1460725775-b641f501-ec87-439f-a3cc-2b1d086b4846

1-44. (canceled)
45. A method comprising:
receiving, from a remote device, market data about a plurality of financial instruments, in which the plurality of financial instruments comprises at least two different kinds of financial instruments;
generating, via a processor, hidden information, based on the market data, in which the hidden information is viewable only after scrolling a cursor over a graphical element, in which the processor and the remote device are in communication over a network;
generating, via the processor, based on the market data, a first graphical element that is embedded with the hidden information, in which the first graphical element comprises a first type;
displaying, via the processor, the first graphical element on a display;
receiving, via the processor, an indication that the cursor has scrolled over the first graphical element; and
displaying, via the processor, in response to the indication, the hidden information that is embedded in the first graphical element on the display.
46. The method of claim 45, in which the first type of the first graphical element is a multi-dimensional object that comprises a plurality of steps, in which each step represents a financial instrument.
47. The method of claim 45 further comprising:
generating, based on the market data, a second graphical element that is embedded with the hidden information, in which the second graphical element comprises a second type that differs from the first type; and
displaying the second graphical element on the display.
48. The method of claim 47, in which the second type of the second graphical element is a multi-dimensional object that comprises a plurality of slabs, in which each slab represents a financial instrument.
49. The method of claim 45, in which the hidden information comprises at least one of:
an instrument type;
a bid price;
a yield; and
a volume.
50. The method of claim 45, in which the act of displaying the hidden information further comprises:
causing a box to appear on the display, in which the box contains the hidden information.
51. The method of claim 45, in which the act of displaying the hidden information further comprises:
causing a pop-up window to appear on the display, in which the pop-window contains the hidden information.
52. The method of claim 45, in which the act of displaying the hidden information further comprises:
causing a scroll bar to appear on the display, in which the scroll bar contains the hidden information.
53. The method of claim 45, in which the act of displaying the hidden information further comprises:
causing an audio file to be downloaded, in which the audio file provides the hidden information in a sound format.
54. The method of claim 45, in which the hidden information appears on the display for a pre-determined period of time.
55. The method of claim 54, in which the hidden information automatically disappears from the display after the pre-determined period of time has expired.
56. The method of claim 45 further comprising:
receiving an indication to re-hide the hidden information;
causing, in response to the indication to re-hide, the hidden information to disappear from the display.
57. An apparatus comprising:
a processor; and
a memory, in which the memory stores instructions which, when executed by the processor, direct the processor to perform the method of claim 45.
58. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 46.
59. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 47.
60. The apparatus of claim 59, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 48.
61. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 49.
62. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 50.
63. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 51.
64. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 52.
65. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 53.
66. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 54.
67. The apparatus of claim 66, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 55.
68. The apparatus of claim 57, in which the memory further stores instructions which, when executed by the processor, direct the processor to perform the method of claim 56.

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 optoelectronic device, comprising:
a thin film transistor (TFT) array disposed on a first surface of a flexible substrate;
a photodiode layer disposed on the TFT array;
a plurality of data lines and scan lines connected to the TFT array and disposed on the first surface of the flexible substrate;
an electronics signal module assembly disposed on a second surface of the flexible substrate opposite the TFT array; and
an interconnect passed through a through via disposed near an edge portion of the flexible substrate, away from the TFT array, and connecting the data lines and scan lines to the electronics signal module assembly.
2. The device of claim 1, wherein the electronics signal module assembly comprises data scan module assembly and scan module assembly.
3. The device of claim 1, wherein the TFT array comprises a plurality of transistors and each transitor of the TFT array is connected to the electronics signal module assembly.
4. The device of claim 1, wherein the photodiode layer comprises a plurality of photodiodes.
5. The device of claim 1, wherein the TFT array is electrically connected to the photodiode layer.
6. The device of claim 1, wherein the plurality of data lines comprises greater than about 100 data lines.
7. The device of claim 1, wherein the plurality of scan lines comprises greater than about 100 scan lines.
8-9. (canceled)
10. The device of claim 1, further comprising a scintillator material disposed on the photodiode layer.
11. The device of claim 10, wherein the flexible substrate, scintillator, TFT array, photodiode layer, plurality of data lines, and plurality of scan lines are disposed inside a casing.
12. The device of claim 11, wherein the electronics signal module assembly is disposed inside the casing.
13. The device of claim 11, wherein the flexible substrate is a shock resilient substrate and a clearance between the casing and the shock resilient flexible substrate is less than about 0.5 mm.
14. A portable X-ray detector of claim 1.

1460725767-43c25d9b-0965-417d-aa46-6d255d302b61

What is claimed is:

1. A non-server type voice packet communication method, which comprises:
an IP address inquiring step, which transmits an IP address inquiring signal to a non-server type voice packet communication device using dial tones;
an IP address receiving step, which receives an IP address data transmitted from the non-server type voice packet communication device using the dial tones; and
a voice packet transmitting step, which transmits at least one voice packet to the non-server type voice packet communication device according to the IP address data.
2. The method of claim 1, further comprising:
a telephone number receiving step, which receives a telephone number from a first telephone; wherein the IP address inquiring step transmits the IP address inquiring signal to the non-server type voice packet communication device according to the telephone number.
3. The method of claim 1, further comprising:
an IP address recording step, which records the IP address data in an IP address record table that stores the correspondence relations between the IP address data and a telephone number.
4. The method of claim 3, further comprising:
a correspondence record inquiring step, which checks whether the correspondence relation for the IP address data and the telephone number already exists in the IP address record table and transmits to voice packet according to the IP address data stored in the IP address record table when the relation exists.
5. The method of claim 1, further comprising:
a checking step, which checks whether the voice packet is successfully sent to the non-server type voice packet communication device.
6. The method of claim 5, wherein the IP address inquiring step is performed when the voice packet cannot be successfully sent to the non-server type voice packet communication device.
7. The method of claim 1, wherein the non-server type voice packet communication device couples to an NAT (Network Address Translator); and the non-server type voice packet communication device receives the voice packet transmitted in the voice packet-transmitting step.
8. The method of claim 7, further comprising:
transmitting a self-address inquiring packet from the non-server type voice packet communication device to the NAT; and
receiving the IP address data transmitted from the NAT according to the self-address inquiring packet to the non-server type voice packet communication device.
9. The method of claim 8, wherein the self-address inquiring packet is transmitted to an IP address analyzer through the NAT, and the IP address analyzer sends the IP address data in the header of the self-address inquiring packet back to the non-server type voice packet communication device.
10. The method of claim 7, wherein the IP address data include the IP address and the port used by the non-server type voice packet communication device on the NAT.
11. A non-server type voice packet communication device, which comprises:
an IP address inquiring module, which transmits an IP address inquiring signal to a second non-server type voice packet communication device using dial tones;
an IP address receiving module, which receives an IP address data transmitted from the second non-server type voice packet communication device using the dial tones; and
a voice packet transmitting module, which transmits at least one voice packet to the second non-server type voice packet communication device according to the IP address data.
12. The device of claim 11, further comprising:
a telephone number receiving module, which receives a telephone number from a first telephone; wherein the IP address inquiring module transmits the IP address inquiring signal to the non-server type voice packet communication device according to the telephone number.
13. The device of claim 11, further comprising:
an IP address recording module, which records the received IP address data in an IP address record table that stores the correspondence relations between the IP address data and a telephone number.
14. The device of claim 11, further comprising:
a correspondence record inquiring module, which checks whether the correspondence relation for the IP address data and the telephone number already exists in the IP address record table and transmits to voice packet according to the IP address data stored in the IP address record table when the relation exists.
15. The device of claim 14, further comprising:
a checking module, which checks whether the voice packet is successfully sent to the non-server type voice packet communication device.
16. The device of claim 11, wherein the second non-server type voice packet communication device couples to an NAT (Network Address Translator); and the second non-server type voice packet communication device receives the voice packet through the NAT.
17. The device of claim 16, further comprising:
a self-address inquiring module, which transmits a self-address inquiring packet to the NAT.
18. The device of claim 17, wherein the self-address inquiring packet is transmitted to an IP address analyzer through the NAT, and the IP address analyzer sends the IP address data in the header of the self-address inquiring packet back to the non-server type voice packet communication device.
19. The device of claim 16, wherein the IP address data include the IP address and the port used by the non-server type voice packet communication device on the NAT.
20. The device of claim 19, wherein the IP address data further includes the IP address of the non-server type voice packet communication device.

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 method for facilitating a delivery of a desired molecule into a target tissue comprising the steps of:
introducing a molecule into a target tissue comprising a cell; and
applying a substantially continuous low-level electric field to the target tissue for a duration sufficient to effect a change in porosity of the cell of the target tissue sufficient to facilitate entry of a desired molecule into an interior of the cell.
2. The method recited in claim 1, wherein a duration of the applying step comprises a duration in a range of 0.1 seconds to 20 minutes.
3. The method recited in claim 2, wherein the duration is in a range of 100 ms to 100 sec.
4. The method recited in claim 1, wherein the low-level electric field has a field strength comprising 200 Vcm or less.
5. The method recited in claim 1, wherein the applying step comprises applying the low-level electric field in a series of electric pulses.
6. The method recited in claim 1, wherein the electric field comprises a pulse selected from a group of waveforms consisting of square, rectangular, exponentially decaying, exponentially increasing, bipolar, and sinusoidal; waveforms having a nongeometrically characterizable shape; waveforms characterizable by a mathematical function; waveforms characterizable by a mathematical approximation; waveforms with at least one of an AC or a DC offset signal; and waveforms without an AC or a DC offset signal.
7. The method recited in claim 6, wherein the electric field comprises a pulse comprising a combination of at least two of the pulses selected from the group of waveforms.
8. The method recited in claim 1, wherein the introducing step comprises the step selected from a group consisting of syringe injection, jet injection, oral dosing, transdermal delivery, infusion into tissue, and infusion into a blood vessel.
9. The method recited in claim 1, further comprising the step, prior to the introducing step, of constructing a plasmid comprising DNA and a cDNA insert that codes for a desired molecule, and wherein the introducing step comprises introducing the plasmid into the target tissue.
10. The method recited in claim 1, wherein the target tissue is selected from a group consisting of skin, tumor, muscle, blood, blood vessel, brain, lymph, liver, pancreas, bone, colon, cardiac, lung, breast, testes, cornea, prostate, and intestine.
11. A system for facilitating a delivery of a desired molecule into a target tissue comprising:
means for introducing a molecule into a target tissue comprising a cell; and
means for applying a substantially continuous low-level electric field to the target tissue for a duration sufficient to effect a change in porosity the cell of the target tissue sufficient to facilitate an entry of a desired molecule into an interior of the cell.
12. The system recited in claim 11, wherein the applying means comprises an applicator adapted to deliver a field having a duration in a range of 0.1 seconds to 20 minutes.
13. The system recited in claim 12, wherein the duration is in a range of 100 ms to 100 sec.
14. The system recited in claim 11, wherein the low-level electric field has a field strength comprising 200 Vcm or less.
15. The system recited in claim 11, wherein the applying means comprises means for applying the low-level electric field in a series of electric pulses.
16. The system recited in claim 11, wherein the electric field comprises a pulse selected from a group consisting of square, rectangular, exponentially decaying, exponentially increasing, bipolar, and sinusoidal; waveforms having a nongeometrically characterizable shape; waveforms characterizable by a mathematical function; waveforms characterizable by a mathematical approximation; waveforms with at least one of an AC or a DC offset signal; and waveforms without an AC or a DC offset signal.
17. The system recited in claim 16, wherein the electric field comprises a pulse comprising a combination of at least two of the pulses selected from the group of waveforms.
18. The system recited in claim 11, wherein the introducing means comprises an introducer selected from a group consisting of a syringe, a jet injector, an oral dose, means for effecting transdermal delivery, means for infusion into tissue, and means for infusion into a blood vessel.
19. The system recited in claim 11, further comprising means for constructing a plasmid comprising DNA and a cDNA insert that codes for a desired molecule.
20. The system recited in claim 11, wherein the target tissue is selected from a group consisting of skin, tumor, muscle, blood, blood vessel, brain, lymph, liver, pancreas, bone, colon, cardiac, lung, breast, testes, cornea, prostate, colon, and intestine.