1540470959-Boundary_Value_Problems_and_Partial_Differential_Equations__Powers

96 Chapter 1 Fourier Series and Integrals

Proof: Let the pointxbe chosen; it is to remain fixed. To begin with, we

assume thatfiscontinuousatx, so the sum of the series should bef(x).

Another way to say this is that

Nlim→∞SN(x)−f(x)=^0 ,

whereSNis the partial sum of the Fourier series off,

SN(x)=a 0 +

∑N

n= 1

ancos(nx)+bnsin(nx). (2)

Of course, thea’s andb’s are the Fourier coefficients off,

a 0 = 21 π

∫π

−π

f(z)dz,

an=^1

π

∫π

−π

f(z)cos(nz)dz,

bn=

1

2 π

∫π

−π

f(z)sin(nz)dz.

(3)

The integrals havezas their variable of integration, but that does not affect

their value.

Part 1.Transformation ofSN(x).

In order to show a relationship betweenSN(x)andf, we replace the co-

efficients in Eq. (2) by the integrals that define them and use elementary

algebra on the results:

SN(x)= 21 π

∫π

−π

f(z)dx+

∑N

n= 1

[

1

π

∫π

−π

f(z)cos(nz)dzcos(nx)

+

1

π

∫π

−π

f(z)sin(nz)dzsin(nx)

]

(4)

=

1

2 π

∫π

−π

f(z)dx+

∑N

n= 1

[ 1

π

∫π

−π

f(z)cos(nz)cos(nx)dz

+^1

π

∫π

−π

f(z)sin(nz)sin(nx)dz

]

(5)

= 21 π

∫π

−π

f(z)dx+

∑N

n= 1

[

1

π

∫π

−π

f(z)

(

cos(nz)cos(nx)

+sin(nz)sin(nx)

)

dz

]

(6)