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Joseph Fourier

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If we consider further the manifold relations of this mathematical theory to civil uses and the technical arts, we shall recognize completely the extent of its applications. It is evident that it includes an entire series of distinct phenomena, and that the study of it cannot be omitted without losing a notable part of the science of nature.
The principles of the theory are derived, as are those of rational mechanics, from a very small number of primary facts, the causes of which are not considered by geometers, but which they admit as the results of common observations confirmed by all experiment.
--
Ch. 1, p. 6

 
Joseph Fourier

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Of course, we must avoid postulating a new element for each new phenomenon. But an equally serious mistake is to admit into the theory only those elements which can now be observed. For the purpose of a theory is not only to correlate the results of observations that we already know how to make, but also to suggest the need for new kinds of observations and to predict their results. In fact, the better a theory is able to suggest the need for new kinds of observations and to predict their results correctly, the more confidence we have that this theory is likely to be good representation of the actual properties of matter and not simply an empirical system especially chosen in such a way as to correlate a group of already known facts.

 
David Bohm
 

We shall see that the mathematical treatment of the subject [of electricity] has been greatly developed by writers who express themselves in terms of the 'Two Fluids' theory. Their results, however, have been deduced entirely from data which can be proved by experiment, and which must therefore be true, whether we adopt the theory of two fluids or not. The experimental verification of the mathematical results therefore is no evidence for or against the peculiar doctrines of this theory.

 
James Clerk Maxwell
 

A law explains a set of observations; a theory explains a set of laws. The quintessential illustration of this jump in level is the way in which Newton’s theory of mechanics explained Kepler’s law of planetary motion. Basically, a law applies to observed phenomena in one domain (e.g., planetary bodies and their movements), while a theory is intended to unify phenomena in many domains. Thus, Newton’s theory of mechanics explained not only Kepler’s laws, but also Galileo’s findings about the motion of balls rolling down an inclined plane, as well as the pattern of oceanic tides. Unlike laws, theories often postulate unobservable objects as part of their explanatory mechanism. So, for instance, Freud’s theory of mind relies upon the unobservable ego, superego, and id, and in modern physics we have theories of elementary particles that postulate various types of quarks, all of which have yet to be observed.

 
Johannes Kepler
 

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William John Macquorn Rankine
 

Happily I had very early learned the fallacy of building much on logic and verbal argument. Single sets of truths I knew to be as little conclusive in theology as in physics; and, in one as in the other, no theory to be worth anything, however plausibly backed up with Scripture texts or facts, which was not gathered bona fide from the analysis of all the attainable phenomena, and verified wherever possible by experiment.
"Here is a theory of the world which you bring for my acceptance: well, there is the world; try — will the key fit? can you read the language into sense by it?" was the only method; and so I was led always to look at broad results, at pages and chapters, rather than at single words and sentences, where for a few lines a false key may serve to make a meaning. So of these broad observations I only expected a broad solution.

 
James Anthony Froude
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