- 1. Bagaiman jika :- Netmask 255.255.255.240- IP Address 192.168.3.0Jawab :Biner dari IP address :1111111.11111111.11111111.11110000a. Subnet24 = 16b. Host24 – 2= 16 – 2= 14Kelipatan : 0, 240c. Host yang Valid192.168.3.1 à 192.168.3.238192.168.3.241 à 192.168.3.254IP Addres 192.168.3.0 /28
2. IP Address 192.168.10.0 = 255.255.255.0 bernilai CDIR /24 :Jawab :Biner dari IP Address :11111111.11111111.11111111.00000000a. Subnet28 = 256b. Host28 - 2= 256 – 2= 254c. Netmask255.255.255.(256 – 0 )255.255.255.256Kelipatan : 0d. Host yang valid192.168.10.1 à 192.168.10.254IP Address /lab = 192.168.10.1 à 192.168.10.254
Monday, October 24, 2011
Belajar TCP/IP...
17 Oktober kemarin dapet tugas dari asdos praktikum jarkom. Tapi berhubung masih belom ngerti, jadi bagi yang ngerti tolong bantu jelasin yah.. hehe :p
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