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Friday, December 2, 2011

How to enable built-in wireless function of the computer?

| Wireless Driver & Software

How to enable built-in wireless function of the computer?

Enable your computer’s built-in wireless LAN function to use built-in wireless adapter.

*Note*
The method how to enable built-in wireless LAN function is depending on manufactures and models. Please read the user manual or consult manufacture of computer.

The ordinary computer uses as below methods.

[Toggle mechanical Wireless LAN ON/OFF switch.]

Almost of all computers locate side of computer (either left, right or front) or on the top of keyboard.

[Press F1 or F2 key holding Fn key.]
(Computers manufactured by DELL or SHARP)

->Confirm wireless indicator turns on after enabling wireless function. (If your computer has wireless indicator.)

Wireless LAN switch
Example
F2 or F1 key (example)

* Wireless mark is depending on computers’ manufacture. Reference: Wireless LAN ON/OFF switch. (example)

Thursday, December 1, 2011

HUAWEI EM770 HSPA Embedded Module (3G Modem)

Huawei_EM770

Main Features

  • HSPA Embedded Module
  • HSPA/UMTS 850/1900/2100MHz
  • HSUPA: 5.76Mbps (UL) / HSDPA: 7.2Mbps (DL)
  • UMTS: 384kbps (DL/UL) / EDGE: 236.8kpbs (DL/UL)
  • Data Service, SMS Service
  • Windows2000/XP/VISTA/Win7/LINUX

Device Name: HUAWEI Mobile Connect – 3G Modem

HUAWEI EM770 HSPA Embedded Module Windows 2000, XP 32/64bit, Vista 32/64bit Drivers, and HUAWEI  Mobile Partner V.11.030.01.06.335: Download

If you have Asus Eee PC 901Go, 1000HG, 1101HGo Netbook (built in HUAWEI EM770 Module), so you can apply the drivers and software.

The software is also valid for device listed below:

USB\VID_12d1&PID_1001&MI_00,   USB\VID_12d1&PID_1003&MI_00,   USB\VID_12d1&PID_1004&MI_00,   USB\VID_12d1&PID_1402&MI_02,   USB\VID_12d1&PID_1406&MI_00,   USB\VID_12d1&PID_1411&MI_00,   USB\VID_12d1&PID_1412&MI_00,   USB\VID_12d1&PID_1413&MI_00,   USB\VID_12d1&PID_1414&MI_00,   USB\VID_12d1&PID_1416&MI_00,   USB\VID_12d1&PID_1417&MI_00,   USB\VID_12d1&PID_1418&MI_00,   USB\VID_12d1&PID_1419&MI_00,   USB\VID_12d1&PID_141A&MI_00,   USB\VID_12d1&PID_141B&MI_00,   USB\VID_12d1&PID_141E&MI_00,   USB\VID_12d1&PID_1420&MI_00,   USB\VID_12d1&PID_1422&MI_00,   USB\VID_12d1&PID_140A&MI_00,   USB\VID_12d1&PID_140C&MI_00,   USB\VID_12d1&PID_140B&MI_00,   USB\VID_12d1&PID_1427&MI_00

Generic Atheros 802.11N

PCI\VEN_168C&DEV_002A&SUBSYS_3097168C
PCI\VEN_168C&DEV_002A&SUBSYS_3098168C
PCI\VEN_168C&DEV_002A&SUBSYS_3099168C
PCI\VEN_168C&DEV_002A&SUBSYS_309A168C
PCI\VEN_168C&DEV_002A&SUBSYS_309B168C
PCI\VEN_168C&DEV_002A&SUBSYS_309C168C
PCI\VEN_168C&DEV_002A&SUBSYS_309D168C
PCI\VEN_168C&DEV_002A&SUBSYS_309F168C
PCI\VEN_168C&DEV_0029&SUBSYS_2091168C
PCI\VEN_168C&DEV_0029&SUBSYS_2092168C
PCI\VEN_168C&DEV_0029&SUBSYS_2093168C
PCI\VEN_168C&DEV_0029&SUBSYS_2094168C
PCI\VEN_168C&DEV_0029&SUBSYS_2096168C
PCI\VEN_168C&DEV_0029&SUBSYS_2098168C
PCI\VEN_168C&DEV_002B&SUBSYS_30A1168C
PCI\VEN_168C&DEV_002B&SUBSYS_30A2168C
PCI\VEN_168C&DEV_002B&SUBSYS_30AA168C
PCI\VEN_168C&DEV_002B&SUBSYS_30AB168C
PCI\VEN_168C&DEV_002A&SUBSYS_30A3168C
PCI\VEN_168C&DEV_002C&SUBSYS_30A7168C
PCI\VEN_168C&DEV_002D&SUBSYS_2099168C
PCI\VEN_168C&DEV_002E&SUBSYS_30A4168C
PCI\VEN_168C&DEV_0013&SUBSYS_A527167D
PCI\VEN_168C&DEV_0013&SUBSYS_7064144F
PCI\VEN_168C&DEV_0013&SUBSYS_7065144F
PCI\VEN_168C&DEV_0013&SUBSYS_7084144F
PCI\VEN_168C&DEV_0013&SUBSYS_7088144F
PCI\VEN_168C&DEV_001B&SUBSYS_7092144F
PCI\VEN_168C&DEV_001A&SUBSYS_7094144F
PCI\VEN_168C&DEV_001C&SUBSYS_7096144F
PCI\VEN_168C&DEV_001C&SUBSYS_7106144F
PCI\VEN_168C&DEV_001C&SUBSYS_7128144f
PCI\VEN_168C&DEV_001C&SUBSYS_7112144f
PCI\VEN_168C&DEV_001C&SUBSYS_04271468
PCI\VEN_168C&DEV_001C&SUBSYS_04251468
PCI\VEN_168C&DEV_001A&SUBSYS_04261468
PCI\VEN_168C&DEV_001A&SUBSYS_00531737
PCI\VEN_168C&DEV_001B&SUBSYS_00431737
PCI\VEN_168C&DEV_0013&SUBSYS_00351731
PCI\VEN_168C&DEV_0013&SUBSYS_00351737
PCI\VEN_168C&DEV_0013&SUBSYS_00171737
PCI\VEN_168C&DEV_0013&SUBSYS_00251737
PCI\VEN_168C&DEV_0013&SUBSYS_1026168C
PCI\VEN_168C&DEV_0013&SUBSYS_00361737
PCI\VEN_168C&DEV_0013&SUBSYS_46101385
PCI\VEN_168C&DEV_001C&SUBSYS_75191113
PCI\VEN_168C&DEV_001C&SUBSYS_04221468
PCI\VEN_168C&DEV_0013&SUBSYS_04171468
PCI\VEN_168C&DEV_001A&SUBSYS_04181468
PCI\VEN_168C&DEV_001A&SUBSYS_04201468
PCI\VEN_168C&DEV_001C&SUBSYS_E000105B
PCI\VEN_168C&DEV_001C&SUBSYS_E002105B
PCI\VEN_168C&DEV_001C&SUBSYS_042A1468
PCI\VEN_168C&DEV_001C&SUBSYS_01051A32
PCI\VEN_168C&DEV_0013&SUBSYS_04061468
PCI\VEN_168C&DEV_0013&SUBSYS_04071468
PCI\VEN_168C&DEV_001C&SUBSYS_04231468
PCI\VEN_168C&DEV_001C&SUBSYS_0423168C

Wistron / WNC Wireless LAN USB, PCI, CardBus Adapter List

| Wireless Driver & Software

PCI CARD

WLAN 802.11a/b/g PCI Card Green policy

Model No : VZA-81, Datachable Antenna, PCI Version 2.2 Form Factor, Half-Height PCB Dimension, 64/128/152-bit WEP Key, 802.1x Authentication, AES Encryption, S/W Control Radio On/Off, Dual-Band External Antenna

Download Benq AWL200 Wireless Win98,Me,2000,XP Drivers,Utility

| Wireless Driver & Software

Benq AWL200 802.11b WLAN Mini-PCI Adapter

The AWL200 is engineered to deliver true 11Mbps data rates, the full speed allowed by the IEEE802.11b standard.

BENQ model AWL-200, prism 2.5 chipset.

  • Standards Compliance: IEEE 802.11b
  • Data Security: 64/128-bit WEP Encryption
  • Frequency Range: 2.400 ~ 2.4835 GHz (subject to local requirements)
  • Signal Spreading: Direct Sequence Spread Spectrum (DSSS)

Device Name: BENQ AWL200 Wireless LAN Mini-PCI Adapter

Hardware ID: PCI\VEN_1260&DEV_3873&SUBSYS_38731260

Download Benq AWL200 802.11b Mini-PCI Adapter Win98/Me/2000/XP Drivers:

BenQ_AWL200.zip (1,13MB, Ver.1.1.0.605)

ZyXEL ZyAIR G-2000 Plus 802.11g Wireless 4-port Router

| Wireless Driver & Software

Setup and Administration – Firewall

The Plus’ firewall / routing portion uses stateful packet inspection (SPI) to provide protection against denial of service (DoS) and other attacks. The firewall is primarily rule-driven in its configuration and behavior and uses a basic set of default rules but custom firewall rules may be defined and added to its rules base.

The documentation includes a reasonably helpful and comprehensive rule logic overview for those who want to create custom firewall rules, and includes a checklist to determine the intent of the rule, label it as an allow or deny mechanism, specify whether its focus is on inbound or outbound traffic, identify IP services involved, as well as computers affected.

The rule definition interface is visual, and includes data entry fields or pull down lists to specify what action to take (Block, Forward) and the service against which it operates (the interface includes a large list of predefined services, but also includes a mechanism to add new definitions to that list).

Default rules permit LAN-to-WAN (outbound) traffic, but deny traffic initiated from WAN-to-LAN (inbound). Firewall rules are grouped based on direction of travel, into the following categories:

  1. LAN to LAN / ZyAIR
  2. LAN to WAN
  3. WAN to LAN
  4. WAN to WAN / ZyAIR

The default stateful inspection rules block WAN to LAN and WAN to WAN / ZyAIR traffic, so that computers on the Internet cannot use the Plus as a gateway to other computers on the WAN, nor can they attempt to manage the Plus itself. It’s possible to add custom rules by comparing Source IP address, destination IP address and IP protocol type for traffic to rules defined by the administrator.

One of the first things I needed to do was to set up inbound access for my web and email server, which meant changing firewall settings. This was fairly simple using the SUA/NAT page (Figure 5).

SUA Server

Figure 5: SUA Server
(click to enlarge)

Unfortunately, making these entries did not achieve the desired results, which should have been to forward all incoming requests on ports 80 and 25 to my server at IP address 192.168.1.4. The G-2000 Plus’s own logs even confirmed that those requests were being dropped. I managed to figure out that in addition to making the proper SUA / NAT entry, I also had to create rules in the firewall to tell the system to properly forward such requests. Once that was done, it worked fine.

While I now understand why the firewall rules had to be entered, I think ZyXEL should either provide some sort of reminder or flag that a firewall rule creation is necessary when defining an SUA / Server, or do it automatically like many other consumer routers do! And to make matters even more confusing, I found that when setting a “Default Server” (commonly known as a “DMZ” machine), I didn’t need to program a matching firewall rule!

Besides the usual firewall functions of keeping out the bad guys and acting as a gatekeeper for your local network, the Plus also performs basic web filtering. You can restrict web features like ActiveX and Java, and you can restrict URL’s by outright specification or by keywords. You can even assign the days and times when filtering is active (Figure 6).

Firewall Content Filter

Figure 6: Firewall Content Filter

Belkin N1 Wireless Router: Neighbor-Friendly but Flawed Draft 11n

| Wireless Driver & Software

Wireless Performance

But the real story for the N1 is its wireless performance, so let’s get to it. Testing was done with a Belkin Belkin N1 laptop Card (F5D8011) in a 1GHz Dell Inspiron laptop running WinXP Home SP2 with all the latest updates. I downloaded and installed the latest client release (1.0.0.28) from Belkin’s website and used the Belkin client utility version 2.0.0.30. It reported a chip version of 0.0.0.129 and driver version of 6.0.1.4.

The router also was loaded with latest (1.01.23) firmware and I left all factory default settings in place (see Figure 13 for the details).

Figure 15 shows an IxChariot plot of downlink throughput, i.e. router/AP to client, with the router and card about six feet apart (my Location 1). You can see the 43 Mbps average throughput over the 2 minute test period is far below the 300 Mbps speed prominently displayed in the N1′s marketing material, coming nowhere near even 100 Mbps. This is partly due to the fact that the N1′s 100 Mbps ports limit the single-direction wireless throughput.

Location 1 throughput - downlink

Figure 15: Location 1 throughput – downlink (click to enlarge)

But the 3-5 second throughput “dropouts” that occur at approximately 30 second intervals aren’t helping the average throughput much either. These are actual pauses in data transmission (you can see the client card light stop blinking). Although my investigations into wireless streaming revealed that throughput variation isn’t as much of a problem as I had thought, the N1′s behavior would definitely cause problems for anyone trying to use the product for high-rate continuous streaming applications.

I ran a quick experiment using a VoWLAN phone to see if I could notice the throughput dropouts. I had the router set to AP mode and watched the LED on the WAN port that connected the N1 into my LAN. To my surprise, I didn’t notice any dropouts and the router WLAN port blinked continuously during the call. So my conclusion from this experiment is that the dropouts might be due to high continuous data rate used in the IxChariot test.

Figure 16 shows similar behavior for uplink traffic, with around 48 Mbps average throughput.

Location 1 throughput - uplink

Figure 16: Location 1 throughput – uplink (click to enlarge)

Figure 17 shows the results of a simultaneous up and downlink run, which yields a total of 62 Mbps average throughput. If the dropouts weren’t present, the result would be closer to 80 Mbps, since each stream tends to run at that speed between dropouts.

Location 1 throughput - simultaneous up and downlink

Figure 17: Location 1 throughput – simultaneous up and downlink (click to enlarge)