Nova Patents
BRPI0807699A2

SPS receiver with adjustable linearity

Abstract

A satellite positioning system (SPS) receiver that can provide good performance with low power consumption is described. The SPS receiver may be operated in one of multiple modes, which may be associated with different bias current settings for the SPS receiver. One of the modes may be selected based on output power level of a transmitter co-located with the SPS receiver. The bias current of an LNA, a mixer, and/or an LO generator within the SPS receiver may be set based on the selected mode. In one design, a first (e.g., lower power) mode may be selected for the SPS receiver if the transmitter output power level is below a switch point. A second (e.g., high linearity) mode may be selected if the transmitter output power level is above the switch point. The second mode is associated with more bias current for the SPS receiver than the first mode.

Term

1.4 yearsleft in the term

Expires 20 February 2028.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

1 claim: 1 independent, 0 dependent

  1. 1
    Translation of claims of equivalent WO 2008106354 A2 CLAIMS 1. An apparatus comprising:at least one processor configured to determine an output power level of a transmitter co-located with a satellite positioning system (SPS) receiver, and to adjust bias current of the SPS receiver based on the output power level of the transmitter;and a memory coupled to the at least one processor. 2. The apparatus of claim 1, wherein the at least one processor is configured to select one of a plurality of modes for the SPS receiver based on the output power level of the transmitter, the plurality of modes being associated with different bias current settings for the SPS receiver, and to set the bias current of the SPS receiver based on the selected mode. 3. The apparatus of claim 1, wherein the at least one processor is configured to select a first mode for the SPS receiver if the output power level of the transmitter is below a switch point, and to select a second mode for the SPS receiver if the output power level of the transmitter is above the switch point, the second mode being associated with more bias current for the SPS receiver than the first mode. 4. The apparatus of claim 3, wherein the memory is configured to store at least one switch point for at least one frequency band, and wherein the at least one processor receives the switch point for a frequency band currently used by the transmitter from the memory. 5. The apparatus of claim 3, wherein the at least one processor is configured to receive an interrupt when the output power level of the transmitter exceeds the switch point and to select the second mode for the SPS receiver in response to receiving the interrupt. 6. The apparatus of claim 3, wherein while the SPS receiver is in the second mode, the at least one processor is configured to perform polling to determine whether the output power level of the transmitter is below the switch point. 7. The apparatus of claim 3, wherein the at least one processor is configured to use time hysteresis for transitions between the first and second modes for the SPS receiver. 8. The apparatus of claim 3, wherein for a transition from the first mode to the second mode, the at least one processor is configured to disable the SPS receiver, to switch the SPS receiver from the first mode to the second mode, to start a timer, and to enable the SPS receiver upon expiration of the timer. 9. The apparatus of claim 1, wherein the at least one processor is configured to maintain a state machine comprising a plurality of states, each state being associated with a particular mode for the SPS receiver and a particular status of the transmitter. 10. The apparatus of claim 9, wherein the state machine comprises a first state corresponding to the SPS receiver being in a first mode and the transmitter being off, a second state corresponding to the SPS receiver being in the first mode and the transmitter being on, and a third state corresponding to the SPS receiver being in a second mode and the transmitter being on, the second mode being associated with more bias current for the SPS receiver than the first mode. 11. The apparatus of claim 1 , wherein the transmitter comprises a power amplifier (PA) operable in multiple ranges, and wherein the at least one processor is configured to determine the output power level of the transmitter based on a current range of the PA and a gain of the transmitter. 12. The apparatus of claim 1, wherein the at least one processor is configured to adjust bias current of a low noise amplifier (LNA) within the SPS receiver based on the output power level of the transmitter. 13. The apparatus of claim 1, wherein the at least one processor is configured to adjust bias current of a mixer within the SPS receiver or a local oscillator (LO) generator for the SPS receiver based on the output power level of the transmitter. 14. The apparatus of claim 1, wherein the SPS receiver is a Global Positioning System (GPS) receiver. 15. The apparatus of claim 1, wherein the transmitter is a Code Division Multiple Access (CDMA) transmitter. 16. A method comprising : determining an output power level of a transmitter co-located with a satellite positioning system (SPS) receiver;and adjusting bias current of the SPS receiver based on the output power level of the transmitter. 17. The method of claim 16, wherein the adjusting the bias current of the SPS receiver comprises selecting one of a plurality of modes for the SPS receiver based on the output power level of the transmitter, the plurality of modes being associated with different bias current settings for the SPS receiver, and setting the bias current of the SPS receiver based on the selected mode. 18. The method of claim 16, wherein the adjusting the bias current of the SPS receiver comprises selecting a first mode for the SPS receiver if the output power level of the transmitter is below a switch point, and selecting a second mode for the SPS receiver if the output power level of the transmitter is above the switch point, the second mode being associated with more bias current for the SPS receiver than the first mode. 19. An apparatus comprising : means for determining an output power level of a transmitter co-located with a satellite positioning system (SPS) receiver;and means for adjusting bias current of the SPS receiver based on the output power level of the transmitter. 20. The apparatus of claim 19, wherein the means for adjusting the bias current of the SPS receiver comprises means for selecting one of a plurality of modes for the SPS receiver based on the output power level of the transmitter, the plurality of modes being associated with different bias current settings for the SPS receiver, and means for setting the bias current of the SPS receiver based on the selected mode. 21. The apparatus of claim 19, wherein the means for adjusting the bias current of the SPS receiver comprises means for selecting a first mode for the SPS receiver if the output power level of the transmitter is below a switch point, and means for selecting a second mode for the SPS receiver if the output power level of the transmitter is above the switch point, the second mode being associated with more bias current for the SPS receiver than the first mode. 22. A computer program product, comprising: computer-readable medium comprising: code for causing a computer to determine an output power level of a transmitter co-located with a satellite positioning system (SPS) receiver;and code for causing a computer to adjust bias current of the SPS receiver based on the output power level of the transmitter. 23. The computer program product of claim 22, wherein the code for causing a computer to adjust bias current comprises: code for causing a computer to select one of a plurality of modes for the SPS receiver based on the output power level of the transmitter, the plurality of modes being associated with different bias current settings for the SPS receiver, and code for causing a computer to set the bias current of the SPS receiver based on the selected mode. 24. The computer program product of claim 22, wherein the code for causing a computer to adjust bias current comprises: code for causing a computer to select a first mode for the SPS receiver if the output power level of the transmitter is below a switch point, and code for causing a computer to select a second mode for the SPS receiver if the output power level of the transmitter is above the switch point, the second mode being associated with more bias current for the SPS receiver than the first mode. 25. A device comprising: a low noise amplifier (LNA) configured to receive and amplify a radio frequency (RF) input signal comprising signals from satellite positioning system (SPS) satellites, the LNA having bias current adjusted based on output power level of a co- located transmitter;and at least one bias current source configured to provide adjustable bias current for the LNA. 26. The device of claim 25, wherein the LNA comprises: a transistor configured to receive the RF input signal and provide signal gain, and a current mirror configured to receive the adjustable bias current and provide a bias voltage for the transistor. 27. A device including a low noise amplifier (LNA) for amplifying an input signal, the LNA comprising: a first transistor configured to receive the input signal, a second transistor configured to receive a bias current and forming a current mirror for the first transistor, and an operational amplifier (op amp) operative to generate a bias voltage for the first and second transistors to match operating points of the first and second transistors. 28. The device of claim 27, wherein the op amp is configured to receive first and second voltages at inverting and non-inverting inputs, respectively, and to generate the bias voltage based on the first and second voltages, the first voltage being a replicated output voltage of the first transistor, and the second voltage being an output voltage of the second transistor. 29. The device of claim 27, wherein the LNA further comprises: a third transistor coupled to the first transistor in a cascode configuration and configured to provide an output signal for the LNA. 30. The device of claim 29, wherein the LNA further comprises: a fourth transistor configured to provide a replicated output voltage of the first transistor, the third and four transistors having gates coupled together. 31. The device of claim 27, wherein the LNA further comprises: a source degeneration inductor coupled to a source of the first transistor, and a source degeneration resistor coupled to a source of the second transistor, the source degeneration resistor modeling resistive loss of the source degeneration inductor. 32. The device of claim 27, wherein bias current of the first transistor is multiple times the bias current of the second transistor. 33. The device of claim 27, wherein bias current of the first transistor is at least ten times the bias current of the second transistor. 34. The device of claim 27, wherein the LNA further comprises: a lowpass filter configured to receive the bias voltage from the op amp and provide a filtered bias voltage to the first transistor. 35. The device of claim 27, further comprising: at least one bias current source configured to provide adjustable bias current for second transistor. 36. An integrated circuit including a low noise amplifier (LNA) for amplifying an input signal, the LNA comprising: a first transistor configured to receive the input signal;a second transistor configured to receive a bias current and forming a current mirror for the first transistor;and an operational amplifier (op amp) operative to generate a bias voltage for the first and second transistors to match operating points of the first and second transistors. 37. The integrated circuit of claim 36, wherein the op amp is configured to receive first and second voltages at inverting and non-inverting inputs, respectively, and to generate the bias voltage based on the first and second voltages, the first voltage being a replicated output voltage of the first transistor, and the second voltage being an output voltage of the second transistor. 38. The integrated circuit of claim 36, wherein the LNA further comprises: a third transistor coupled to the first transistor in a cascode configuration and configured to provide an output signal for the LNA;and a fourth transistor configured to provide a replicated output voltage of the first transistor, the third and four transistors having gates coupled together.