1. In an apparatus comprising at least a vertical cavity surface emitting laser, a system for increasing an operational life of the laser, the system comprising:
control circuitry for reducing an amount of bias current at high temperatures and increasing a power of the laser at low temperatures.
2. The system of claim 1, wherein said control circuitry further comprises at least one of a temperature sensor, a Field Programmable Gate Array, a read only memory module, and an electrically erasable programmable read only memory module.
3. The system of claim 2, wherein said control circuitry further comprises a lookup table that sets said bias current depending on a temperature of the laser.
4. The system of claim 1, wherein the laser is operated at a speed of at least 4 gigabits per second.
5. A method for increasing a reliability of a vertical cavity surface emitting laser, the method comprising:
reducing an amount of a bias current over a high temperature range; and
increasing an amount of the laser power over a low temperature range.
6. The method of claim 5, wherein said increasing and reducing steps are accomplished using control circuitry that is external to the laser.
7. The method of claim 6, wherein said control circuitry comprises at least one of a temperature sensor, a Field Programmable Gate Array, a read only memory module, and an electrically erasable programmable read only memory module.
8. The method of claim 7, wherein said control circuitry further comprises a lookup table that sets said bias current depending on a temperature of the laser.
9. The method of claim 5, wherein the laser is operated at a speed of at least 4 gigabits per second.
10. A method for increasing a reliability of an optoelectronic transceiver module, the module including at least one vertical cavity surface emitting laser, the method comprising:
reducing an amount of a bias current going to the laser over a high temperature range; and
increasing an amount of the laser power over a low temperature range.
11. The method of claim 10, wherein said increasing and reducing steps are accomplished using control circuitry that is external to the laser.
12. The method of claim 11, wherein said control circuitry comprises at least one of a temperature sensor, a Field Programmable Gate Array, a read only memory module, and an electrically erasable programmable read only memory module.
13. The method of claim 11, wherein said control circuitry further comprises a lookup table that sets said bias current depending on a temperature of the laser.
14. The method of claim 10, wherein the laser is operated at a speed of at least 4 gigabits per second.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A wireless communication system comprising:
a filter configured to monitor a channel-quality indicator response; and
a storage module, coupled to the filter, configured as a base station behavior matrix to select an ACK channel-quality indicator to be transmitted.
2. The system as claimed in claim 1 further comprising an ACK adjust module, coupled to the filter, configured to calculate the ACK channel-quality indicator.
3. The system as claimed in claim 1 wherein the filter is an infinite impulse response filter.
4. The system as claimed in claim 1 further comprising a receiver, coupled to the filter, configured to identify the channel-quality indicator response.
5. The system as claimed in claim 1 wherein the base station behavior matrix includes a control module, coupled to the storage module, configured to manage the base station behavior matrix.
6. The system as claimed in claim 1 further comprising a receiver configured to receive an arriving communication including generating a channel-quality indicator response.
7. The system as claimed in claim 1 further comprising an ACK adjust module, coupled to the filter, configured to calculate the ACK channel-quality indicator includes a channel-quality indicator offset coupled between the ACK adjust module and the filter.
8. The system as claimed in claim 1 wherein the filter is an infinite impulse response filter configured to calculate a channel-quality indicator offset and a baseline channel-quality indicator.
9. The system as claimed in claim 1 further comprising:
a receiver, coupled to the filter, the base station behavior matrix; and
an ACK adjust module, configured to identify a channel-quality indicator response includes a behavior of the base station monitored.
10. The system as claimed in claim 1 wherein the base station behavior matrix, includes a control module, coupled to the storage module, configured to select an ACK channel-quality indicator from the storage module to optimize the performance of a mobile device.
11. The system as claimed in claim 1 further comprising a receiver, coupled to the filter, configured to receive an arriving communication and generate a channel-quality indicator response.
12. The system as claimed in claim 1 further comprising an ACK adjust module, coupled to the filter, configured to calculate the ACK channel-quality indicator includes a channel-quality indicator offset coupled between the ACK adjust module and the filter.
13. The system as claimed in claim 1 wherein the filter is an infinite impulse response filter configured to calculate a channel-quality indicator offset and a baseline channel-quality indicator.
14. The system as claimed in claim 1 further comprising an ACK adjust module coupled to the filter and the base station behavior matrix, configured to monitor a behavior of the channel-quality indicator response.
15. The system as claimed in claim 1 wherein the base station behavior matrix, includes a control module, coupled to the storage module and the filter, configured to select an ACK channel-quality indicator from the storage module to optimize the performance of a mobile device.
16. A method of operation of a wireless communication system comprising:
calculating a baseline channel-quality indicator from the channel-quality indicator response including updating a base station behavior matrix; and
transmitting an ACK channel-quality indicator, including modifying the baseline channel-quality indicator selected from the base station behavior matrix, to be transmitted.
17. The method as claimed in claim 16 further comprising modifying, by an ACK adjust module, the baseline channel-quality indicator to calculate the ACK channel-quality indicator.
18. The method as claimed in claim 16 wherein filtering the channel-quality indicator response including invoking an infinite impulse response filter.
19. The method as claimed in claim 16 further comprising receiving an arriving communication from the base station configured to identify a channel-quality indicator response.
20. The method as claimed in claim 16 wherein updating the base station behavior matrix includes storing the ACK channel-quality indicator by a control module.