Topic 10: Integration - Trinity College Dublin · 2019. 1. 3. · 3 Definition Just as f(x) =...
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1 Topic 10: Topic 10: Integration Integration Jacques Jacques Indefinate Indefinate Integration 6.1 Integration 6.1 Definate Definate Integration 6.2 Integration 6.2
Transcript of Topic 10: Integration - Trinity College Dublin · 2019. 1. 3. · 3 Definition Just as f(x) =...
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Topic 10: Topic 10: IntegrationIntegration
Jacques Jacques IndefinateIndefinate Integration 6.1Integration 6.1DefinateDefinate Integration 6.2Integration 6.2
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IntuitionIntuition
y = F (x) = xn + c
dy/dx = F`(x) = f(x) = n xn-1 Given the derivative f(x), what isF(x) ? (Integral, Anti-derivative orthe Primitive function). The process of finding F(x) isintegration.
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DefinitionDefinitionJust as f(x) = derivative of F(x)
∫= dxxfxF )()(
Example
cxdxxxF +== ∫ 323)(
c=constant of integration (since derivativeof c=0)of course, c may be =0….., but itmay not check: if y = x3 + c then dy/dx = 3x2
or if c=0, so y = x3 then dy/dx = 3x2
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Rule 1 of Integration:
cxn
dxxxF nn ++
== +∫ 1
11)(
cxdxxxF +== ∫ 32
31)(
check: if y = 1/3 x3 + c then dy/dx = x2
cxdxxdx.dx)x(F +==== ∫∫∫ 01 check: if y = x + c then dy/dx = 1
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Rule 2 of Integration:
∫∫ == dxxfadxxafxF )()()(
Examples cxcx..dxxdxx)x(F +=+⎟
⎠⎞
⎜⎝⎛=== ∫∫ 3322
31333
check…..
caxdxadx.a)x(F +=== ∫∫
check…
cxdxdx)x(F +=== ∫∫ 444 check
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• Rule 3 of Integration:
• Example
[ ] ∫∫∫ +=+= dxxgdxxfdxxgxfxF )()()()()(
[ ] cxxdxxdxxdxxxxF ++=+=+= ∫∫∫ 2322 2323)(
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Calculating Marginal Functions
•Given MR and MC use integration to find TR and TC
( )dQTRdMR =
( )dQTCdMC =
( ) ( )∫= dQQMRQTR .
( ) ( )∫= dQQMCQTC .
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Marginal Cost FunctionMarginal Cost FunctionGiven the Marginal Cost Function, derive an expression for Total Cost?
MC = f (Q) = a + bQ + cQ2
( )∫ ++= dQcQbQa)Q(TC 2
∫∫∫ ++= dQQcdQQbdQa)Q(TC 2
FQcQbaQ)Q(TC +++= 32
32 F = the constant of integration If Q=0, then TC=F F= Fixed Cost….. (or TC when Q=0)
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Another ExampleAnother ExampleMC = f (Q) = Q + 5 Find an expression for Total Cost interms of Q, if TC = 20 when production is zero.
( )∫ += dQQ)Q(TC 5 ∫∫ += dQdQQ)Q(TC 5 FQQ)Q(TC ++= 5
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F = the constant of integration If Q=0, then TC = F = Fixed Cost So if TC = 20 when Q=0, then F=20
So, 20521 2 ++= QQ)Q(TC
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Another ExampleAnother Example
Given Marginal Revenue,MR = f (Q) = 20 – 2Q Find the Total Revenue function?
MR = f (Q) = 20 – 2Q
( )∫ −= dQQ)Q(TR 220
∫∫ −= QdQdQ)Q(TR 220 cQQ)Q(TR +−= 220
c = the constant of integration
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Example: Given MC=2Q2 – 6Q + 6; MR = 22 – 2Q; and Fixed Cost =0. Find total profit for profitmaximising firm when MR=MC?
1) Find profit max output Q where MR = MC MR=MC so 22 – 2Q = 2Q2 – 6Q + 6 gives Q2 – 2Q – 8 = 0 (Q - 4)(Q + 8) = 0 so Q = +4 or Q =-2 Q = +4
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2) Find TR and TC
( )∫ −= dQQ)Q(TR 222 ∫∫ −= QdQdQ)Q(TR 222
cQQ)Q(TR +−= 222 so TR = 22Q – Q2 MC = f (Q) = 2Q2 – 6Q + 6
( )∫ +−= dQQQ)Q(TC 662 2
∫∫∫ +−= dQQdQdQQ)Q(TC 662 2
FQQQ)Q(TC ++−= 6332 23
F = Fixed Cost = 0 (from question)
so….QQQ)Q(TC 63
32 23 +−=
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3. Find profit = TR-TC, by substituting in value of q* when MR = MC Profit = TR – TC TR if q*=4: 22(4) - 42 = 88-16 = 72 TC if q* =4: 2/3 (4)3 – 3(4)2 + 6(4) = 2/3(64) – 48 + 24 = 182/3 Total profit when producing at MR=MC so q*=4 is TR – TC = 72 - 182/3 = 53 1/3
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Some general points for answering Some general points for answering these types of questionsthese types of questions
Given a MR and MC curves - can find profit maximising output q* where
MR = MC - can find TR and TC by integrating MR
and MC - substitute in value q* into TR and TC to
find a value for TR and TC. then….. - since profit = TR – TC can find (i) profit if given value for F or (ii) F if given value for profit
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The definite integral of f(x) between values a and b is:
[ ] )()()()( aFbFdxxfxFb
a
ba −== ∫
Definite Integration
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1 ) 37)1(
31)2(
31
31 33
2
1
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1
2 =−=⎥⎦⎤
⎢⎣⎡=∫ xdxx
2 ) [ ] 12)2(3)6(333 6
2
6
2
=−==∫ xdx
Example
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DefinitionDefinition
The definite integral ∫b
adx)x(f
can be interpreted as the area bounded by the graph of f(x), the x-axis, and vertical lines x=a and x=b
x
f(x)
a b
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Consumer SurplusConsumer Surplus
Q
Demand Curve: P = f(Q)
Q1
P
P1
0
a
x
Consumer Surplus
Difference between value to consumers and to the market…. Represented by the area under the Demand curve and over the Price line…..
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Or more formally….Or more formally….
CS(Q) = oQ1ax - oQ1aP1 Where oQ1ax represents the entire area under thedemand curve up to Q1 and oQ1aP1 represents the area in the rectangle, under theprice line up to Q1 Hence,
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)()(1
QPdQQDQCSQ
−= ∫
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Producer SurplusProducer Surplus
Q
Supply Curve: P = g(Q)
Q1
P
P1
0
ay
Producer Surplus
Difference between market value and total cost to producers…. Represented by the area over the Supply curve and under the Price line…..
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Or more formally….Or more formally….
PS(Q) = oQ1aP1 - oQ1ay Where oQ1aP1 represents the area of the entirerectangle under the price line up to Q1 and oQ1ay represents the area under the Supply curve upto Q1 Hence
dQ)Q(SQP)Q(PSQ
∫−=1
011
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Example 1…..Example 1…..
Find a measure of consumer surplus at Q = 5, for the demand function P = 30 – 4Q Solution
1) solve for P at Q = 5 If Q = 5, then P = 30 – 4(5) = 10
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Q
Demand Curve: P = f(Q) = 30 – 4Q
Q1 = 5
P
P1=10
0
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Consumer Surplus
7.5
The picture….2) ‘sketch’ diagram
P = 30 – 4Q intercepts: (0, 30) and (7.5, 0)
At Q = 5, we have P = 10 ….. Draw in price line….
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Calculation… Calculation…
3) Evaluate Consumer Surplus i) Entire area under demand curve between 0 and Q1= 5:
[ ]1000)25(2)5(30
230)430( 50
25
0
=−−=
−=−∫ QQdQQ
ii) total revenue = area under price line at P1 = 10, between Q = 0 and Q1 = 5 is P1Q1 = 50
iii) So CS = 100 – p1Q1 = 100 – (10*5) = 50
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)()(1
QPdQQDQCSQ
−= ∫
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Example 2Example 2
If p = 3 + Q2 is the supply curve, find ameasure of producer surplus at Q = 4 Solution 1) evaluate P at Q = 4 If Q = 4, then p = 3 + 16 = 19
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The picture….The picture….
Q
Supply Curve: P = g(Q) = 3 + Q2
Q1 = 4
P
P1 = 19
0
3
Producer Surplus
2) ‘Sketch’ the diagramP = 3 + Q2 intercept: (0, 3) Price line at Q = 4, P = 19
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Calculation…Calculation…
3) Evaluate Producers Surplus i) Entire area under supply curve between Q = 0 and Q1 = 4…..
313
4
0
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0
2
330)4(31)4(3
313)3(
=−+=
⎥⎦⎤
⎢⎣⎡ +=+∫ QQdQQ
ii) total revenue = area under price line (p1 = 19), between Q = 0 and Q1 = 4 , and this = p1Q1 = 76 iii) So PS = p1Q1 – 331/3 =
76 – 331/3 = 422/3
dQ)Q(SQP)Q(PSQ
∫−=1
011
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Example 3Example 3• The inverse demand and supply functions
for a good are, respectively:• and
• Find the market equilibrium values of Pand Q.
• Find the Total surplus (CS + PS) when the market is in equilibrium.
142 +−= QP 2+= QP
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Find market equilibrium….Find market equilibrium….
At equilibrium 2142 +=+− QQ 123 =Q So equilibrium 4*=Q Thus equilibrium 624* =+=P
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‘‘sketch’ the diagramsketch’ the diagram
QQ* = 4
P
P*=6
0Consumer Surplus
14 CS
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PS D
S
2
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Consumer surplus…Consumer surplus…( ) **
*
0QPdQQDCS
Q−= ∫
i) area under entire demand curve between Q = 0 and Q*
( )
[ ]( ) ( )( ) ( ) ( )( )[ ]
40561601404144
14
142
22
40
2
4
0
=+−=+−−+−=
+−=
dQQ
ii) total revenue = area under price line at P* = 6, between Q = 0 and Q* = 4 is P*Q* = 24
iii) So CS = 40 – 24 = 16
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Producer Surplus…Producer Surplus…
( )∫−=*
0
** .Q
dQQSQPPSi) area under Supply curve between Q = 0 and Q*
( )
( ) ( ) ( ) ( )
1688
02021424
21
221
2
22
4
0
2
4
0
=+=
⎥⎦
⎤⎢⎣
⎡⎟⎠⎞
⎜⎝⎛ +−⎟
⎠⎞
⎜⎝⎛ +=
⎥⎦⎤
⎢⎣⎡ +=
+= ∫
dQQ
ii) total revenue = area under price line at P* = 6, between Q = 0 and Q* = 4 is P*Q* = 24
iii) So PS = 24 – 16 = 8
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Total SurplusTotal Surplus
• Total surplus = CS + PS = 16 + 8 = 24
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