IP Library Granted Patent US 7,200,501
Granted Patent B2
US 7,200,501 · App. 11/194,954 · Granted Apr 3, 2007

Reducing uncertainty in severely quantized telemetry signals

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Quick Facts
Patent No.
US 7,200,501
App. No.
11/194,954
Granted
Apr 3, 2007
Kind
B2
Abstract

A system that facilitates reducing uncertainty in a quantized signal. During operation, the system measures a quantized output signal from a sensor. Next, the system obtains an initial value for an uncertainty interval for the quantized output signal. The system then margins the quantized output signal high by introducing a controlled increase in the mean of the quantized output signal to produce a high-margined quantized output signal. Next, the system measures the high-margined quantized output signal from the sensor. The system then uses information obtained from the high-margined quantized output signal to reduce the uncertainty interval for the quantized output signal.

Claims (69)

1. A method for reducing uncertainty in a quantized signal, comprising:

measuring a quantized output signal from a sensor;

obtaining an initial value for an uncertainty interval for the quantized output signal;

margining the quantized output signal high by introducing a controlled increase in the mean of the quantized output signal to produce a high-margined quantized output signal;

measuring the high-margined quantized output signal from the sensor;

using information about the bounds of the high-margined quantized output signal to reduce the uncertainty interval;

using the quantized output signal and information about the reduced uncertainty level for the quantized output signal to determine whether a component monitored by the sensor is at the onset of degradation; and

if so, performing a remedial action.

2. The method of claim 1 , wherein the method further comprises:

margining the quantized output signal low by introducing a controlled decrease in the mean of the quantized output signal to produce a low-margined quantized output signal;

measuring the low-margined quantized output signal from the sensor;

using information about the bounds of the low-margined quantized output signal to further reduce the uncertainty interval.

3. The method of claim 2 , wherein reducing the uncertainty interval for the quantized output signal involves:

obtaining the uncertainty intervals for the high-margined and the low-margined quantized output signals;

determining an upper bound for the uncertainty interval by selecting the minimum upper bound from: the uncertainty interval for the quantized output signal, the uncertainty interval for the high-margined quantized output signal, and the uncertainty interval for the low-margined quantized output signal; and

determining a lower bound for the uncertainty interval by selecting the maximum lower bound from: the uncertainty interval for the quantized output signal, the uncertainty interval for the high-margined quantized output signal, and the uncertainty interval for the low-margined quantized output signal.

4. The method of claim 2 , wherein margining the quantized output signal high involves increasing an input signal by a fixed amount.

5. The method of claim 2 , wherein margining the quantized output signal low involves decreasing an input signal by a fixed amount.

6. The method of claim 1 ,

wherein an input signal can include a voltage, current, temperature, clock speed, and/or load; and

wherein the quantized output signals can include voltage, temperature, and/or current.

7. The method of claim 1 , wherein the initial value for the uncertainty interval is the quantization interval of the quantized output signal.

8. An apparatus for reducing uncertainty in a quantized signal, comprising:

a computer system;

a margining mechanism configured to:

measure a quantized output signal from a sensor within the computer system;

obtain an initial value for an uncertainty interval for the quantized output signal;

margin the quantized output signal high by introducing a controlled increase in the mean of the quantized output signal to produce a high-margined quantized output signal;

measure the high-margined quantized output signal from the sensor;

use information about the bounds of the high-margined quantized output signal to reduce the uncertainty interval; and

a diagnostic mechanism configured to:

use the quantized output signal and information about the reduced uncertainty level for the quantized output signal to determine whether a component monitored by the sensor is at the onset of degradation; and

if so, to perform a remedial action.

9. The apparatus of claim 8 , wherein the margining mechanism is additionally configured to:

margin the quantized output signal low by introducing a controlled decrease in the mean of the quantized output signal to produce a low-margined quantized output signal;

measure the low-margined quantized output signal from the sensor; and to

use information about the bounds of the low-margined quantized output signal to further reduce the uncertainty interval.

10. The apparatus of claim 9 , wherein while reducing the uncertainty interval for the quantized output signal, the margining mechanism is configured to:

obtain the uncertainty intervals for the high-margined and the low-margined quantized output signals;

determine an upper bound for the uncertainty interval by selecting the minimum upper bound from: the uncertainty interval for the quantized output signal, the uncertainty interval for the high-margined quantized output signal, and the uncertainty interval for the low-margined quantized output signal; and to

determine a lower bound for the uncertainty interval by selecting the maximum lower bound from: the uncertainty interval for the quantized output signal, the uncertainty interval for the high-margined quantized output signal, and the uncertainty interval for the low-margined quantized output signal.

11. The apparatus of claim 9 , wherein while margining the quantized output signal high, the margining mechanism is configured to increase an input signal by a fixed amount.

12. The apparatus of claim 9 , wherein while margining the quantized output signal low, the margining mechanism is configured to decrease the input signal by a fixed amount.

13. The apparatus of claim 8 ,

wherein an input signal can include a voltage, current, temperature, clock speed, and/or load; and

wherein the quantized output signals can include voltage, temperature, and/or current.

14. The apparatus of claim 8 , wherein the initial value for the uncertainty interval is the quantization interval of the quantized output signal.

15. A computer system for reducing uncertainty in a quantized signal, comprising:

a computer system; and

a margining mechanism configured to:

measure a quantized output signal from a sensor within the computer system;

obtain an initial value for an uncertainty interval for the quantized output signal;

margin the quantized output signal high by introducing a controlled increase in the mean of the quantized output signal to produce a high-margined quantized output signal;

measure the high-margined quantized output signal from the sensor;

use information about the bounds of the high-margined quantized output signal to reduce the uncertainty interval; and

a diagnostic mechanism configured to:

use the quantized output signal and information about the reduced uncertainty level for the quantized output signal to determine whether a component monitored by the sensor is at the onset of degradation; and

if so, to perform a remedial action.

16. The computer system of claim 15 , wherein the margining mechanism is configured to:

margin the quantized output signal low by introducing a controlled decrease in the mean of the quantized output signal to produce a low-margined quantized output signal;

measure the low-margined quantized output signal from the sensor; and to

use information about the bounds of the low-margined quantized output signal to further reduce the uncertainty interval.

17. The computer system of claim 16 , wherein while reducing the uncertainty interval for the quantized output signal, the margining mechanism is configured to:

obtain the uncertainty intervals for the high-margined and the low-margined quantized output signals;

determine an upper bound for the uncertainty interval by selecting the minimum upper bound from: the uncertainty interval for the quantized output signal, the uncertainty interval for the high-margined quantized output signal, and the uncertainty interval for the low-margined quantized output signal; and to

determine a lower bound for the uncertainty interval by selecting the maximum lower bound from: the uncertainty interval for the quantized output signal, the uncertainty interval for the high-margined quantized output signal, and the uncertainty interval for the low-margined quantized output signal.

18. The computer system of claim 16 , wherein while margining the quantized output signal high, the margining mechanism is configured to increase an input signal by a fixed amount.

19. The computer system of claim 16 , wherein while margining the quantized output signal low, the margining mechanism is configured to decrease an input signal by a fixed amount.

20. The computer system of claim 15 , wherein the initial value for the uncertainty interval is the quantization interval of the quantized output signal.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded Dec 16, 2015
From: ORACLE USA, INC.; SUN MICROSYSTEMS, INC.; ORACLE AMERICA, INC.
To: ORACLE AMERICA, INC.
Reel/Frame 037302/0732 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 29, 2005
From: URMANOV, ALEKSEY M.; GROSS, KENNY C.
To: SUN MICROSYSTEMS, INC.
Reel/Frame 017417/0400 →