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Ernest Nagel on the Philosophy of Science (1954)

54:541,557 summary words · ~8 min readEnglishBy Philosophy OverdoseTranscribed Jun 30, 2026
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Summary

The philosophy of science acts as a critical commentary examining how highly abstract, non-intuitive theories relate to everyday experience, shifting our understanding of scientific reason from absolute Aristotelian certainty to probabilistic, instrumental models of representation.

By understanding scientific theories as functional, representational instruments rather than literal, absolute copies of reality, we can overcome modern intellectual skepticism and better evaluate how shifts in physical theory impact our social, political, and ethical worldviews.

Section summaries

0:00-1:23

Introduction and Scope of Scientific Philosophy

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Nagel introduces the philosophy of science, defining it broadly as a 'critical commentary on science' rather than a discipline unified by a single set of principles. He explains that this commentary takes different directions depending on the specific interests of the philosopher. To contextualize this, he prepares to highlight historical instances where scientific advancements and their commentaries reshaped human values, ethical frameworks, and political ideas.

  • The philosophy of science is not a rigid discipline but an open critical commentary on scientific methodologies and findings.
  • Commentary on science has historically acted as a primary driver for redirecting human thought and cultural values.

Establishes the foundational definition and intellectual scope of the entire lecture.

1:23-5:32

Historical Revolutions: Newtonian and Darwinian Impacts

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Nagel outlines the profound cultural changes triggered by two massive scientific shifts: the Copernican-Galilean-Newtonian physical revolution and the 19th-century Darwinian biological revolution. He notes how Newtonian ideas were historically used to justify political structures like monarchical governance. He then illustrates how Darwinism forced philosophers to abandon the view of the human mind as a passive spectator, reframing it as an active instrument designed to navigate the survival of the species.

  • Scientific models have historically been co-opted to support existing political frameworks, such as using Newtonian physics to legitimize monarchies.
  • Darwin's evolutionary theory radically transformed epistemology by redefining the mind as an active survival instrument rather than a passive observer.

Provides essential historical context on how scientific ideas reshape political and psychological philosophy.

5:32-11:04

The 20th-Century Physics Boom and the Intelligibility Gap

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Nagel debunks the late 19th-century prediction that physics had reached its zenith and that the 20th century would belong entirely to biology and the social sciences. Instead, physics underwent radical conceptual revolutions that dramatically increased our practical control over nature. However, Nagel notes a paradox: as our practical mastery has grown, nature has become less intuitive and less intelligible to the average person because modern physical theories are incredibly abstract and remote from everyday sensory experience.

  • The 20th century disproved predictions of the decline of physics, keeping physical sciences at the forefront of conceptual revolution.
  • A profound paradox exists where our technological mastery over nature increases while our intuitive, sensory understanding of it decreases.

Exposes the core cognitive crisis of modern scientific abstraction that the philosophy of science aims to address.

11:04-17:59

The First Two Provinces: Abstractions and Certitude

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Nagel details the first two major domains of the philosophy of science. The first is the 'critique of abstractions,' which constructs conceptual bridges to connect highly abstract, non-intuitive notions (like curved space or submicroscopic particles) to familiar everyday experience. The second is the 'grounds of certitude,' which investigates the intellectual status of scientific premises, examining why we trust scientific theories over ancient myths and probing the nature of probability, evidence, and induction.

  • The critique of abstractions aims to show the conceptual pathway between highly abstract mathematical models and direct human experience.
  • Philosophical analysis of certitude evaluates how inductive evidence and probability are structured to justify scientific authority.

This section introduces Nagel's core taxonomy of scientific philosophy, particularly the bridge between mathematics and physical reality.

17:59-26:17

The Latter Two Provinces: World Pictures and Cultural Reflex

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Nagel discusses the third and fourth domains of scientific philosophy. The third province attempts to integrate specialized scientific disciplines into a unified, systematic worldview (such as evolutionary emergent systems or holistic categories of existence). The fourth domain focuses on the cultural basis and societal consequences of science, examining both the social conditions that trigger scientific research and the reverse impact that scientific discoveries (like subatomic physics) have on classical ethical debates like free will.

  • Constructing unified, scientific world pictures is highly speculative and increasingly difficult due to hyper-specialization.
  • The cultural analysis of science traces how physical discoveries actively impact human ethics, value systems, and the problem of free will.

Offers an interesting look at systemic world-building, but is more speculative than the epistemological arguments.

26:17-34:35

The Demise of Aristotelian Axiomatic Certainty

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Nagel contrasts modern scientific reasoning with the classic Aristotelian model, which demanded that scientific truths be demonstrably derived from necessary, self-evident axioms. Modern empirical science has completely abandoned this standard, recognizing its own conclusions as probabilistic and subject to revision. Nagel argues that modern skepticism about science is a mistake arising from critics applying inappropriate, outdated Aristotelian standards of absolute certainty to empirical data.

  • Aristotelian science demanded logical deductions from self-evident axioms, a standard rejected by modern empirical investigation.
  • Unwarranted scientific skepticism is often born of applying rigid, absolute criteria of certainty to probabilistic empirical knowledge.

Critically explains the epistemological transition from rationalist necessity to empirical probability.

34:35-38:44

Instrumentalism, Pragmatism, and Analytical Philosophy

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Nagel outlines the rise of American instrumentalism and pragmatism, particularly through the works of Charles Peirce and John Dewey. This philosophical outlook views scientific theories not as literal descriptions of the universe, but as functional instruments used to transition smoothly from one area of experience to another. He points out how this indigenous American movement has converged with European analytical philosophy in treating language as a practical tool for completing tasks.

  • Instrumentalism treats scientific theories as active, functional tools for navigating experience rather than literal copies of reality.
  • American pragmatism and analytical philosophy share a common convergence toward viewing language through its active, functional utility.

Gives a lucid introduction to the instrumentalist interpretation of scientific concepts.

38:44-44:16

The Critique and Failure of Strict Operationalism

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Nagel analyzes Percy Bridgman's 'operationalism,' which claims scientific concepts are meaningless unless they can be defined by concrete physical operations (e.g., defining weight by the act of weighing). Nagel argues that applying this strictly would destroy modern theoretical physics, as abstract concepts like 'electron' or 'entropy' cannot be individually operationalized. Instead, he explains that a theory's validity rests on whether the entire system can yield testable, observational consequences, citing Niels Bohr's atomic model.

  • Strict operationalism is a flawed epistemological standard because key theoretical concepts cannot be mapped to individual physical operations.
  • Theoretical terms are validated holistically by their role in a system that yields observational predictions, not by isolated, direct measurements.

Exposes the logical limits of operationalism and defends the necessity of abstract theoretical concepts in physics.

44:16-49:48

Theories as Representational and Instrumental Fictions

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Using Michael Faraday's lines of magnetic force and the geometric rule that 'light travels in straight lines,' Nagel demonstrates that many core scientific ideas are representational models rather than literal physical entities. No one has ever 'seen' light moving; rather, the straight-line model is a convenient fiction that makes optical phenomena, shadows, and spatial mathematics highly intelligible. These theories are validated not by literal realism, but by their instrumental utility in linking disparate observations.

  • Foundational scientific models, like lines of magnetic force, are conceptual representational tools rather than physical entities.
  • The straight-line model of light is an instrumental fiction designed to make optical mathematics and natural shadows intelligible.

Provides concrete, historical physical examples to illustrate the pragmatic, non-literal nature of scientific theory.

49:48-53:57

Classical Mechanics and the Formulation of Causality

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Nagel concludes the lecture by examining how the concept of causality was historically formulated through 17th-century classical mechanics. In Newtonian physics, the state of a physical system is defined entirely by its coordinates of state: position and velocity. Given these coordinates, the laws of mechanics, and the active forces, one can deterministically predict the state of a system at any other point in time. This deterministic framework laid the historical groundwork for our traditional understanding of causality, which modern subatomic physics now challenges.

  • In classical Newtonian mechanics, causality is mathematically defined as the deterministic predictability of future state coordinates.
  • Traditional notions of causality are conceptually dependent on the coordinates of position and velocity, which quantum physics calls into question.

Sets up the crucial classical baseline for modern debates on determinism, quantum indeterminacy, and physical causality.

Key points

  • The Four Provinces of Scientific Philosophy — Nagel divides the discipline into the critique of abstractions (bridging abstract models to everyday life), the grounds of certitude (analyzing probability and induction), systematic world-building (integrating sciences into a unified schema), and the cultural analysis of science (its societal origins and reflex ethical impacts).
  • The Fall of Aristotelian Axiomatic Certainty — Modern empirical science has abandoned the classical Aristotelian model, which demanded that scientific truths be demonstrably derived from necessary, self-evident, and infallible axioms.
  • The Limits of Rigid Operationalism — While operationalism demands that every scientific term be defined by direct physical experiments, Nagel argues this is a mistake because core theoretical terms (like 'electron' or 'entropy') cannot be individually operationalized.
  • Theories as Instrumental Modes of Representation — Scientific concepts such as Faraday's lines of magnetic force or the idea that 'light travels in straight lines' are not literal descriptions of unobserved entities, but convenient, representational models that render phenomena mathematically and systematically intelligible.
The philosophy of science is a critical commentary on science. Ernest Nagel
The mind came to be conceived not as a passive beholder of a grand spectacle but simply as an instrument in advancing the fortunes of the human species. Ernest Nagel

AI-generated from the transcript. May contain errors.

0:02

The subject that I'd like to talk about

0:04

this evening

0:06

is a rather vast one.

0:09

It is not unified by a common set of

0:13

principles

0:15

or by what one might perhaps even call a

0:17

common subject matter. It is not easy to

0:20

define it the way one could for example

0:23

define formal logic

0:26

or perhaps other special areas of

0:29

philosophical inquiry.

0:31

The nearest I think I could uh come to

0:36

giving a general formula to cover the

0:38

subject is that the philosophy of

0:40

science is a critical commentary

0:45

on science.

0:47

The critical commentary itself

0:50

might take different directions

0:53

depending upon

0:55

what the special interest of the

0:57

investigator happens to be.

1:01

Uh perhaps uh one way of uh introducing

1:05

the

1:06

uh character of inquiry into science is

1:10

to recall some

1:13

important historical examples.

1:17

uh in which uh science and commentary on

1:21

science has played an influential role

1:24

in directing men's thoughts one way

1:27

rather than another. The two examples

1:29

I'd like to mention very briefly

1:33

is first of all the very important

1:36

Capernac Galilean Newtonian revolution

1:41

which brought about a fundamental change

1:44

in men's outlook

1:47

and which required on the part of

1:50

reflective thinkers

1:53

an effort to adjust old ideas to the new

1:57

ones.

1:59

an attempt to reinterpret old values

2:04

in terms of most recent discoveries

2:08

in one particular area of investigation.

2:13

An attempt also to

2:17

reconsider

2:19

the objectives,

2:21

the values that men possessed

2:24

in so far as those values and those

2:26

objectives depended upon having some

2:29

clear conception as to the kind of world

2:32

they inhabited.

2:34

And so if one examines the literature of

2:37

this period, one finds not only simple

2:40

expositions

2:42

of the technical content of physics and

2:45

astronomy,

2:46

but attempts to show what the relevance

2:49

of

2:51

Newtonian ideas, for example, were for

2:54

problems of ethics, for problems of

2:57

politics.

3:00

Attempts were made, for example, to show

3:03

that a desirable form of political

3:05

organization

3:07

ought to take its point of departure

3:09

from

3:11

the ideas that Newton had developed. And

3:14

since it was a period when monarchical

3:17

systems

3:19

were very much

3:21

in favor, attempts were made to use

3:24

Newtonian physics as a support for a

3:28

monarchical system of government.

3:31

Now this is one illustration of one kind

3:33

of interest that people do have in

3:36

science in wishing to comment on it in

3:37

trying to bring it close to men's bosoms

3:43

where the attempt is not simply to

3:45

expound the content but to reinterpret

3:48

it in such a way that it appear that the

3:51

conclusions of science appear to have a

3:53

relevance for problems of value for

3:56

problems of government.

3:58

The second example I want very briefly

4:00

to mention

4:01

is the

4:05

change in outlook that took place in the

4:08

in the 19th century as a consequence of

4:13

Darwin's ideas on the origin of species.

4:17

This too shook men's convictions earlier

4:21

convictions about the kind of world that

4:24

we're living in. not so much the

4:26

physical world as the biological world

4:28

they were living in. And here again and

4:32

in this case I suppose many of us

4:35

perhaps may even remember uh the

4:38

overtones of the discussions of

4:40

Darwinian theory which uh were still

4:43

widely current in the first decade of

4:45

the present century particularly in this

4:46

country where attempts were made to show

4:49

the bearing of biological evolution on

4:52

problems of ethics on problems of

4:56

treatment of various races of mankind on

4:59

problems of economics.

5:04

Furthermore, in the case of

5:07

Darwinian evolution, philosophers too

5:11

believe that here they had at their

5:13

disposal

5:14

a set of ideas in terms of which the

5:16

character of human knowledge itself

5:18

could be reinterpreted.

5:21

so that the mind came to be conceived

5:23

not as a passive beholder of a grand

5:26

spectacle but simply as an instrument in

5:30

advancing the fortunes

5:32

of the human species.

5:35

Now all these comments on technical

5:37

developments

5:39

uh have continued to influence

5:44

uh our own thought because we inherit

5:46

these distinctions and these criticisms

5:49

that uh earlier philosophers

5:53

uh have offered uh on the detailed

5:58

materials that specific empirical

6:00

investigations

6:04

bring forth.

6:07

Now it so happens that uh in the present

6:10

century

6:12

despite the prophecy that a good number

6:14

of people had made

6:16

that

6:18

physics had seen its best days that the

6:20

great achievements in physics had

6:22

already taken place

6:25

uh in the 18th and 19th centuries that

6:27

the 20th century would be the period

6:30

during which biology,

6:33

psychology

6:36

and perhaps the social science es uh

6:40

would be making the most uh significant

6:43

advances. These prophecies have turned

6:46

out

6:47

not to be accurate ones. That in point

6:50

of fact, the supposition that physics

6:54

had already said the last word on all

6:56

the fundamental questions about the

6:57

character of the universe we're living

6:58

in at this conception has been belied as

7:02

everyone knows by the developments in

7:04

the last 30 40 years.

7:07

The philosophy of science usually pays

7:09

attention to those sciences

7:12

which uh are at the forefront of

7:15

research and which introduce new ideas

7:17

and seem to involve some sort of a

7:20

revolution in the basic conceptions and

7:23

attitudes that men hold.

7:26

And so if one looks upon examines the

7:31

uh developments in philosophy which

7:33

bears upon the sciences I think it's

7:36

safe to say that in the last 40 50 years

7:39

most of the attention has been paid to

7:42

developments in the physical sciences

7:44

and only incidentally

7:47

uh to the sciences which deal with

7:50

biological phenomena or which deal with

7:53

specifically with human affairs. is

8:02

the impact of physics of course has been

8:05

very very great upon our own age for

8:09

several reasons. One very obvious

8:11

reason.

8:14

If anybody ever had any doubt that uh

8:19

science in particular physical science

8:21

is capable of baking bread,

8:24

certainly

8:25

uh the events of the past 10 or 20 years

8:29

uh must have certainly settled those

8:31

doubts. that there has been an obviously

8:33

increased practical power which science

8:36

has yielded and the prophecy that

8:38

Francis Bacon made in the 17th century

8:41

that the new science would really give

8:43

men mastery over nature has certainly

8:46

been realized beyond his wildest dreams.

8:49

So there has been a social impact of

8:52

science as an attempt to readjust

8:55

customary ways of living in the light of

8:58

new instrumentalities.

9:00

This has raised fundamental problems in

9:02

government, fundamental problems in

9:06

reorganizing our moral attitudes.

9:10

There has been another impact that I

9:11

think science has made upon reflective

9:13

men. Namely,

9:17

the impact that has arisen from the fact

9:19

that as the sciences have

9:24

advanced and developed,

9:26

their content

9:29

appears to be much more remote from the

9:33

familiar things of everyday living than

9:35

the older than than the older physics

9:37

has been.

9:39

There's there's a kind of a paradox

9:41

about this. Uh many people are con have

9:44

have developed the attitude or have have

9:47

developed the sentiment at any rate that

9:50

uh though our practical mastery over

9:52

nature has increased.

9:55

Nature progressively seems less

9:57

intelligible

9:59

and has become less intelligible because

10:01

current theories in the physical

10:04

sciences are so abstract, so remote from

10:09

the affairs of everyday living that uh

10:13

uh any attempt to interpret them in such

10:16

a way that the plain man in the street

10:18

who hasn't the technical knowledge to

10:20

follow the details of a technical

10:22

argument

10:24

uh seems seems simply bewildered by the

10:26

paradoxical announcements that

10:28

scientists make about the executive

10:30

order of nature.

10:33

And so there has been a a a both a a

10:36

challenge to our traditional beliefs as

10:39

well as a challenge to

10:42

conceptions as to what is the nature of

10:44

scientific knowledge.

10:48

And it is really about the second of

10:50

these that I want to spend most of my

10:53

time this evening.

10:55

But before I say something more specific

10:57

about uh the issues that have arisen

11:01

because of the progressively greater

11:03

abstractness of physical theory. I'd

11:07

like as a as a preliminary to map out in

11:09

a way four major areas

11:13

uh into which the philosophy of science

11:15

can conveniently be divided.

11:19

Uh so at any rate you will have a a a uh

11:23

a bird's eyee view of the various sorts

11:26

of things that people do discuss when

11:29

they engage in this activity of

11:31

philosophical commentary upon

11:33

contemporary science.

11:39

The first area perhaps for the lack of a

11:42

better name I'd like to call after a

11:45

phrase that uh the late uh uh Alfred

11:49

North Whitehead used is a critique of

11:52

abstractions

11:53

and which is intimately related with the

11:55

point I had just made.

11:58

What we try to do in the various

12:00

sciences with a greater or less degree

12:02

of success is to offer systematic

12:06

explanations for the phenomena in our

12:10

environment.

12:13

The sciences seek to explain and they

12:15

seek to explain in such a way that they

12:18

don't offer a special explanation for

12:20

each individual item. But the

12:23

explanations are intended to be formed

12:25

in such a way that a single set of

12:28

assumption

12:30

should cover as wide a territory as

12:33

possible

12:35

and so theories are formulated with the

12:37

help of which this can be done. Now I do

12:40

not pretend of course that in all areas

12:42

of investigation the same degree of

12:45

comprehensiveness is achieved.

12:48

The physical sciences certainly

12:50

represent the most successful

12:53

uh

12:55

uh achievements in in in this direction

12:58

in the social sciences despite centuries

13:01

of effort. I suppose it's only fair to

13:03

say that we are only at the beginning of

13:05

such explanations.

13:09

Uh so though I recognize that different

13:12

sciences exhibit this character of

13:15

systematic explanation with different

13:17

degrees of completeness, yet I think it

13:19

is fair to characterize

13:23

all scientific undertaking as an attempt

13:25

to find systematically explanations.

13:29

I do not mean to say, of course, that

13:32

there may not be other objectives which

13:34

lead men to science. for example, the

13:36

obvious objective of trying to obtain

13:39

the practical mastery over various parts

13:41

of nature.

13:42

However, I do not think that this

13:44

objective is essentially different from

13:47

the objective of seeking systematic

13:49

explanation because the sole way that

13:51

you can obtain practical mastery

13:55

uh is by formulating comprehensive

13:59

theories

14:01

which enable you not only to order the

14:03

facts that you already have but to

14:07

foretell to forecast events that have

14:10

not yet happened.

14:12

So whether you put the stress upon

14:14

explanation or whether you put the

14:15

stress upon prediction

14:18

is simply a matter of which side of a

14:20

coin you're looking on. I mean these are

14:22

seem to seem to me to be simply obvious

14:24

sides of the same fact. Now the point I

14:27

want to make here is when I say well now

14:29

this is one area of investigation is

14:31

that in the attempt I to uh develop such

14:35

comprehensive theories it's inevitable

14:38

that one must employ ideas that are

14:40

highly abstract that are not related in

14:44

an obvious way to the familiar things in

14:47

experience. And the problem then becomes

14:50

a problem with which professional

14:52

scientists on the whole are not terribly

14:55

concerned in an explicit way, but which

14:58

has always challenged the ingenuity of

15:00

philosophers to see in what way a

15:03

connection can be established between

15:05

such abstract notions as space having

15:08

curvature

15:11

or abstract notions such as those which

15:14

involve references to

15:17

uh submicroscopic particles and the

15:20

familiar things that we encounter in

15:23

everyday living. So what I've called the

15:25

critique of abstraction is a deliberate

15:28

attempt to develop techniques and to

15:31

apply them to the concrete materials of

15:33

the sciences with a view to showing

15:37

what is the bridge by means of which one

15:39

passes from things that seem to be

15:42

utterly remote

15:44

from matters that are familiar to us to

15:47

these highly abstract recondite

15:50

sometimes paradoxical notions that the

15:53

theoretical scientist employ.

15:56

Now, if I may pass very quickly onto

15:59

this the second area,

16:02

the second area I I'd like to again very

16:05

briefly refer to as an area which is

16:08

concerned with the grounds of certitude

16:11

in the sciences.

16:13

A contrast is sometimes made between

16:16

scientific knowledge

16:18

and the kind of knowledge that we

16:20

perhaps acquire without benefit of

16:21

systematic inquiry by saying well we

16:25

obtain a greater measure of certitude in

16:28

the sciences than we do when we uh

16:31

simply experiment perhaps in a uh trial

16:34

or error uh uh manner without taking too

16:40

much care about the way we make

16:41

observations.

16:42

without using complicated schemes of

16:45

measurement.

16:46

Whether this is uh an accurate

16:48

description of the difference between

16:50

what one might perhaps call common sense

16:52

knowledge and scientific knowledge may

16:55

be a matter of dispute.

16:57

But there is no doubt whatever that very

17:00

important questions arise concerning

17:03

the status the intellectual status of

17:06

the basic premises the basic principles

17:10

in terms of which the scientists offer

17:11

explanations.

17:13

The question arises why should we credit

17:16

them? What is the ground for our

17:19

intellectual certitude?

17:21

Why should we credit current physical

17:24

cosmological theories rather than the

17:27

old myths that our ancestors held? What

17:30

is the basis for this? In what way is

17:32

the evidence marshaled to support these

17:35

large claims? Large claims which cannot

17:38

be established by simple observation, by

17:40

simple looking. When it is said for

17:43

example that in the sciences all that we

17:45

can hope to achieve are statements which

17:49

though we may not know that they are

17:50

true at least we know that they have a

17:51

high degree of probability. What

17:53

precisely is meant by saying that these

17:56

statements are highly probable?

17:58

Wendy said that we use methods of

18:00

induction in establishing the

18:03

conclusions of science. What precisely

18:05

is meant by saying that we use an

18:08

inductive method and how do we justify

18:11

the procedures that are called the

18:13

inductive procedures? These are all

18:15

questions that fall into the second area

18:17

that I have here briefly indicated.

18:20

I come to my third

18:23

uh division and then perhaps uh when I

18:26

complete this I might have an

18:29

opportunity to say something about

18:30

typical figures that fall in who have

18:33

been writing in the last 40 50 years who

18:36

fall under each of these each of these

18:38

divisions. The third the third division

18:43

uh of what I'm calling the philosophy of

18:45

science is concerned with using the

18:50

conclusions of the sciences

18:52

to build up a systematic world picture

18:58

and attempt to integrate the various

19:01

special disciplines

19:03

in order that we might have a total view

19:06

a total system of the universe.

19:09

Now this has been attempted in a number

19:11

of ways.

19:13

One way that has attracted a great deal

19:17

of attention

19:19

oh perhaps 15 20 years ago was to try to

19:23

formulate an evolutionary schema.

19:27

An an evolutionary schema which is

19:29

intimately associated with ideas or at

19:32

least with with with words with which

19:34

many of us are very familiar. a schema

19:37

of emergence, schema of historical

19:40

sequences.

19:42

So that the various items one finds in a

19:46

universe for example the level of purely

19:49

physical things, the level of purely

19:51

biological things, the level of

19:54

organization which in includes uh uh

19:58

sensitive or or psychological uh

20:00

capacities, then the level of the

20:02

intellect, then the level of the spirit.

20:05

Attempts have been made to show that the

20:07

whole universe could be interpreted as

20:10

indicating a progressive emergence of

20:12

so-called higher layers from the lower

20:14

ones.

20:16

Now, a task of this kind obviously is a

20:18

very difficult one because it involves

20:23

uh a really an almost an expert control

20:28

over the details of scientific

20:30

conclusions.

20:31

And although perhaps 2,000 years ago it

20:34

was possible for one man to be master of

20:36

all the sciences, today it is hardly

20:39

possible for a single man to be

20:42

acquainted with all that's going on in

20:43

one particular area.

20:46

And so evolutionary schemes of this kind

20:49

have on the whole been judged to be at

20:52

best speculative, to be insubstantial

20:55

and not very well supported by the

20:57

facts. There have been other attempts to

21:00

bring about a systematic worldview on

21:03

the basis of the conclusions of the

21:05

sciences. This has been done by trying

21:09

to find some very basic characteristics

21:14

that all existence exhibits.

21:18

uh if might use uh a technical jargon

21:21

for a moment. Uh there's been attempt on

21:24

the part of a very large number of

21:27

philosophers

21:28

uh to formulate a set of categories. A

21:34

set of basic distinctions

21:37

which are of such a kind that whatever

21:39

exists

21:41

will exhibit these categories will

21:43

exhibit these basic distinctions. And

21:46

then the task of the philosopher is to

21:49

systematize these categories in such a

21:52

way that whatever happens in nature

21:55

whether it's physical or biological or

21:58

social nature could always be offered as

22:01

an illustration of some combination of

22:03

these categories.

22:07

Uh attempts of this sort have been made

22:10

repeatedly by very distinguished

22:12

figures.

22:14

uh I shall want to say something very

22:16

briefly about the success of such

22:18

undertakings.

22:20

But

22:22

uh the development of the philosophy of

22:24

science in this direction has occupied

22:26

certainly uh the attention of a

22:31

considerable proportion of professional

22:34

and perhaps even non-professional

22:36

thinkers who take their point of

22:38

departure from the conclusion of the

22:40

sciences. Then very briefly I want to

22:43

say something about this fourth division

22:45

which will complete this preliminary map

22:48

where one is interested in the sciences

22:50

not from the point of view of analyzing

22:52

the meaning of the terms. Not from the

22:55

point of view of

22:58

trying to discover the basis for the

23:01

kind of assertitude which the scientists

23:03

appear to possess. Not from the point of

23:05

view of building upon the conclusion of

23:07

the sciences in order to get a more

23:08

inclusive system. but from the point of

23:11

view of trying to evaluate the cultural

23:15

basis and the cultural significance of

23:17

the sciences.

23:20

So inquiries of this kind will include

23:23

for example considerations of the

23:26

stimuli to the development of science

23:28

that is how does science arise in

23:29

society?

23:32

What sort of a problems are science is

23:34

concerned with? What is the what is the

23:36

social basis for an interest in one line

23:39

of development rather than another? That

23:41

is there's a concern simply with the

23:43

genesis of science

23:45

with uh a consideration of the relation

23:48

of theoretical research for example to

23:52

certain needs that society at a given

23:54

time may have. On the other hand,

23:57

there's also the obverse side of this

23:59

inquiry. Yes, the problems might be

24:02

suggested by the needs of the society at

24:05

a given time. Supposing that you take a

24:07

view of that sort. Nevertheless, also

24:10

there's a sort of a reflex of science

24:12

upon society. That is something happens

24:14

to society as a consequence as a

24:17

consequence of the advances in the

24:19

sciences. So, not only is there a

24:21

concern with the genesis of science but

24:23

also concern with the impact of science

24:25

upon society.

24:28

And uh then uh if you pursue this matter

24:31

of the impact of science of society,

24:34

there have been deliberate attempts just

24:36

as I've mentioned a little while ago in

24:38

connection with the development of the

24:39

Newtonian Darwinian uh systems to to

24:43

show that

24:46

the discoveries of present day sciences

24:48

have some very definite implications for

24:52

certain moral, political, religious

24:56

views that individuals hold. So for

25:00

example, I shall have occasion to

25:01

elaborate a little bit more fully in a

25:03

moment. Many people believe that

25:06

discoveries that are made about

25:08

subatomic particles such as electrons

25:11

have some bearing upon issues in ethics

25:14

in particular the issues that are

25:16

associated with this age-old controversy

25:19

about the freedom of the will. that is

25:22

this area of of interest that I'm now

25:26

briefly sketching the cultural basis and

25:28

the cultural import of science attempts

25:32

among other things to ascertain to what

25:36

extent if to any extent the special

25:39

findings of the sciences have

25:41

implications

25:43

for the moral life of man and for the

25:47

values that men uh decide to cultiv

25:51

cultivate.

25:52

Now, so much for this preliminary map.

25:55

If there were time, I would uh uh like

25:58

to illustrate in great deal detail work

26:01

that has been done under each of these

26:04

ma main areas in the last 40 or 50

26:07

years. I can't do this systematically.

26:10

uh what I would like to do is uh mention

26:13

a few influential movements

26:16

and then whatever time I have left I

26:19

would like to uh give some examples of

26:22

the kind of work that has been done in

26:25

the philosophy of science that falls

26:27

really under the first head that I have

26:29

mentioned namely that part of philosophy

26:32

of science which is concerned uh with a

26:35

critique of abstraction

26:41

Let me however say something about some

26:44

recent trends and let me introduce this

26:48

uh the series of thumbnail sketches

26:52

by making one very general remark.

26:55

If one uh examines the conceptions that

27:00

men have held about the powers of human

27:03

reason from the time of Aristotle

27:07

to perhaps the most recent commentary on

27:11

developments in modern science. I think

27:14

one comes away with the strong

27:17

conviction that the claims that

27:21

scientists today make

27:24

about the scope of reason are much more

27:30

moderate than those which were made by

27:32

our ancestor 2,000 years ago.

27:35

Let me uh give some point to what I'm

27:38

saying by reminding you of uh something

27:42

which doubtless you've heard uh uh on

27:46

some occasion that if you go to the

27:48

writings of let's say Aristotle who

27:51

really set the fashion as to the nature

27:54

of scientific thought for some 1500

27:58

perhaps 1800 years

28:01

and if you examine what he had to say

28:03

about the nature of science science

28:05

you'll find roughly he had some he had

28:07

the following to say he said we have to

28:09

distinguish between

28:12

knowledge of a fact and knowledge of a

28:15

reason fact.

28:18

Knowledge of a fact would be for example

28:21

simply a knowledge that well ice floats

28:24

on water. You discover that ice floats

28:26

on water. You still haven't got

28:28

scientific knowledge. You have

28:31

scientific knowledge only when you have

28:33

shown that this fact that you have

28:37

perhaps established by observation

28:41

can be shown to be necessary

28:44

that things could not be otherwise than

28:46

the way that you find them. Now how do

28:49

you show that the facts that you

28:51

discover are necessary? Well, according

28:53

to Aristotle, you have demonstrative

28:56

knowledge when you show that this fact

28:59

that ice floats on water, for example,

29:02

is a logical consequence of something

29:05

else. That is, when you give a

29:07

demonstration of it, just as you have a

29:10

reasoned knowledge of the fact that the

29:14

base angles of an isosles triangle are

29:16

equal when you show that it's a

29:17

consequence of a certain set of axioms.

29:20

So Aristotle said you have reasoned

29:22

knowledge of the world about you when

29:25

you show that the facts that you

29:27

discover are

29:30

demonstrable consequences of some

29:32

fundamental set of axioms. Now, and this

29:35

is the the crucial point. If you asked

29:38

Aristotle, now how about these axioms,

29:40

how do you establish them?

29:43

After all, if you're going to prove, you

29:46

have to have some premises from which

29:47

you are going to make the derivations.

29:50

You can't prove everything because every

29:52

proof requires some starting point. If

29:56

you deny this then Aristotle said you

29:58

would have to go on proving things uh

30:01

one thing after another and you would be

30:02

led to an infinite regress. In

30:05

consequence you will never establish

30:06

anything. So you must start out with

30:09

some principles which are not proved.

30:12

How do you know those? Aristotle's view

30:15

was you know those simply because the

30:17

mind has a capacity of grasping some

30:20

truth as being necessarily so. Just as

30:24

it used to be held that the axioms of

30:25

geometry were self-evident, so Aristotle

30:28

maintained that the fundamental

30:30

principles of a science had to be

30:32

self-evident truths. That the

30:34

fundamental principles of a science were

30:36

better known were more familiar

30:40

were uh less dubitable than any

30:43

conclusion that you derived from them.

30:45

And then if you asked why do you believe

30:48

that ice floats on water? The ultimate

30:51

answer is not because you have seen it

30:53

but because you have been able to show

30:55

that this fact is a demon conseident.

31:00

What would some such principles be?

31:02

Well, for example, that water expands

31:06

when it is frozen.

31:09

Because if you assume the principle that

31:11

water expands when it's frozen, if you

31:14

also assume another principle that when

31:19

you put a body into a liquid, the liquid

31:23

supports or or exerts a force upon the

31:26

the body uh by an amount which is equal

31:29

to the weight of the displaced liquid.

31:32

If you assume these two principles, you

31:34

can prove that ice will float down

31:36

water. The details are a little bit

31:39

complicated and there's no point in

31:40

going through them. But Aristotle

31:42

believed that ultimately you came to

31:43

some principles which had to be

31:45

self-evident. Now the point I want to

31:47

make is this. This was not a view that

31:50

Aristotle held and nobody else. This was

31:53

a view which continued to be held down

31:56

to very recent times. It was a view that

31:58

was held by Decart who formulated the

32:01

philosophy of the new science of the

32:03

period. that is who held who formulated

32:05

the philosophy of the 17th 18th century

32:09

uh pioneers of modern science. It was a

32:12

view which continued to be held even

32:14

down to the latter part of the 19th

32:15

century. Now if you see what scientists

32:18

today tell you about their first

32:20

principles, I think you are all

32:22

impressed by the fact that they would

32:23

make no such claim at all. that this

32:26

claim for infallible certain necessary

32:29

knowledge is not something that anybody

32:31

can claim to have with any warrant in

32:35

any of the empirical sciences. You might

32:37

claim it in mathematics, you might claim

32:40

it in logic, but you cannot claim it in

32:43

physics or in biology or in psychology

32:46

or in any other uh area which deals with

32:49

uh matters that fall within observation.

32:52

Now I make this preliminary remark

32:54

because I think uh the the tendencies

32:57

that I want to enumerate are really all

32:59

tendencies which enforce the conclusion

33:04

that this ancient rationalistic

33:06

conception as to the powers of reason

33:08

that that the re that that the mind the

33:10

human mind is capable of grasping once

33:13

for all the ultimate structure of

33:15

things.

33:17

uh that this is not something that

33:19

corresponds to the character of modern

33:21

science that if you what you mean by

33:23

knowledge is the sort of a thing that

33:25

Aristotle said a science must give you

33:28

then modern science does not give you

33:29

knowledge. I emphasize this point also

33:32

because

33:34

there have been a great number of people

33:36

who have become terribly skeptical about

33:39

the kind of a knowledge that science

33:40

provides.

33:42

Now I suspect that the skepticism which

33:44

a great many people have developed is a

33:47

consequence of their supposing that the

33:51

sole kind of knowledge that is worth

33:52

having is the kind of knowledge that

33:55

Aristotle mentioned and that whole line

33:57

of successive Aristotle regarded as

34:01

formulating the ultimate ideal of

34:03

science. I think it's important to

34:05

recognize that

34:07

you are skeptical very often simply

34:10

because you are employing standards

34:14

which are really not appropriate for a

34:16

given material. That is if you are

34:18

skeptical about the ability of modern

34:21

physics or of modern biology to give you

34:24

reliable knowledge,

34:26

you are usually skeptical because you

34:29

think it does not give you the kind of a

34:30

knowledge you can say well now here I

34:33

can bank upon this in such a way that I

34:36

will have never any occasion in the

34:38

future to revise my judgment about this.

34:42

And I think if you recognize at the very

34:44

outset that this is not a legitimate

34:46

ideal to pursue in the light of the way

34:49

in which we do obtain knowledge,

34:52

then we can really evaluate how

34:55

irrelevant the skepticism which a great

34:58

many people including distinguished

35:00

scientists themselves have expressed

35:03

about the capacity of various special

35:06

disciplines to give us sound knowledge

35:08

of the world that we inhabit. Now then

35:12

some very brief comments on recent

35:15

tendencies. There's one which in this

35:17

country certainly has ex exerted a great

35:20

deal of of influence and which is rather

35:23

ani an indigenous growth in this country

35:25

and only uh gradually has it spread

35:29

beyond the confines

35:31

of the United States. I have in mind

35:34

here of course the attitude or the the

35:37

point of view which technically is

35:39

called instrumentalism sometimes called

35:41

pragmatism and which is associated

35:44

uh particularly with the pioneering

35:48

writings of a philosopher who has been

35:51

neglected for a great number of years

35:54

Charles Pur and the writings of uh the

35:58

late John Dwey

36:00

where the emphasis is has been placed in

36:04

their discussion of the character of

36:06

science upon the instrumental character

36:10

of scientific theory. That is the the

36:13

emphasis placed upon this sort of

36:15

consideration. What do we want science

36:18

for? And the answer is in order to

36:21

enable us to pass from one part of

36:23

experience to another part of experience

36:26

in a continuous and smooth way. So if

36:29

you want to know what the function of a

36:32

theory is, if you want to know in what

36:34

way a theory explains,

36:37

what you ought to do is to concern

36:38

yourself with the instrumental function

36:40

of a theory. Now in the light of this

36:44

emphasis upon the instrumental function

36:46

of a theory, a great number of specific

36:50

questions have been resolved in such a

36:52

way that they no longer appear to

36:54

represent a an insoluble problem. And I

36:58

want to uh uh to talk about this uh in a

37:01

in a slightly uh greater detail in in a

37:04

few minutes. But rather closely

37:07

connected with this emphasis upon

37:09

instrumentalism

37:11

uh which I say has been an indigenous

37:14

growth in this country but which uh has

37:17

slowly percolated to other parts of uh

37:21

of the world. And so for example at

37:24

present it it so happens that a number

37:27

of tendencies on the continent in Europe

37:30

as well as in England have coalesed with

37:33

uh what we're calling instrumentalism

37:36

here. So that for example although I'm

37:39

do not hap do not I I haven't heard what

37:44

uh professor Max black had to say about

37:47

uh analytical philosophy at his talk

37:49

last week. I'm quite sure that uh if you

37:53

examine the relations of analytical

37:55

philosophy to American brand of

37:58

instrumentalism that even though the

38:00

origin of analytic philosophy has

38:03

largely been on a continent of Europe or

38:04

in England

38:06

that there is a kind of an an approach

38:09

of one to the other that the emphasis is

38:13

towards showing the function of various

38:16

parts of language in carrying to a

38:20

successful ful termination certain

38:22

undertakings that men engage in. Now I

38:26

say rather closely connected with with

38:29

this uh emphasis upon the instrumental

38:31

function of science is the point of view

38:34

which uh professor bridgeman at Harvard

38:37

has called operationalism.

38:40

A point of view which emphasizes

38:44

that well whenever you use a term in a

38:46

science uh what you have to do is uh uh

38:51

to

38:53

specify the ways in which this term is

38:56

related to the concrete materials of

39:00

experience. That is an operational

39:02

definition for a concept means

39:05

specifying the ways in which you would

39:07

apply a term. You have an operational

39:10

definition of the term weight when you

39:13

specify ways in which you would weigh

39:15

objects. You have an operational

39:17

definition of a term like electron when

39:20

you have specified the ways in which you

39:23

presumably would identify electrons.

39:25

That is this emphasis upon

39:28

operationalism

39:30

has had a wide influence. Not so much in

39:32

physics

39:34

where in a way this emphasis may not

39:37

have been needed because the physicists

39:40

have long years of of habituation to uh

39:45

desirable habits of workmanship.

39:48

But in uh the the the beginning sciences

39:51

so to speak I mean there's been a great

39:54

deal of influence of operation upon

39:56

psychology operation upon sociology

40:00

where people gradually became to

40:02

recognize that they were using language

40:05

which did not have any very definite

40:08

meaning and bridgeman's injunction that

40:12

what you have to do is to specify the

40:15

ways in which these expressions are

40:17

employed was regarded for a time as

40:19

being a solution to all the problems in

40:21

these in these areas. And as a matter of

40:24

fact, I think the tendency has gone too

40:27

far so that a great many uh uh workers

40:31

in special areas such as psychology or

40:33

sociology feel that anybody who proposes

40:37

a theoretical framework in these

40:39

disciplines

40:40

which employs terms which did not have

40:44

an operational definition is talking

40:46

nonsense.

40:48

I think myself this is a mistake. It's a

40:51

mistake because if you turn to the

40:54

content of physical science itself, I

40:57

mean, if you examine for example a a a

41:00

theory like relativity theory or a

41:03

theory like the kinetic theory of matter

41:05

or a theory like thermodynamics and if

41:08

you look at some of the terms that occur

41:10

in it, term like electron, a term uh

41:14

like uh entropy, a a uh a a term like

41:19

instantaneous ous velocity

41:22

and you ask yourself now what is the

41:24

operational definition of this term?

41:27

How would you specify by a laboratory

41:29

procedure what you mean by an electron?

41:32

If you reflect upon it, I think it

41:34

becomes quite clear that you do not give

41:36

an operational definition of these

41:38

terms. What after all is required is not

41:41

that you should give an operational

41:42

definition for each single term. What is

41:45

required is that your theory be so

41:47

formulated that from the assumptions of

41:50

the theory you are able to derive other

41:53

statements such that eventually you will

41:56

get statements whose terms can be

42:00

identified

42:02

by way of some laboratory observational

42:05

operational technique. That is, if I may

42:09

repeat this, those who maintain, as so

42:12

many current people who are concerned

42:14

with problems of language maintain that

42:17

a term is meaningless unless you can

42:19

give an operational definition.

42:22

I think I'm making a mistake because if

42:25

they were consistent in their

42:27

contention, they would have to throw out

42:30

practically all of modern theoretical

42:32

physics.

42:34

What is required is not so much an

42:36

operational definition for every term in

42:38

a physical theory or in a biological

42:40

theory or in a chemical theory. What is

42:44

required is that eventually you can

42:46

derive from the fundamental assumptions

42:49

of the theory some statements

42:52

which can be shown to refer to matters

42:57

of observation.

42:59

And so we have these highly abstract

43:02

theories like the electronic theory of

43:04

matter without giving operational

43:06

definitions of terms like electrons or

43:09

operational definitions of what is meant

43:11

by if we use some of these older

43:13

conceptions about quantum theory. What

43:16

is meant by saying that a an electron

43:19

jumps from one orbit to another? There

43:22

is no way of identifying operationally

43:24

what is meant by a jump. There is no

43:27

operational definition for the notion

43:29

that an electron revolves in an orbit.

43:33

These are purely theoretical ideas. The

43:35

important thing is that Boore who

43:38

invented this theory was able to show

43:40

that from these assumptions,

43:42

he was able eventually to derive

43:44

statements which bore directly upon such

43:48

things as lines in a spectrum of various

43:50

elements

43:52

as uh defraction patterns which are

43:55

formed when you pass light uh through a

43:58

grading and the like. That is you have

44:01

certain materials of observation. Your

44:04

theory must eventually turn uh its

44:07

apparatus upon this without requiring

44:10

that every term in the theory be tied

44:13

down in a very intimate way to the the

44:17

uh uh the concrete matters of

44:19

observation. And uh this leads me then

44:22

simply to mention one other uh one other

44:25

tendency

44:27

uh rather intimately associated with

44:29

these two that I have mentioned

44:32

which uh

44:34

uh attempts to construe scientific

44:37

theories

44:39

as being primarily

44:42

if not exclusively but at least

44:43

primarily

44:45

modes of representation

44:49

which uh we use in order that we should

44:54

be able to bring together into

44:56

systematic form a variety of observable

44:59

facts. Let me illustrate this a little

45:01

bit in in terms of uh an example that I

45:05

try to make as as simple as as possible.

45:07

First let me take a a an uh a slightly

45:11

more recendite example and then uh give

45:13

a give a more simple one. uh uh those of

45:16

us who read a little bit about the

45:18

history of science may recall that when

45:20

Faraday

45:22

who was primarily an experimentter

45:23

didn't have very much training in

45:26

mathematics

45:28

uh when he was carrying on his

45:30

experiments on magnetism and on

45:32

electricity

45:34

uh he supposed now that uh there are

45:38

lines of force which fill the which fill

45:41

the medium which fill space. How did he

45:43

conceive of these lines of force? Well,

45:45

he thought of them really as kind of

45:47

tubes and that the intensity of the

45:49

force depended upon how thick these

45:52

tubes were. But they were, if you

45:54

remember some elementary physics, they

45:56

sometimes represent as there were rubber

45:58

bands. Uh when you stretch these rubber

46:02

bands, then they become thin. Other

46:05

times they might be thick. and the

46:07

strength of the magnetic field or the

46:09

electric field then is interpreted in

46:11

terms of these lines of force. Now from

46:14

the point of view of one type of

46:15

analysis what would be said about

46:18

Faraday's ideas was well you see you

46:20

don't have to take this notion of lines

46:22

of force literally you don't have to

46:24

suppose now that there really are these

46:26

tubes filling all of space that this is

46:29

simply an extremely convenient and

46:33

fertile way of formulating certain

46:37

relations between the behavior of bodies

46:39

that you can observe.

46:42

Now let me expand upon this point now in

46:44

a slightly different context.

46:46

Uh take the familiar theory that light

46:50

travels in a straight line.

46:54

Now let's ask ourselves one very simple

46:56

question. Have we ever seen something

46:59

that we can call light?

47:02

Well, of course our tendency perhaps

47:03

would be to say yes, we have seen light.

47:06

But uh if you think about this for a

47:09

moment, you say, "Well, what you have

47:10

seen of course are illuminated objects.

47:13

I can see the wall. I can see the sun. I

47:17

can see the sun's rays." Meaning by that

47:20

that if there are dust particles in the

47:21

air, I can see these dust particles

47:24

which are illuminated by the sun. But in

47:27

the sense in which in elementary physics

47:29

we talk about light moving in straight

47:32

lines. We haven't seen light moving

47:36

is light is not something that we see

47:38

moving at all. I mean here we are in

47:42

this room we say well now there are

47:44

bulbs burning. Uh we don't see those

47:47

lamps moving. We don't see anything

47:49

moving.

47:51

Why is it that we talk this way? Well,

47:53

the answer is in terms of one mode of

47:55

analysis is this is a very convenient

47:58

way of talking because if I talk this

48:00

way, I can explain an awful lot of

48:02

things. Well, what can I explain? Well,

48:04

I can explain such things as that

48:06

objects have shadows

48:08

and I can calculate the length of the

48:10

shadows

48:12

on the assumption that light moves in

48:14

straight lines. Then if you remember

48:16

some very ele elementary ele elementary

48:17

ele elementary ele elementary ele

48:17

elementary ele elementary ele elementary

48:17

ele elementary ele elementary ele

48:17

elementary ele elementary ele elementary

48:17

ele elementary ele elementary ele

48:17

elementary ele elementary ele elementary

48:17

ele elementary ele elementary ele

48:17

elementary element geometry if you know

48:18

the angle at which the the line is

48:21

inclined to you and if you can then

48:24

measure the height of the object you can

48:27

calculate the length of the shadow or

48:30

vice versa if you know the angle at

48:32

which the line is inclined to you if you

48:35

can measure the length of the shadow you

48:37

can measure the height of the object. So

48:39

if you do not know what the height of a

48:40

mountain is or if you do not know what

48:42

the height of a tree is but you can

48:44

measure the shadow which is cast by the

48:46

sun and can measure the angle between

48:49

the sun and the uh and the line which

48:53

the line formed between the sun and the

48:55

top of the tree or the top of the

48:56

mountain and the ground then you can

48:59

make these calculations.

49:00

So to talk this way uh talk about light

49:04

moving in a straight line is a

49:06

convenient way of making intelligible to

49:09

ourselves a great many things and they

49:12

become intelligible because you

49:13

establish connections between them.

49:16

So this emphasis again upon theories

49:20

simply as being modes of representation

49:24

see is is is really very closely uh

49:26

related with this conception that the

49:28

function of a theory is an instrumental

49:32

one that is has an instrumental function

49:35

namely enabling us to bring together

49:38

into a systematic

49:41

set of uh relations phenomena that

49:44

appear to be entire highly desperate.

49:51

Now I'd like to uh leave myself uh

49:53

perhaps just a few minutes in order to

49:55

talk about one uh one particular point

50:00

which really falls under the first

50:02

heading uh of these four divisions that

50:05

I've mentioned

50:07

uh

50:09

and which uh is really concerned with a

50:12

problem of critique of of abstractions.

50:16

And I'd like to uh take a few minutes

50:18

then uh to discuss what has so been so

50:22

so been heatedly discussed in uh in

50:25

recent years. The status of certain

50:29

familiar principles which apparently

50:32

have been challenged by recent

50:35

developments in physical theory. Uh

50:38

there are a whole set of such principles

50:40

which have been challenged. The one that

50:42

I propose to take for discussion is the

50:45

problem of causality.

50:47

And I uh although obviously I can only

50:50

scratch the surface and uh must

50:52

necessarily be extremely superficial. I

50:55

would like to indicate a line of

50:57

analysis of this problem and in this way

51:01

perhaps help to the extent that I can in

51:03

a few minutes uh uh eliminate possible

51:07

confusion as to what this problem is.

51:10

Now a great many people have been

51:11

concerned with the question whether

51:15

modern physics has shown us that we are

51:18

living in a world in which causal

51:21

relations are are are are absent.

51:24

Why is this a problem today? Well to

51:27

understand why it's a problem I think

51:28

one have to look back a little bit about

51:30

the history of of of physics itself.

51:35

uh in the 17th century

51:38

the one branch of physics

51:40

that was very welldeveloped was the

51:43

science of mechanics.

51:46

It was believed by the men of the of the

51:48

17th century that the future of physics

51:52

was identifiable with the future of

51:55

mechanics.

51:58

uh men like Huygens,

52:00

like Daycart, like Newton believe that

52:03

eventually

52:05

all parts of nature would be

52:08

understandable

52:10

on the basis of the fundamental ideas

52:13

that the science of mechanics itself

52:15

employs. Now, what are the fundamental

52:17

ideas? Well, briefly, if we may uh omit

52:20

all details, you say, well, mechanics of

52:22

course uses the notion of length and

52:24

various combinations of an area of

52:26

course and volume which are definable in

52:27

terms of length. It use the notion of

52:29

time. You use the notion of mass.

52:33

Well, if you have length and time, then

52:34

you can define velocity.

52:37

If you have length and time and mass,

52:39

you can define force and so on. So there

52:42

are a lot of things that you can define

52:43

in terms of these fundamental notions of

52:45

mass, length and time. Now if you look

52:49

at the way in which mechanics works, you

52:51

find that you have to do the following.

52:54

That in order to be able to predict the

52:56

path of a projectile, for example, you

52:58

shoot a uh you you you you throw a ball

53:02

and if you want to know where the ball

53:04

is going to be at some future time, and

53:07

this is a problem that can be handled in

53:08

terms of mechanics, what must you know?

53:11

Well, you must know of course the laws

53:12

of mechanics.

53:14

You must also know what are the forces

53:16

that are acting. And in this case, we

53:19

might suppose now that there are the

53:21

gravitational force which conforms to

53:23

Newton's famous formula that there's a

53:26

certain impact that is given to the

53:28

bullet. Let's suppose that we all we

53:30

know all these things. What else do you

53:32

have to know? Well, you have to know two

53:34

very important things. where this bullet

53:37

was at a certain time

53:40

and what its velocity at that time was.

53:44

Look, let me repeat this. In order to be

53:45

able to predict the behavior of the

53:47

bullet in terms of mechanics, you have

53:50

to know the position and the velocity of

53:53

this body at a certain time. Now,

53:56

position and velocity are called in

54:01

mechanics

54:03

the coordinates of state. The

54:05

coordinates of state in mechanics are

54:07

position and velocity. Now why do I

54:09

stress this? Because if you ask what is

54:12

meant by causality in classical

54:14

mechanics, the answer is very simple.

54:19

Once you know the mechanical state of a

54:21

system for one time,

54:24

you can in principle predict the

54:28

mechanical state of that system at any

54:31

other time.

54:33

If you know where Mars is at a certain

54:38

time and what its velocity is, assuming

54:41

now that you are given this other

54:43

information that I mentioned, I mean the

54:44

laws of mechanics, the forces that are

54:45

acting, then in principle you are

54:48

capable of making a complete prediction

54:50

about the future of this object.

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