1460723549-58ce5921-70b4-4c60-a9d7-a32db9d56a4b

1. An efficient method of data mining to facilitate ready identification of desired features within imagery data dispersed among multiple spectral bands, comprising:
(a) selecting a wavelet type for use in said efficient method of data mining;
(b) providing means for manipulating said data, said means at least further capable of implementing the algorithm,
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\u2003where
GDFI2n(i, t) is a wavelet-based generalized difference feature index,
i refers to wavelength band i of a data collector,
t is a specified lag between wavelength bands,
h0, h1 . . . h2n\u22121 are high frequency coefficients
g0, g1 . . . g2n\u22121 are low frequency coefficients,
wherein, a number of said high and low frequency coefficients is determined upon establishing an order of a wavelet of said selected wavelet type,

n is a specified number of vanishing moments of said selected wavelet type, and
zi, zi+t. . . zi +(2n\u22121)t are data necessary to yield at least one said wavelet-based generalized difference feature index from a spectral signature of an image;

(c) establishing a set of wavelet-based generalized difference feature indices that may be generated later in said efficient method of data mining;
(d) initiating at least one said means for manipulating data by setting a maximum wavelet order limit, selecting wavelength bands and setting K=0 and setting T=1, where
K is a specified wavelet array index, and
T is an incremented specified lag, defined as a specified number of said wavelength bands skipped between ones of said selected wavelength bands;

(e) setting a lag limit defined as
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\u2003where m is a specified number of wavelength bands in a specified dataset;
(f) reading at least one said data set comprising said wavelength in said specified dataset bands into said means for manipulating;
(g) identifying and discarding said specified wavelength bands having compromised data;
(h) incrementing said K;
(i) incrementing said T by 1;
(j) computing a reduced set of difference-sum wavelength band ratios;
(k) generating at least one said established wavelet-based generalized difference feature index;
(l) generating a cube of each said established wavelet-based generalized difference feature index;
(m) selecting at least one of said established wavelet-based generalized difference feature indices;
(n) thresholding said selected pre-specified established wavelet-based generalized difference feature indices,

wherein said thresholding results in only said selected pre-specified established wavelet-based generalized difference feature indices being used henceforth;
(o) saving said thresholded selected pre-specified established wavelet-based generalized difference feature indices;
(p) determining if said lag limit has been met;
(q) if said lag limit has been met, determining if said maximum wavelet order limit has been met;
(r) if said lag limit has not been met, performing another iteration of steps (h) through (r) until said lag limit has been met;
(s) if said maximum wavelet order limit has been met, stopping; and
(t) if said maximum wavelet order limit has not been met, setting said T=1 and performing another iteration of steps (h) through (t) until said maximum wavelet order limit has been met,

wherein, if both said lag limit and said maximum wavelet order limit have been met, said efficient method of data mining is ended, resulting in an efficient identification of said desired features in said imagery data.
2. The method of claim 1 said imagery data comprising hyperspectral data.
3. The method of claim 2 said hyperspectral data comprising wavelengths in the spectra from about 300 to about 900 nanometers.
4. The method of claim 2 said hyperspectral data comprising wavelengths in the spectrum of visible light.
5. The method of claim 1 said means for manipulating said data comprising software running on at least one specially programmed computer.
6. The method of claim 1 wherein, in the step of setting said maximum wavelet order limit, said maximum wavelet order limit is set at sixteen (16).
7. The method of claim 1 selecting said wavelet type from the group consisting of Daubechies, Vaidyanathan, Coiflet, Beylkin, and Symmlet Wavelets.
8. The method of claim 7 selecting said Daubechies Wavelet as said wavelet type.
9. An efficient method of data mining to facilitate ready identification of desired features within a multi-band data set, comprising:
(a) selecting a wavelet type for use in said efficient method of data mining;
(b) providing means for manipulating said data, said means configured to perform the algorithm,
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\u2003where
GDFI2n(i, t) is a wavelet-based generalized difference feature index,
i refers to band i of a data collector,
t is a specified lag between bands,
h0, h1. . . h2n\u22121 are high frequency coefficients
g0, g1. . . g2n\u22121 are low frequency coefficients,

wherein, a number of said high and low frequency coefficients is determined upon establishing an order of a wavelet of said selected wavelet type,
n is a specified number of vanishing moments of said selected wavelet, and
zi, zi+t. . . zi+(2n\u22121)t are data necessary to yield at least one said wavelet-based generalized difference feature index from a spectral signature;

(c) establishing a set of wavelet-based generalized difference feature indices that may be generated later in said efficient method of data mining;
(d) initiating at least one said means for manipulating data by setting a maximum wavelet order limit, selecting bands and setting K=0 and setting T=1, where
K is a specified wavelet array index, and
T is an incremented a specified lag, defined as a specified number of said bands skipped between ones of said selected bands;

(e) setting a lag limit defined as
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(f) reading at least one said data set comprising said bands in said specified dataset into said means for manipulating;
(g) identifying and discarding said specified bands having compromised data;
(h) incrementing said K;
(i) incrementing said T by 1;
(j) computing a reduced set of difference-sum band ratios;
(k) generating at least one said established wavelet-based generalized difference feature index;
(l) generating a cube of each said established wavelet-based generalized difference feature index;
(m) selecting at least one of said established wavelet-based generalized difference feature indices;
(n) thresholding said selected pre-specified established wavelet-based generalized difference feature indices,

wherein said thresholding results in only said selected pre-specified established wavelet-based generalized difference feature indices being used henceforth;
(o) saving said thresholded selected pre-specified established wavelet-based generalized difference feature indices;
(p) determining if said lag limit has been met;
(q) if said lag limit has been met, determining if said maximum wavelet order limit has been met;
(r) if said lag limit has not been met, performing another iteration of steps (h) through (r) until said lag limit has been met;
(s) if said maximum wavelet order limit has been met, stopping; and
(t) if said maximum wavelet order limit has not been met, setting said T=1 and performing another iteration of steps (h) through (t) until said maximum wavelet order limit has been met,

wherein, if both said lag limit and said maximum wavelet order limit have been met, said efficient method of data mining is ended, resulting in an efficient identification of said desired features in said multi-band data set.
10. An efficient method of data mining to facilitate ready categorization of a data set dispersed over multiple bands, comprising:
selecting at least one wavelet type for use in said method,

wherein said wavelet is selected to achieve optimum computational efficiency;
providing software for at least implementing an algorithm to calculate at least one wavelet-based generalized difference feature index (GDFI);
specifying a set of generalized difference feature indices to be calculated using said efficient method of data mining;
providing a software routine to select and process a reduced set of bands of said data set dispersed over multiple bands;
iterating a sub-routine of said routine while applying a lag limit and a maximum wavelet order limit to establish a number of iterations, said sub-routine to at least:
compute a reduced set of difference-sum band ratios;
calculate said generalized difference feature indices;
generate the cube of each said calculated generalized difference feature index;
select pre-specified ones of said calculated generalized difference feature indices;
threshold said selected calculated generalized difference feature indices,

wherein said thresholding results in only said selected calculated generalized difference feature indices being used henceforth; and
save said thresholded selected calculated generalized difference feature indices;
wherein, if both said lag limit and said maximum wavelet order limit have been met, said efficient method of data mining to facilitate ready categorization of a data set dispersed over multiple bands is ended, resulting in an efficient identification of said desired features in said data set.
11. A method that samples all band ratio combinations in hyperspectral data for use with rapid combinatorial computations that integrate wavelet and wavelet-variogram techniques for improved data anomaly filtering, detection and classification of imagery, comprising:
selecting at least one wavelet type for use in said method,

wherein said at least one wavelet type is selected to achieve optimum computational efficiency; and
providing software that displays results in a form that facilitates classification and feature extraction tasks while employing a least-ordered said wavelet that enables select features to be readily identified,

wherein executing said software yields band ratios that provide useful information in support of said classification and feature extraction tasks, and
wherein said method yields select said imagery with specific features highlighted by employing at least one generalized difference feature index (GDFI) band ratio and multiplying said generalized difference feature index (GDFI) band ratio by constants associated with coefficients of said at least one wavelet type, said GDFI band ratio defined by:
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where
GDFI2n(i, t) is a wavelet-based generalized difference feature index,
i refers to band i of a data collector,
t is a lag between bands,
h0, h1. . . h2n\u22121 are high frequency coefficients
g0, g1. . . g2n\u22121 are low frequency coefficients,

wherein, the number of said high and low frequency coefficients is determined upon establishing the order of said wavelet type,
n is the number of vanishing moments of said selected wavelet type, and
zi, zi+t . . . zi+(2n\u22121)t are data used to yield at least one said generalized difference feature index; and

wherein at least one said feature appears in a resultant display as a distinct color or shade lighter than the remainder of said imagery.
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. An amplifier circuit apparatus comprising a first input and a second input for respectively applying a first input signal and a second input signal, the first input being arranged to control a first active device of a first common emitter circuit having a first output, characterised by first circuit means coupled to the first common emitter circuit and the second input so as to enable, when in use, the first common emitter circuit to generate an output signal at the first output, the output signal corresponding to an amplification of a difference between the first input signal and the second input signal by a differential gain.
2. An apparatus as claimed in claim 1, further comprising a second active device of a second common emitter circuit coupled to the second input and having a second output, the first circuit means being arranged to enable, when in use, the first and second common emitter circuits to generate the output signal between the first and second outputs, the output signal corresponding to an amplification of a difference between the first input signal and the second input signal by a differential gain.
3. An apparatus as claimed in claim 1 or claim 2, wherein the first circuit means comprises a third input to control a third active device and a fourth input to control a fourth active device, the first and second inputs being respectively coupled to the third and fourth inputs, and the third and fourth active devices being cross coupled.
4. An apparatus as claimed in claim 1, claim 2 or claim 3, further comprising at least one further circuit means arranged to mirror a predetermined amount of current flowing through the first andor second common emitter circuits so as to provide at least one predetermined function.
5. An apparatus as claimed in claim 4, wherein the predetermined function is the generation of a signal indicative of the output signal for controlling the output signal.
6. An apparatus as claimed in claim 5, wherein the at least one further circuit means comprises second circuit means comprising a fifth active device arranged to generate a first feedback component signal indicative of a first current flowing through the first active device.
7. An apparatus as claimed in claim 6 when dependent upon claim 2, wherein the second circuit means comprises a sixth active device arranged to generate a second feedback component signal indicative of a second current flowing through the second active device.
8. An apparatus as claimed in claim 6, wherein an amplitude of a third current flowing through the fifth active device is less than an amplitude of the first current.
9. An apparatus as claimed in claim 6 or claim 7, wherein an amplitude of a fourth current flowing through the sixth active device is less than an amplitude of the second current.
10. An apparatus as claimed in claim 4, wherein the at least one predetermined function is a prevention of the output signal comprising a current level that exceeds a predetermined current level.
11. An apparatus as claimed in claim 10, wherein the at least one further circuit means comprises third circuit means comprising a seventh active device arranged as a first integrated diode.
12. An apparatus as claimed in claim 11 when dependent upon claim 2, wherein the third circuit means comprises an eighth active device arranged as a second integrated diode.
13. An apparatus as claimed in claim 11 or claim 12, wherein an amplitude of a fifth current flowing through the seventh active device is lower than an amplitude of a first current flowing through the first active device.
14. An apparatus as claimed in claim 12, wherein an amplitude of a sixth current flowing through the seventh active device is lower than an amplitude of the second current.
15. A driver circuit for a laser device comprising the amplifier circuit apparatus as claimed in any one of the preceding claims.
16. An optical communications network comprising the amplifier circuit apparatus as claimed in any one of claims 1 to 14.

1460723541-2569fd0b-1587-415d-8ea6-1f41411c0401

1. An acoustic structure comprising:
a plurality of resonance tubes; and
a plurality of openings formed on side faces of the resonance tubes at prescribed positions; and
at least one adjuster adjusting an opening area of the opening formed on the side faces of the plurality of resonance tubes.
2. The acoustic structure according to claim 1, further comprising:
a plurality of boards supporting the plurality of resonance tubes,
wherein each of the resonance tubes is divided into two tubes which are combined together with open ends positioned opposite to each other, and
wherein the two tubes forming each of the resonance tubes are movable independently in an axial direction along a pair of the boards interposing the resonance tube therebetween, thus adjusting the opening area of the opening of the resonance tube.
3. The acoustic structure according to claim 1, further comprising:
a plurality of adjusters which are independently movable to shield at least part of the plurality of openings formed in the plurality of resonance tubes while the plurality of resonance tubes are mutually moved in the axial direction, thus adjusting the opening area of the openings of the resonance tubes.
4. The acoustic structure according to claim 1, further comprising:
a plurality of boards supporting the plurality of resonance tubes,
wherein each of the boards is divided into two boards which are combined together with distal ends positioned opposite to each other,
wherein the plurality of openings are formed on predetermined side faces of the resonance tubes which are positioned opposite to each other when the plurality of resonance tubes are combined together, and
wherein the two boards are interposed between a pair of resonance tubes and independently movable in an axial direction so as to adjust the opening area of the opening of the pair of resonance tubes.
5. The acoustic structure according to claim 1, further comprising:
a sheet member, corresponding to the at least one adjuster, which is movable along a baffle surface formed by the side faces of the plurality of resonance tubes combined together,
wherein the plurality of openings is exposed on the side faces of the plurality of resonance tubes forming the baffle surface, and
wherein the sheet member is movable along the baffle surface to shield at least part of the plurality of openings exposed on the baffle surface.
6. The acoustic structure according to claim 1, wherein the at least one adjuster adjusts a ratio of the opening area of the openings of the resonance tubes to a sectional area of internal cavities of the resonance tubes.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

What is claimed is:

1. A fuel injector comprising:
a barrel defining a first fluid passage, a second fluid passage and a piston bore including an upper bore and a lower bore;
an intensifier piston including a shoulder and a stepped top;
a first actuation cavity defined by said upper bore, said stepped top and said first fluid passage;
a second actuation cavity defined by said lower bore, said shoulder and said second fluid passage;
said piston being slidably received in said piston bore wherein said shoulder is received in said lower bore and said stepped top is received in said upper bore;
said stepped top having a first surface open to fluid pressure in said first actuation cavity and said shoulder having a second surface open to fluid pressure in said second actuation cavity;
said piston being moveable between a first position and a second position; said stepped top being sealable with said upper bore when said piston moves between said first position and said second position;
a source of actuation fluid;
a drain passage;
a control valve to open and close fluid communication between said first and second fluid passages and said source of actuation fluid and said drain passage.
2. The fuel injector of claim 1 wherein
said first surface defines a first area open to fluid pressure in said first actuation cavity; and
said second surface defines a second area open to fluid pressure in said second actuation cavity;
3. The fuel injector of claim 2 wherein said first area is smaller than said second area.
4. The fuel injector of claim 1 wherein said second surface is annular in shape.
5. The fuel injector of claim 2 wherein said first surface and said second surface are axially aligned.
6. The fuel injector of claim 1 wherein said piston isolates said upper bore from fluid communication from said lower bore.
7. The fuel injector of claim 1 further including a piston return spring.
8. The fuel injector of claim 1 further including a plunger actuated by said piston.
9. The fuel injector of claim 1 wherein said control valve includes a three position spool.
10. The fuel injector of claim 9 wherein said control valve opens said first and second fluid passages to said drain when said control valve is in a first position.
11. The fuel injector of claim 9 wherein said control valve isolates said first fluid passage from said drain and opens fluid communication between said first fluid passage and said source of actuation fluid when said control valve is in a second position.
12. The fuel injector of claim 9 said control valve isolates said first and said second fluid passages from said drain and opens fluid communication between said first and second fluid passages and said source of actuation fluid when said control valve is where in a third position.
13. The fuel injector of claim 1 wherein said control valve includes a solenoid.
14. A method of operating an intensifier piston arrangement, an intensifier piston having a first effective area and a second effective area, the method comprising:
delivering a first fluid flow from a common fluid source to said first area;
moving said intensifier piston a first preselected distance;
delivering a second fluid flow from said common fluid source to said second area;
moving said intensifier piston a second preselected distance;
maintaining said first area in direct fluid isolation from said second area.
15. The method of claim 14 further including sending a first signal and moving a valve from a first position to a second position.
16. The method of claim 15 further including sending a second signal and moving said valve to a third position.
17. The method of claim 16 further including sending a third signal and moving said valve to a first position and draining said fluid flow from said first and second areas.
18. The method of claim 15 further including sending a second signal and moving a second valve from a first position to a second position.
19. A method of operating a intensifier piston system comprising:
delivering a first signal;
moving a valve to a first position in response to said first signal;
allowing fluid flow to a first effective area of an intensifier piston;
delivering a second signal;
moving said valve to a second position in response to said second signal;
allowing a fluid flow to a second effective area of said intensifier piston.
20. The method of claim 19 wherein moving a valve to a first position includes moving a three position spool valve to said first position.
21. The method of claim 19 further including allowing said fluid flow to a stepped top of said intensifier piston.
22. The method of claim 19 further including allowing said fluid flow to a shoulder of said intensifier piston.
23. The method of claim 19 further including maintaining said first effective area in direct fluid isolation from said second effective area.
24. The method of claim 19 further including:
delivering a third signal;
moving said valve to a third position in response to said third signal; and
draining said fluid flow from said first and second effective areas.
25. An intensifier assembly comprising:
a barrel defining a first fluid passage, a second fluid passage and a piston bore including an upper bore and a lower bore;
an intensifier piston including a shoulder and a stepped top;
a first actuation cavity defined by said upper bore, said stepped top and said first fluid passage;
a second actuation cavity defined by said lower bore, said shoulder and said second fluid passage;
said piston being slidably received in said piston bore wherein said shoulder is received in said lower bore and said stepped top is received in said upper bore;
said stepped top having a first surface open to fluid pressure in said first actuation cavity and said shoulder having a second surface open to fluid pressure in said second actuation cavity;
said piston being moveable between a first position and a second position; said stepped top being sealable with said upper bore when said piston moves between said first position and said second position;