![Lecture 16 : Arc Length 2X3/2 0 3 2 1/2 √ 0 2 I F (X) = 3 , F (X) = 2 · 3 X = X,[F (X)] = X, a = 1 and B = 2](http://data.docslib.org/img/f13f14370dae37bf34dffd4aae72000a-1.webp)
Arc Length Arc Lenth
In this section, we derive a formula for the length of a curve y = f (x) on an interval [a, b]. We will assume that f is continuous and differentiable on the interval [a, b] and we will assume that its derivative f 0 is also continuous on the interval [a, b]. We use Riemann sums to approximate the length of the curve over the interval and then take the limit to get an integral.
We see from the picture that
n X L = lim |P P | n→∞ i−1 i i=1
b−a Letting ∆x = n = |xi−1 − xi |, we get
v u f (x ) − f (x ) q 2 2 u h i i−1 i2 |Pi−1Pi | = (xi − xi−1) + (f (xi ) − f (xi−1)) = ∆xt1 + xi − xi−1 Now by the mean value theorem from last semester, we have f (xi )−f (xi−1) 0 ∗ ∗ = f (x ) for some x in the interval [xi−1, xi ]. Therefore xi −xi−1 i i n n X X q Z b q L = lim |P P | = lim 1 + [f 0(x∗)]2∆x = 1 + [f 0(x)]2dx n→∞ i−1 i n→∞ i i=1 i=1 a
Annette Pilkington Lecture 16 : Arc Length 2x3/2 0 3 2 1/2 √ 0 2 I f (x) = 3 , f (x) = 2 · 3 x = x,[f (x)] = x, a = 1 and b = 2. √ R b p 0 2 R 2 I L = a 1 + [f (x)] dx = 1 1 + x dx R 3 √ I = 2 u du, where u = 1 + x, u(1) = 2, u(2) = 3. ˛3 3/2 ˛ √ √ = u ˛ = 2 [3 3 − 2 2]. I 3/2 ˛ 3 ˛2
Arc Length Arc Length
If f is continuous and differentiable on the interval [a, b] and f 0 is also continuous on the interval [a, b]. We have a formula for the length of a curve y = f (x) on an interval [a, b].
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
√ 2x3/2 2 4 2 Example Find the arc length of the curve y = 3 from (1, 3 ) to (2, 3 ).
Annette Pilkington Lecture 16 : Arc Length √ R b p 0 2 R 2 I L = a 1 + [f (x)] dx = 1 1 + x dx R 3 √ I = 2 u du, where u = 1 + x, u(1) = 2, u(2) = 3. ˛3 3/2 ˛ √ √ = u ˛ = 2 [3 3 − 2 2]. I 3/2 ˛ 3 ˛2
Arc Length Arc Length
If f is continuous and differentiable on the interval [a, b] and f 0 is also continuous on the interval [a, b]. We have a formula for the length of a curve y = f (x) on an interval [a, b].
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
√ 2x3/2 2 4 2 Example Find the arc length of the curve y = 3 from (1, 3 ) to (2, 3 ). 2x3/2 0 3 2 1/2 √ 0 2 I f (x) = 3 , f (x) = 2 · 3 x = x,[f (x)] = x, a = 1 and b = 2.
Annette Pilkington Lecture 16 : Arc Length R 3 √ I = 2 u du, where u = 1 + x, u(1) = 2, u(2) = 3. ˛3 3/2 ˛ √ √ = u ˛ = 2 [3 3 − 2 2]. I 3/2 ˛ 3 ˛2
Arc Length Arc Length
If f is continuous and differentiable on the interval [a, b] and f 0 is also continuous on the interval [a, b]. We have a formula for the length of a curve y = f (x) on an interval [a, b].
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
√ 2x3/2 2 4 2 Example Find the arc length of the curve y = 3 from (1, 3 ) to (2, 3 ). 2x3/2 0 3 2 1/2 √ 0 2 I f (x) = 3 , f (x) = 2 · 3 x = x,[f (x)] = x, a = 1 and b = 2. √ R b p 0 2 R 2 I L = a 1 + [f (x)] dx = 1 1 + x dx
Annette Pilkington Lecture 16 : Arc Length ˛3 3/2 ˛ √ √ = u ˛ = 2 [3 3 − 2 2]. I 3/2 ˛ 3 ˛2
Arc Length Arc Length
If f is continuous and differentiable on the interval [a, b] and f 0 is also continuous on the interval [a, b]. We have a formula for the length of a curve y = f (x) on an interval [a, b].
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
√ 2x3/2 2 4 2 Example Find the arc length of the curve y = 3 from (1, 3 ) to (2, 3 ). 2x3/2 0 3 2 1/2 √ 0 2 I f (x) = 3 , f (x) = 2 · 3 x = x,[f (x)] = x, a = 1 and b = 2. √ R b p 0 2 R 2 I L = a 1 + [f (x)] dx = 1 1 + x dx R 3 √ I = 2 u du, where u = 1 + x, u(1) = 2, u(2) = 3.
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length
If f is continuous and differentiable on the interval [a, b] and f 0 is also continuous on the interval [a, b]. We have a formula for the length of a curve y = f (x) on an interval [a, b].
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
√ 2x3/2 2 4 2 Example Find the arc length of the curve y = 3 from (1, 3 ) to (2, 3 ). 2x3/2 0 3 2 1/2 √ 0 2 I f (x) = 3 , f (x) = 2 · 3 x = x,[f (x)] = x, a = 1 and b = 2. √ R b p 0 2 R 2 I L = a 1 + [f (x)] dx = 1 1 + x dx R 3 √ I = 2 u du, where u = 1 + x, u(1) = 2, u(2) = 3. ˛3 3/2 ˛ √ √ = u ˛ = 2 [3 3 − 2 2]. I 3/2 ˛ 3 ˛2
Annette Pilkington Lecture 16 : Arc Length ex +e−x 0 ex −e−x I f (x) = 2 , f (x) = 2 , 0 2 e2x −2ex e−x +e−2x e2x −2+e−2x [f (x)] = 4 = 4 , a = 0 and b = 2. q q R b p 0 2 R 2 e2x −2+e−2x R 2 e2x +2+e−2x I L = a 1 + [f (x)] dx = 0 1 + 4 dx = 0 4 dx
r 2 R 2 “ ex +e−x ” R 2 ex +e−x I = 0 2 dx = 0 2 dx. ˛2 x −x ˛ 2 −2 = e −e ˛ = e −e . I 2 ˛ 2 ˛0
Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
ex +e−x Example Find the arc length of the curve y = 2 , 0 ≤ x ≤ 2.
Annette Pilkington Lecture 16 : Arc Length q q R b p 0 2 R 2 e2x −2+e−2x R 2 e2x +2+e−2x I L = a 1 + [f (x)] dx = 0 1 + 4 dx = 0 4 dx
r 2 R 2 “ ex +e−x ” R 2 ex +e−x I = 0 2 dx = 0 2 dx. ˛2 x −x ˛ 2 −2 = e −e ˛ = e −e . I 2 ˛ 2 ˛0
Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
ex +e−x Example Find the arc length of the curve y = 2 , 0 ≤ x ≤ 2. ex +e−x 0 ex −e−x I f (x) = 2 , f (x) = 2 , 0 2 e2x −2ex e−x +e−2x e2x −2+e−2x [f (x)] = 4 = 4 , a = 0 and b = 2.
Annette Pilkington Lecture 16 : Arc Length r 2 R 2 “ ex +e−x ” R 2 ex +e−x I = 0 2 dx = 0 2 dx. ˛2 x −x ˛ 2 −2 = e −e ˛ = e −e . I 2 ˛ 2 ˛0
Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
ex +e−x Example Find the arc length of the curve y = 2 , 0 ≤ x ≤ 2. ex +e−x 0 ex −e−x I f (x) = 2 , f (x) = 2 , 0 2 e2x −2ex e−x +e−2x e2x −2+e−2x [f (x)] = 4 = 4 , a = 0 and b = 2. q q R b p 0 2 R 2 e2x −2+e−2x R 2 e2x +2+e−2x I L = a 1 + [f (x)] dx = 0 1 + 4 dx = 0 4 dx
Annette Pilkington Lecture 16 : Arc Length ˛2 x −x ˛ 2 −2 = e −e ˛ = e −e . I 2 ˛ 2 ˛0
Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
ex +e−x Example Find the arc length of the curve y = 2 , 0 ≤ x ≤ 2. ex +e−x 0 ex −e−x I f (x) = 2 , f (x) = 2 , 0 2 e2x −2ex e−x +e−2x e2x −2+e−2x [f (x)] = 4 = 4 , a = 0 and b = 2. q q R b p 0 2 R 2 e2x −2+e−2x R 2 e2x +2+e−2x I L = a 1 + [f (x)] dx = 0 1 + 4 dx = 0 4 dx
r 2 R 2 “ ex +e−x ” R 2 ex +e−x I = 0 2 dx = 0 2 dx.
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
ex +e−x Example Find the arc length of the curve y = 2 , 0 ≤ x ≤ 2. ex +e−x 0 ex −e−x I f (x) = 2 , f (x) = 2 , 0 2 e2x −2ex e−x +e−2x e2x −2+e−2x [f (x)] = 4 = 4 , a = 0 and b = 2. q q R b p 0 2 R 2 e2x −2+e−2x R 2 e2x +2+e−2x I L = a 1 + [f (x)] dx = 0 1 + 4 dx = 0 4 dx
r 2 R 2 “ ex +e−x ” R 2 ex +e−x I = 0 2 dx = 0 2 dx. ˛2 x −x ˛ 2 −2 = e −e ˛ = e −e . I 2 ˛ 2 ˛0
Annette Pilkington Lecture 16 : Arc Length x 0 x 0 2 2x I f (x) = e , f (x) = e ,[f (x)] = e , a = 0 and b = 2. √ R b p 0 2 R 2 2x I L = a 1 + [f (x)] dx = 0 1 + e dx.
Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
Example Set up the integral which gives the arc length of the curve y = ex , 0 ≤ x ≤ 2.
Annette Pilkington Lecture 16 : Arc Length √ R b p 0 2 R 2 2x I L = a 1 + [f (x)] dx = 0 1 + e dx.
Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
Example Set up the integral which gives the arc length of the curve y = ex , 0 ≤ x ≤ 2. x 0 x 0 2 2x I f (x) = e , f (x) = e ,[f (x)] = e , a = 0 and b = 2.
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length
r Z b Z b h dy i2 L = p1 + [f 0(x)]2dx or L = 1 + dx a a dx
Example Set up the integral which gives the arc length of the curve y = ex , 0 ≤ x ≤ 2. x 0 x 0 2 2x I f (x) = e , f (x) = e ,[f (x)] = e , a = 0 and b = 2. √ R b p 0 2 R 2 2x I L = a 1 + [f (x)] dx = 0 1 + e dx.
Annette Pilkington Lecture 16 : Arc Length y 4+48 y 3 2 I Solving for x in terms of y, we get x = 24y = 24 + y = g(y).
0 3y 2 2 y 2 2 0 2 y 4 4 y 2 4 y 4 1 4 I g (y) = 24 − y 2 = 8 − y 2 .[g (y)] = 64 − y 2 · 8 + y 4 = 64 − 2 + y 4 q R d p 0 2 R 4 y 4 1 4 I L = c 1 + [f (y)] dy = 2 1 + 64 − 2 + y 4 dy.
r 2 R 4 q y 4 1 4 R 4 “ y 2 2 ” I = 2 64 + 2 + y 4 dy = 2 8 + y 2 dy. ˛4 2 3 ˛ = R 4 y + 2 dy = y − 2 ˛ = 17 . I 2 8 y 2 24 y ˛ 6 ˛2
Arc Length Arc Length, curves of form x = g(y).
For a curve with equation x = g(y), where g(y) is continuous and has a continuous derivative on the interval c ≤ y ≤ d, we can derive a similar formula for the arc length of the curve between y = c and y = d.
v u Z d q Z d u h dx i2 L = 1 + [g0(y)]2dy or L = t1 + dy c c dy
4 4 Example Find the length of the curve 24xy = y + 48 from the point ( 3 , 2) to 11 ( 4 , 4).
Annette Pilkington Lecture 16 : Arc Length 0 3y 2 2 y 2 2 0 2 y 4 4 y 2 4 y 4 1 4 I g (y) = 24 − y 2 = 8 − y 2 .[g (y)] = 64 − y 2 · 8 + y 4 = 64 − 2 + y 4 q R d p 0 2 R 4 y 4 1 4 I L = c 1 + [f (y)] dy = 2 1 + 64 − 2 + y 4 dy.
r 2 R 4 q y 4 1 4 R 4 “ y 2 2 ” I = 2 64 + 2 + y 4 dy = 2 8 + y 2 dy. ˛4 2 3 ˛ = R 4 y + 2 dy = y − 2 ˛ = 17 . I 2 8 y 2 24 y ˛ 6 ˛2
Arc Length Arc Length, curves of form x = g(y).
For a curve with equation x = g(y), where g(y) is continuous and has a continuous derivative on the interval c ≤ y ≤ d, we can derive a similar formula for the arc length of the curve between y = c and y = d.
v u Z d q Z d u h dx i2 L = 1 + [g0(y)]2dy or L = t1 + dy c c dy
4 4 Example Find the length of the curve 24xy = y + 48 from the point ( 3 , 2) to 11 ( 4 , 4). y 4+48 y 3 2 I Solving for x in terms of y, we get x = 24y = 24 + y = g(y).
Annette Pilkington Lecture 16 : Arc Length q R d p 0 2 R 4 y 4 1 4 I L = c 1 + [f (y)] dy = 2 1 + 64 − 2 + y 4 dy.
r 2 R 4 q y 4 1 4 R 4 “ y 2 2 ” I = 2 64 + 2 + y 4 dy = 2 8 + y 2 dy. ˛4 2 3 ˛ = R 4 y + 2 dy = y − 2 ˛ = 17 . I 2 8 y 2 24 y ˛ 6 ˛2
Arc Length Arc Length, curves of form x = g(y).
For a curve with equation x = g(y), where g(y) is continuous and has a continuous derivative on the interval c ≤ y ≤ d, we can derive a similar formula for the arc length of the curve between y = c and y = d.
v u Z d q Z d u h dx i2 L = 1 + [g0(y)]2dy or L = t1 + dy c c dy
4 4 Example Find the length of the curve 24xy = y + 48 from the point ( 3 , 2) to 11 ( 4 , 4). y 4+48 y 3 2 I Solving for x in terms of y, we get x = 24y = 24 + y = g(y).
0 3y 2 2 y 2 2 0 2 y 4 4 y 2 4 y 4 1 4 I g (y) = 24 − y 2 = 8 − y 2 .[g (y)] = 64 − y 2 · 8 + y 4 = 64 − 2 + y 4
Annette Pilkington Lecture 16 : Arc Length r 2 R 4 q y 4 1 4 R 4 “ y 2 2 ” I = 2 64 + 2 + y 4 dy = 2 8 + y 2 dy. ˛4 2 3 ˛ = R 4 y + 2 dy = y − 2 ˛ = 17 . I 2 8 y 2 24 y ˛ 6 ˛2
Arc Length Arc Length, curves of form x = g(y).
For a curve with equation x = g(y), where g(y) is continuous and has a continuous derivative on the interval c ≤ y ≤ d, we can derive a similar formula for the arc length of the curve between y = c and y = d.
v u Z d q Z d u h dx i2 L = 1 + [g0(y)]2dy or L = t1 + dy c c dy
4 4 Example Find the length of the curve 24xy = y + 48 from the point ( 3 , 2) to 11 ( 4 , 4). y 4+48 y 3 2 I Solving for x in terms of y, we get x = 24y = 24 + y = g(y).
0 3y 2 2 y 2 2 0 2 y 4 4 y 2 4 y 4 1 4 I g (y) = 24 − y 2 = 8 − y 2 .[g (y)] = 64 − y 2 · 8 + y 4 = 64 − 2 + y 4 q R d p 0 2 R 4 y 4 1 4 I L = c 1 + [f (y)] dy = 2 1 + 64 − 2 + y 4 dy.
Annette Pilkington Lecture 16 : Arc Length ˛4 2 3 ˛ = R 4 y + 2 dy = y − 2 ˛ = 17 . I 2 8 y 2 24 y ˛ 6 ˛2
Arc Length Arc Length, curves of form x = g(y).
For a curve with equation x = g(y), where g(y) is continuous and has a continuous derivative on the interval c ≤ y ≤ d, we can derive a similar formula for the arc length of the curve between y = c and y = d.
v u Z d q Z d u h dx i2 L = 1 + [g0(y)]2dy or L = t1 + dy c c dy
4 4 Example Find the length of the curve 24xy = y + 48 from the point ( 3 , 2) to 11 ( 4 , 4). y 4+48 y 3 2 I Solving for x in terms of y, we get x = 24y = 24 + y = g(y).
0 3y 2 2 y 2 2 0 2 y 4 4 y 2 4 y 4 1 4 I g (y) = 24 − y 2 = 8 − y 2 .[g (y)] = 64 − y 2 · 8 + y 4 = 64 − 2 + y 4 q R d p 0 2 R 4 y 4 1 4 I L = c 1 + [f (y)] dy = 2 1 + 64 − 2 + y 4 dy.
r 2 R 4 q y 4 1 4 R 4 “ y 2 2 ” I = 2 64 + 2 + y 4 dy = 2 8 + y 2 dy.
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length, curves of form x = g(y).
For a curve with equation x = g(y), where g(y) is continuous and has a continuous derivative on the interval c ≤ y ≤ d, we can derive a similar formula for the arc length of the curve between y = c and y = d.
v u Z d q Z d u h dx i2 L = 1 + [g0(y)]2dy or L = t1 + dy c c dy
4 4 Example Find the length of the curve 24xy = y + 48 from the point ( 3 , 2) to 11 ( 4 , 4). y 4+48 y 3 2 I Solving for x in terms of y, we get x = 24y = 24 + y = g(y).
0 3y 2 2 y 2 2 0 2 y 4 4 y 2 4 y 4 1 4 I g (y) = 24 − y 2 = 8 − y 2 .[g (y)] = 64 − y 2 · 8 + y 4 = 64 − 2 + y 4 q R d p 0 2 R 4 y 4 1 4 I L = c 1 + [f (y)] dy = 2 1 + 64 − 2 + y 4 dy.
r 2 R 4 q y 4 1 4 R 4 “ y 2 2 ” I = 2 64 + 2 + y 4 dy = 2 8 + y 2 dy. ˛4 2 3 ˛ = R 4 y + 2 dy = y − 2 ˛ = 17 . I 2 8 y 2 24 y ˛ 6 ˛2
Annette Pilkington Lecture 16 : Arc Length √1 I dx/dy = 1 + 2 y ,
r h i2 r h i2 r L = R 4 1 + dx dy = R 4 1 + 1 + √1 dy = R 4 2 + √1 + 1 dy I 2 dy 2 2 y 2 y 4y
I With n = 10, Simpson’s rule gives us
∆y ˆ ˜ L ≈ S10 = g(2) + 4g(2.2) + 2g(2.4) + 4g(2.6) + 2g(2.8) + 4g(3) + 2g(3.2) + 4g(3.4) + 2g(3.6) + 4g(3.8) + g(4) 3 q √1 1 4−2 where g(y) = 2 + y + 4y and ∆y = 10 . (see notes for details).
I We get S10 ≈ 3.269185.
Arc Length Arc Length, Simpson’s rule
We cannot always find an antiderivative for the integrand to evaluate the arc length. However, we can use Simpson’s rule to estimate the arc length.
Example Use Simpson’s rule with n = 10 to estimate the length of the curve √ x = y + y, 2 ≤ y ≤ 4
Annette Pilkington Lecture 16 : Arc Length r h i2 r h i2 r L = R 4 1 + dx dy = R 4 1 + 1 + √1 dy = R 4 2 + √1 + 1 dy I 2 dy 2 2 y 2 y 4y
I With n = 10, Simpson’s rule gives us
∆y ˆ ˜ L ≈ S10 = g(2) + 4g(2.2) + 2g(2.4) + 4g(2.6) + 2g(2.8) + 4g(3) + 2g(3.2) + 4g(3.4) + 2g(3.6) + 4g(3.8) + g(4) 3 q √1 1 4−2 where g(y) = 2 + y + 4y and ∆y = 10 . (see notes for details).
I We get S10 ≈ 3.269185.
Arc Length Arc Length, Simpson’s rule
We cannot always find an antiderivative for the integrand to evaluate the arc length. However, we can use Simpson’s rule to estimate the arc length.
Example Use Simpson’s rule with n = 10 to estimate the length of the curve √ x = y + y, 2 ≤ y ≤ 4
√1 I dx/dy = 1 + 2 y ,
Annette Pilkington Lecture 16 : Arc Length I With n = 10, Simpson’s rule gives us
∆y ˆ ˜ L ≈ S10 = g(2) + 4g(2.2) + 2g(2.4) + 4g(2.6) + 2g(2.8) + 4g(3) + 2g(3.2) + 4g(3.4) + 2g(3.6) + 4g(3.8) + g(4) 3 q √1 1 4−2 where g(y) = 2 + y + 4y and ∆y = 10 . (see notes for details).
I We get S10 ≈ 3.269185.
Arc Length Arc Length, Simpson’s rule
We cannot always find an antiderivative for the integrand to evaluate the arc length. However, we can use Simpson’s rule to estimate the arc length.
Example Use Simpson’s rule with n = 10 to estimate the length of the curve √ x = y + y, 2 ≤ y ≤ 4
√1 I dx/dy = 1 + 2 y ,
r h i2 r h i2 r L = R 4 1 + dx dy = R 4 1 + 1 + √1 dy = R 4 2 + √1 + 1 dy I 2 dy 2 2 y 2 y 4y
Annette Pilkington Lecture 16 : Arc Length I We get S10 ≈ 3.269185.
Arc Length Arc Length, Simpson’s rule
We cannot always find an antiderivative for the integrand to evaluate the arc length. However, we can use Simpson’s rule to estimate the arc length.
Example Use Simpson’s rule with n = 10 to estimate the length of the curve √ x = y + y, 2 ≤ y ≤ 4
√1 I dx/dy = 1 + 2 y ,
r h i2 r h i2 r L = R 4 1 + dx dy = R 4 1 + 1 + √1 dy = R 4 2 + √1 + 1 dy I 2 dy 2 2 y 2 y 4y
I With n = 10, Simpson’s rule gives us
∆y ˆ ˜ L ≈ S10 = g(2) + 4g(2.2) + 2g(2.4) + 4g(2.6) + 2g(2.8) + 4g(3) + 2g(3.2) + 4g(3.4) + 2g(3.6) + 4g(3.8) + g(4) 3 q √1 1 4−2 where g(y) = 2 + y + 4y and ∆y = 10 . (see notes for details).
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length, Simpson’s rule
We cannot always find an antiderivative for the integrand to evaluate the arc length. However, we can use Simpson’s rule to estimate the arc length.
Example Use Simpson’s rule with n = 10 to estimate the length of the curve √ x = y + y, 2 ≤ y ≤ 4
√1 I dx/dy = 1 + 2 y ,
r h i2 r h i2 r L = R 4 1 + dx dy = R 4 1 + 1 + √1 dy = R 4 2 + √1 + 1 dy I 2 dy 2 2 y 2 y 4y
I With n = 10, Simpson’s rule gives us
∆y ˆ ˜ L ≈ S10 = g(2) + 4g(2.2) + 2g(2.4) + 4g(2.6) + 2g(2.8) + 4g(3) + 2g(3.2) + 4g(3.4) + 2g(3.6) + 4g(3.8) + g(4) 3 q √1 1 4−2 where g(y) = 2 + y + 4y and ∆y = 10 . (see notes for details).
I We get S10 ≈ 3.269185.
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length Function
The distance along a curve with equation y = f (x) from a fixed point (a, f (a)) is a function of x. It is called the arc length function and is given by Z x s(x) = p1 + [f 0(t)]2dt. a From the fundamental theorem of calculus, we see that s0(x) = p1 + [f 0(x)]2. In the language of differentials, this translates to r “ dy ”2 ds = 1 + dx or (ds)2 = (dx)2 + (dy)2 dx
Annette Pilkington Lecture 16 : Arc Length 2x3/2 √ d 3 I We have dx = x I Z x q √ Z x √ Z 1+x √ s(x) = 1 + ( t)2dt = 1 + tdt = udu 1 1 2 where u = 1 + t
I ˛x+1 u3/2 ˛ √ √ = ˛ = 2(x + 1) x + 1/3 − 4 2/3 3/2 ˛ ˛2
Arc Length Arc Length Function
The distance along a curve with equation y = f (x) from a fixed point (a, f (a)) is a function of x. It is called the arc length function and is given by Z x s(x) = p1 + [f 0(t)]2dt. a
2x3/2 Example Find the arc length function for the curve y = 3 taking P0(1, 3/2) as the starting point.
Annette Pilkington Lecture 16 : Arc Length I Z x q √ Z x √ Z 1+x √ s(x) = 1 + ( t)2dt = 1 + tdt = udu 1 1 2 where u = 1 + t
I ˛x+1 u3/2 ˛ √ √ = ˛ = 2(x + 1) x + 1/3 − 4 2/3 3/2 ˛ ˛2
Arc Length Arc Length Function
The distance along a curve with equation y = f (x) from a fixed point (a, f (a)) is a function of x. It is called the arc length function and is given by Z x s(x) = p1 + [f 0(t)]2dt. a
2x3/2 Example Find the arc length function for the curve y = 3 taking P0(1, 3/2) as the starting point. 2x3/2 √ d 3 I We have dx = x
Annette Pilkington Lecture 16 : Arc Length I ˛x+1 u3/2 ˛ √ √ = ˛ = 2(x + 1) x + 1/3 − 4 2/3 3/2 ˛ ˛2
Arc Length Arc Length Function
The distance along a curve with equation y = f (x) from a fixed point (a, f (a)) is a function of x. It is called the arc length function and is given by Z x s(x) = p1 + [f 0(t)]2dt. a
2x3/2 Example Find the arc length function for the curve y = 3 taking P0(1, 3/2) as the starting point. 2x3/2 √ d 3 I We have dx = x I Z x q √ Z x √ Z 1+x √ s(x) = 1 + ( t)2dt = 1 + tdt = udu 1 1 2 where u = 1 + t
Annette Pilkington Lecture 16 : Arc Length Arc Length Arc Length Function
The distance along a curve with equation y = f (x) from a fixed point (a, f (a)) is a function of x. It is called the arc length function and is given by Z x s(x) = p1 + [f 0(t)]2dt. a
2x3/2 Example Find the arc length function for the curve y = 3 taking P0(1, 3/2) as the starting point. 2x3/2 √ d 3 I We have dx = x I Z x q √ Z x √ Z 1+x √ s(x) = 1 + ( t)2dt = 1 + tdt = udu 1 1 2 where u = 1 + t
I ˛x+1 u3/2 ˛ √ √ = ˛ = 2(x + 1) x + 1/3 − 4 2/3 3/2 ˛ ˛2
Annette Pilkington Lecture 16 : Arc Length