Di ketahui struktur file sekuen :
Parameter harddisk :
a.Putaran disk (RPM) = 8000 rpm
b.Seek time (s) = 5 ms
c.Transfer rate = 2048 byte/ms
d.Waktu untuk pembacaan dan penulisan (TRW) = 2 ms
Parameter penyimpanan :
a.Metode blocking = fixed blocking
b.Ukuran block (B) = 4096 byte
c.Ukuran pointer block (P) = 8 byte
d.Ukuran interblock gap (G) = 1024 byte
Parameter file :
a.Jumlah record di file (n)= 100000 record
b.Jumlah field (a) = 8 field
c.Jumlah nilai (v) = 25 byte
Parameter reorganisasi :
File log transaksi = 0 record
Parameter pemrosesan :
Waktu untuk pemrosesan block = 2 ms
Hitung :
R , TF , TN , TI , TU , TX , TY
jawab
1. R = a. V
= 8 . 25
= 200
2.TF = ½ n (R/t’)
= ½ 100000 (200 / 450,56)
= 50000 x 0,44
= 22000
t’ = (t/2) x (R/RTW)
W = B/Bfr
= 4096 / 2048
= 200
W = WG + WR
= 50 + 200
= 250
W = B/Bfr
= 1024 / 2048
= 50
Bfr = B/R
= 4096 / 200
= 20,48
3.TN = Btt / Bfr
= 2 / 20,48
= 0,09
Btt = B/t
= 4096 / 2048
= 2
4.TI = TF + ½ (n/Bfr) (Btt/TRW)
= 22000 + ½ (100000 / 20,48) (2/2)
= 22000 + ½ . 4882,81 . 1
= 22000 + 2441,4
= 24441,4
5.TU = TF + TRW
= 22000 + 2
= 22002
6.TX = TSORT (o) + (n+) (R/t’)
= 0 (0) + (100000 + 0) (200/450,56)
= 0 + 100000 . 0,44
= 0 + (100000 x 0,44)
= 0 + 44000
= 44000
7.TY = TSORT (0) + 2 (n + 0) (R/t’)
= 0 (0) + 2 (100000 + 0) (200/450,56)
= 0 + (200000 x 0,44)
=0 + 88000
=88000
Sabtu, 29 April 2017
