Real Analysis 541468.We have
sn=1
√
4 n^2 − 12+
1
√
4 n^2 − 22+···+
1
√
4 n^2 −n^2=1
n⎡
⎣√^1
4 −
( 1
n) 2 +
1
√
4 −
( 2
n) 2 +···+
1
√
4 −
(n
n) 2
⎤
⎦.
Hencesnis the Riemann sum of the functionf:[ 0 , 1 ]→R,f(x)=√^1
4 −x^2
associated
to the subdivisionx 0 = 0 <x 1 =^1 n <x 2 =^2 n <···<xn = nn =1, with the
intermediate pointsξi=ni ∈[xi,xi+ 1 ]. The answer to the problem is therefore
lim
n→∞
sn=∫ 1
01
√
4 −x^2dx=arcsinx
2∣∣
∣
1
0=
π
6.
469.Write the inequality as
1
n∑ni= 11
√
(^2) ni+ 5
<
√
7 −
√
5.
The left-hand side is the Riemann sum of the strictly decreasing functionf(x)=√ 21 x+ 5.
This Riemann sum is computed at the right ends of the intervals of the subdivision of
[ 0 , 1 ]by the pointsni,i= 1 , 2 ,...,n−1. It follows that
1
n∑ni= 11
√
2 in+ 5<
∫ 1
01
√
2 x+ 5dx=√
2 x+ 5∣
∣∣
∣
10=
√
7 −
√
5 ,
the desired inequality.
(communicated by E. Craina)
470.We would like to recognize the general term of the sequence as being a Riemann
sum. This, however, does not seem to happen, since we can only write
∑ni= 12 i/n
n+^1 i=
1
n∑ni= 12 i/n
1 +ni^1.
But fori≥2,
2 i/n>2 i/n
1 +ni^1