- 172.10.1.0/20
- 200.200.1.0/27
- 10.1.0.0/7
Jawab :
1). 172.10.1.0/20 (IP address di class B)
11111111.11111111.11110000.00000000(255.255.240.0)
Penghitungan :
- Jumlah subnet= 24 = 16 subnet
- Jumlah host persubnet =212 – 2 = 4094 host
- Blok subnet = 256 – 240 = 16
- Bila di gambarkan
| Subnet | 172.10.1.0 | 172.10.1.16 | . | . | . | . | . | . | . | . | . | . | . | . | 172.10.1.224 |
| Host pertama | 172.10.1.1 | 172.10.1.17 | . | . | . | . | . | . | . | . | . | . | . | . | 172.10.1.225 |
| Host terakhir | 172.10.1.14 | 172.10.1.30 | | | | | | | | | | | | | 172.10.1.254 |
| boardcast | 172.10.1.15 | 172.10.1.31 | | | | | | | | | | | | | 172.10.1.255 |
2). 200.200.1.0/27 (IP address di class C)
11111111.11111111.11111111.11100000(255.255.255.224)
Penghitungan :
- Jumlah subnet= 23 = 8 subnet
- Jumlah host persubnet =25 – 2 = 30 host
- Blok subnet = 256 – 224 = 32
- Bila di gambarkan
| Subnet | 200.200.1.0 | 200.200.1.32 | .. | .. | .. | .. | 200.200.1.224 |
| Host pertama | 200.200.1.1 | 200.200.1.33 | | | | | 200.200.1.225 |
| Host terakhir | 200.200.1.30 | 200.200.1.62 | | | | | 200.200.1.254 |
| boardcase | 200.200.1.31 | 200.200.1.63 | | | | | 200.200.1.255 |
3). 10.1.0.0/7 (IP address class A)
11111110.00000000.00000000.00000000(254.0.0.0)
Penghitungan :
- Jumlah subnet= 27 = 128 subnet
- Jumlah host persubnet =224 – 2 = 16777214 host
- Blok subnet = 256 – 254= 2
- Bila di gambarkan
| Subnet | 10.1.0.0 | 10.1.0.2 | .. | .. | 10.1.255.0.2 |
| Host pertama | 10.1.0.1 | 10.1.0.3 | | | 10.1.255.0.3 |
| Host terakhir | 10.1.255.254 | 10.1.255.254 | | | 10.1.255.254 |
| boardcase | 10.1.255.255 | 10.1.255.254 | | | 10.1.255.254 |
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