied consequences of the abductive hypothesis, with the aim of testing its truth. For this purpose, the inquirer needs to think of other things that would follow from the consequence of his precipitate explanation. Thus, he now reflects on the Case just assumed:
  • Case: C → B, The Current situation is just Before it rains.
He looks up to scan the sky, perhaps in a random search for further information, but since the sky is a logical place to look for details of an imminent rainstorm, symbolized in our story by the letter B, we may safely suppose that our reasoner has already detached the consequence of the abduced Case, C → B, and has begun to expand on its further implications. So let us imagine that our up-looker has a more deliberate purpose in mind, and that his search for additional data is driven by the new-found, determinate Rule:
  • Rule: B → D, Just Before it rains, Dark clouds appear.
Contemplating the assumed Case in combination with this new Rule leads him by an immediate deduction to predict an additional Fact:
  • Fact: C → D, In the Current situation Dark clouds appear.
The reconstructed picture of reasoning assembled in this second phase of inquiry is true to the pattern of deductive inference.

Inductive phase[edit]

Whatever the case, our subject observes a Dark cloud, just as he would expect on the basis of the new hypothesis. The explanation of imminent rain removes the discrepancy between observations and expectations and thereby reduces the shock of surprise that made this process of inquiry necessary.

Looking more closely[edit]

Seeding hypotheses[edit]

Figure 4 gives a graphical illustration of Dewey's example of inquiry, isolating for the purposes of the present analysis the first two steps in the more extended proceedings that go to make up the whole inquiry.
o-----------------------------------------------------------o
|                                                           |
|     A                                               D     |
|      o                                             o      |
|       \ *                                       * /       |
|        \  *                                   *  /        |
|         \   *                               *   /         |
|          \    *                           *    /          |
|           \     *                       *     /           |
|            \   R u l e             R u l e   /            |
|             \       *               *       /             |
|              \        *           *        /              |
|               \         *       *         /               |
|                \          * B *          /                |
|              F a c t        o        F a c t              |
|                  \          *          /                  |
|                   \         *         /                   |
|                    \        *        /                    |
|                     \       *       /                     |
|                      \   C a s e   /                      |
|                       \     *     /                       |
|                        \    *    /                        |
|                         \   *   /                         |
|                          \  *  /                          |
|                           \ * /                           |
|                            \*/                            |
|                             o                             |
|                             C                             |
|                                                           |
| A  =  the Air is cool                                     |
| B  =  just Before it rains                                |
| C  =  the Current situation                               |
| D  =  a Dark cloud appears                                |
|                                                           |
| A is a major term                                         |
| B is a middle term                                        |
| C is a minor term                                         |
| D is a major term, associated with A                      |
|                                                           |
o-----------------------------------------------------------o
Figure 4.  Dewey's 'Rainy Day' Inquiry
In this analysis of the first steps of Inquiry, we have a complex or a mixed form of inference that can be seen as taking place in two steps:
  • The first step is an Abduction that abstracts a Case from the consideration of a Fact and a Rule.
Fact: C → A, In the Current situation the Air is cool.
Rule: B → A, Just Before it rains, the Air is cool.
Case: C → B, The Current situation is just Before it rains.
  • The final step is a Deduction that admits this Case to another Rule and so arrives at a novel Fact.
Case: C → B, The Current situation is just Before it rains.
Rule: B → D, Just Before it rains, a Dark cloud will appear.
Fact: C → D, In the Current situation, a Dark cloud will appear.
This is nowhere near a complete analysis of the Rainy Day inquiry, even insofar as it might be carried out within the constraints of the syllogistic framework, and it covers only the first two steps of the relevant inquiry process, but maybe it will do for a start.
One other thing needs to be noticed here, the formal duality between this expansion phase of inquiry and the argument from analogy. This can be seen most clearly in the propositional lattice diagrams shown in Figures 3 and 4, where analogy exhibits a rough "A" shape and the first two steps of inquiry exhibit a rough "V" shape, respectively. Since we find ourselves repeatedly referring to this expansion phase of inquiry as a unit, let's give it a name that suggests its duality with analogy—"catalogy" will do for the moment. This usage is apt enough if one thinks of a catalogue entry for an item as a text that lists its salient features. Notice that analogy has to do with the examples of a given quality, while catalogy has to do with the qualities of a given example. Peirce noted similar forms of duality in many of his early writings, leading to the consummate treatment in his 1867 paper "On a New List of Categories" (CP 1.545-559, W 2, 49-59).

Weeding hypotheses[edit]

In order to comprehend the bearing of inductive reasoning on the closing phases of inquiry there are a couple of observations that we need to make:
  • First, we need to recognize that smaller inquiries are typically woven into larger inquiries, whether we view the whole pattern of inquiry as carried on by a single agent or by a complex community.
  • Further, we need to consider the different ways in which the particular instances of inquiry can be related to ongoing inquiries at larger scales. Three modes of inductive interaction between the micro-inquiries and the macro-inquiries that are salient here can be described under the headings of the "Learning", the "Transfer", and the "Testing" of rules.

Analogy of experience[edit]

Throughout inquiry the reasoner makes use of rules that have to be transported across intervals of experience, from the masses of experience where they are learned to the moments of experience where they are applied. Inductive reasoning is involved in the learning and the transfer of these rules, both in accumulating a knowledge base and in carrying it through the times between acquisition and application.
  • Learning. The principal way that induction contributes to an ongoing inquiry is through the learning of rules, that is, by creating each of the rules that goes into the knowledge base, or ever gets used along the way.
  • Transfer. The continuing way that induction contributes to an ongoing inquiry is through the exploit of analogy, a two-step combination of induction and deduction that serves to transfer rules from one context to another.
  • Testing. Finally, every inquiry that makes use of a knowledge base constitutes a "field test" of its accumulated contents. If the knowledge base fails to serve any live inquiry in a satisfactory manner, then there is a prima facie reason to reconsider and possibly to amend some of its rules.
Let's now consider how these principles of learning, transfer, and testing apply to John Dewey's "Sign of Rain" example.
Learning[edit]
Rules in a knowledge base, as far as their effective content goes, can be obtained by any mode of inference.
For example, a rule like:
  • Rule: B → A, Just Before it rains, the Air is cool,
is usually induced from a consideration of many past events, in a manner that can be rationally reconstructed as follows:
  • Case: C → B, In Certain events, it is just Before it rains,
  • Fact: C → A, In Certain events, the Air is cool,
------------------------------------------------------------------------------------------
  • Rule: B → A, Just Before it rains, the Air is cool.
However, the very same proposition could also be abduced as an explanation of a singular occurrence or deduced as a conclusion of a presumptive theory.
Transfer[edit]
What is it that gives a distinctively inductive character to the acquisition of a knowledge base? It is evidently the "analogy of experience" that underlies its useful application. Whenever we find ourselves prefacing an argument with the phrase "If past experience is any guide..." then we can be sure that this principle has come into play. We are invoking an analogy between past experience, considered as a totality, and present experience, considered as a point of application. What we mean in practice is this: "If past experience is a fair sample of possible experience, then the knowledge gained in it applies to present experience". This is the mechanism that allows a knowledge base to be carried across gulfs of experience that are indifferent to the effective contents of its rules.
Here are the details of how this notion of transfer works out in the case of the "Sign of Rain" example:
Let K(pres) be a portion of the reasoner's knowledge base that is logically equivalent to the conjunction of two rules, as follows:
  • K(pres) = (B → A) and (B → D).
K(pres) is the present knowledge base, expressed in the form of a logical constraint on the present universe of discourse.
It is convenient to have the option of expressing all logical statements in terms of their logical models, that is, in terms of the primitive circumstances or the elements of experience over which they hold true.
  • Let E(past) be the chosen set of experiences, or the circumstances that we have in mind when we refer to "past experience".
  • Let E(poss) be the collective set of experiences, or the projective total of possible circumstances.
  • Let E(pres) be the present experience, or the circumstances that are present to the reasoner at the current moment.
If we think of the knowledge base K(pres) as referring to the "regime of experience" over which it is valid, then all of these sets of models can be compared by the simple relations of set inclusion or logical implication.
Figure 5 schematizes this way of viewing the "analogy of experience".
o-----------------------------------------------------------o
|                                                           |
|                          K(pres)                          |
|                             o                             |
|                            /|\                            |
|                           / | \                           |
|                          /  |  \                          |
|                         /   |   \                         |
|                        /  Rule   \                        |
|                       /     |     \                       |
|                      /      |      \                      |
|                     /       |       \                     |
|                    /     E(poss)     \                    |
|              Fact /         o         \ Fact              |
|                  /        *   *        \                  |
|                 /       *       *       \                 |
|                /      *           *      \                |
|               /     *               *     \               |
|              /    *                   *    \              |
|             /   *  Case           Case  *   \             |
|            /  *                           *  \            |
|           / *                               * \           |
|          /*                                   *\          |
|         o<<<---------------<<<---------------<<<o         |
|      E(past)        Analogy Morphism         E(pres)      |
|    More Known                              Less Known     |
|                                                           |
o-----------------------------------------------------------o
Figure 5.  Analogy of Experience
In these terms, the "analogy of experience" proceeds by inducing a Rule about the validity of a current knowledge base and then deducing a Fact, its applicability to a current experience, as in the following sequence:
Inductive Phase:
  • Given Case: E(past) → E(poss), Chosen events fairly sample Collective events.
  • Given Fact: E(past) → K(pres), Chosen events support the Knowledge regime.
-----------------------------------------------------------------------------------------------------------------------------
  • Induce Rule: E(poss) → K(pres), Collective events support the Knowledge regime.
Deductive Phase:
  • Given Case: E(pres) → E(poss), Current events fairly sample Collective events.
  • Given Rule: E(poss) → K(pres), Collective events support the Knowledge regime.
--------------------------------------------------------------------------------------------------------------------------------
  • Deduce Fact: E(pres) → K(pres), Current events support the Knowledge regime.
Testing[edit]
If the observer looks up and does not see dark clouds, or if he runs for shelter but it does not rain, then there is fresh occasion to question the utility or the validity of his knowledge base. But we must leave our foulweather friend for now and defer the logical analysis of this testing phase to another occasion.

See also[edit]

Citations[edit]

  1. Jump up ^ Rescher, N. (2012). Pragmatism: The Restoration of its Scientific Roots. New Brunswick, NJ: Transaction Press.
  2. Jump up ^ Dewey, John (1938). Logic: The Theory of Inquiry. New York:NY: D.C. Heath & Co.<http://www2.sunysuffolk.edu/osullis/spring07/courses/page0/history/documents_files/Dewey_pattern%20of%20inquiry.pdf>
  3. Jump up ^ Wikisource:The Fixation of Belief
  4. Jump up ^ Seixas, Peter. "The Community of Inquiry as a Basis for Knowledge and Learning: The Case of History". Sage. Retrieved 4 June 2012. 
  5. Jump up ^ Shields, Patricia. "The Community of Inquiry". Sage. Retrieved 4 June 2012. 

Bibliography[edit]

  • Angluin, Dana (1989), "Learning with Hints", pp. 167–181 in David Haussler and Leonard Pitt (eds.), Proceedings of the 1988 Workshop on Computational Learning Theory, MIT, 3–5 August 1988, Morgan Kaufmann, San Mateo, CA, 1989.
  • Aristotle, "Prior Analytics", Hugh Tredennick (trans.), pp. 181–531 in Aristotle, Volume 1, Loeb Classical Library, William Heinemann, London, UK, 1938.
  • Awbrey, Jon, and Awbrey, Susan (1995), "Interpretation as Action : The Risk of Inquiry", Inquiry : Critical Thinking Across the Disciplines 15, 40–52. Eprint.
  • Delaney, C.F. (1993), Science, Knowledge, and Mind: A Study in the Philosophy of C.S. Peirce, University of Notre Dame Press, Notre Dame, IN.
  • Dewey, John (1910), How We Think, D.C. Heath, Lexington, MA, 1910. Reprinted, Prometheus Books, Buffalo, NY, 1991.
  • Dewey, John (1938), Logic: The Theory of Inquiry, Henry Holt and Company, New York, NY, 1938. Reprinted as pp. 1–527 in John Dewey, The Later Works, 1925–1953, Volume 12: 1938, Jo Ann Boydston (ed.), Kathleen Poulos (text. ed.), Ernest Nagel (intro.), Southern Illinois University Press, Carbondale and Edwardsville, IL, 1986.
  • Haack, Susan (1993), Evidence and Inquiry: Towards Reconstruction in Epistemology, Blackwell Publishers, Oxford, UK.
  • Hanson, Norwood Russell (1958), Patterns of Discovery, An Inquiry into the Conceptual Foundations of Science, Cambridge University Press, Cambridge, UK.
  • Hendricks, Vincent F. (2005), Thought 2 Talk: A Crash Course in Reflection and Expression, Automatic Press / VIP, New York, NY. ISBN 87-991013-7-8
  • Misak, Cheryl J. (1991), Truth and the End of Inquiry, A Peircean Account of Truth, Oxford University Press, Oxford, UK.
  • Peirce, C.S., (1931–1935, 1958), Collected Papers of Charles Sanders Peirce, vols. 1–6, Charles Hartshorne and Paul Weiss (eds.), vols. 7–8, Arthur W. Burks (ed.), Harvard University Press, Cambridge, MA. Cited as CP volume.paragraph.
  • Stalnaker, Robert C. (1984), Inquiry, MIT Press, Cambridge, MA.

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