1460728827-fc3d39ed-63da-47d1-bf31-610997e9b228

1. A medication administration system, comprising:
a first medical device and a second medical device which are ingested within a living body, and a unit external to the living body which is disposed outside the living body, wherein
a) the first medical device comprises:
a marking device which makes markings on body tissue of the living body; and
an acquisition device which acquires in-vivo information while establishing a correspondence with the positions of the markings;

b) the second medical device comprises:
a drug retention section which retains a drug for administration within the living body;
a release device which releases the drug retained in the drug retention section;
a detection device which detects the markings made by the marking device;
a second medical device transmission device which transmits information regarding the markings which have been detected by the detection device towards the unit external to the living body;
a second medical device reception device which receives a control signal for causing the release device to operate; and
a release control device which causes the release device to operate, when the control signal has been received by the second medical device reception device; and

c) the unit external to the living body comprises:
a reception device external to the living body which receives the information regarding the markings which has been transmitted from the second medical device transmission device;
a medication determination device which determines whether or not to administer medication for a site which is indicated in the in-vivo information based upon the in-vivo information which has been acquired by the acquisition device;
a specification device which specifies a marking which indicates a site to administer medication from among the markings which have been made within the living body based on the determination by the medication determination device;
a decision device for deciding whether or not a marking which has been detected by the detection device is the marking which has been specified by the specification device based on the information regarding the markings which have been received by the reception device external to the living body; and

a transmission device external to the living body which transmits the control signal towards the second medical device reception device, when the decision device has decided that the marking which has been detected by the detection device is the marking which has been specified by the specification device.
2. A medication administration system according to claim 1, wherein:
the first medical device further comprises a first medical device transmission device which transmits the in-vivo information which has been acquired by the acquisition device toward the unit external to the living body;
the reception device external to the living body receives the in-vivo information which has been transmitted by the first medical device transmission device; and
the medication determination device determines whether or not to administer medication for the site which is indicated in the in-vivo information based on the in-vivo information which has been received by the reception device external to the living body.
3. A medication administration system according to claim 1, wherein:
the first medical device further comprises a first memory which establishes the in-vivo information which has been acquired by the acquisition device; and
the medication determination device determines whether or not to administer medication for the site which is indicated in the in-vivo information based on the in-vivo information established in the first memory.
4. A medication administration system according to claim 1, wherein each of the first and second medical devices is formed in a capsule-shape.
5. A medication administration system according to claim 1, wherein
the decision device comprises a counter for counting the number of the marking detections by the detection device, every time the detection device detects each of the markings which have been made within the living body, further wherein
the decision device decides that the marking which is detected by the detection device is the specified marking, when the number of the marking arrives a specified number.
6. A medication administration system according to claim 1, wherein the marking device comprises a liquid chemical release device which releases a liquid chemical within the living body.
7. A medication administration system according to claim 1, wherein the acquisition device comprises an observation device, the observation device has an imaging device which forms an image of the interior of the living body and an illumination device which illuminates the interior of the living body.
8. A medication administration system according to claim 1, wherein the acquisition device comprises a blood sensor which detects hemorrhage within the living body.
9. A medication administration system, comprising a first medical device and a second medical device which are ingested within a living body, wherein
a) the first medical device comprises:
a marking device which makes markings on a body tissue of the living body;
an acquisition device which acquires in-vivo information while establishing a correspondence with the positions of the markings;
a medication determination device which determines whether or not to perform medication for a site which is indicated in the in-vivo information based on the in-vivo information which has been acquired by the acquisition device; and
a specification device which specifies a marking which indicates a site to perform medication from among the markings which have been made within the living body based upon the determination by the medication determination device;

b) the second medical device comprises:
a drug retention section which retains a drug for administration within the living body;
a release device which releases the drug retained in the drug retention section;
a detection device which detects the markings made by the marking device;
a second memory which establishes information regarding the marking which has been specified by the specification device;
a decision device decides whether or not a marking which has been detected by the detection device is the marking which has been specified by the specification device based on the information regarding the marking established in the second memory; and

a release control device which causes the release device to operate, when the decision device has decided that the marking which has been detected by the detection device is the marking which has been specified by the specification 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.

1. A method of servo writing a disk of a disk drive, the disk drive comprising the disk and a head actuated over the disk, the head comprising a read element and a write element, the method comprising:
positioning the read element over a first track on the disk and the write element over a second track on the disk;
synchronizing a phase locked loop (PLL) to first sectors previously written on the first track;
writing second sectors to the second track using the PLL, and saving a plurality of phase errors corresponding to the second sectors;
computing a correction value corresponding to a selected one of the second sectors, wherein the correction value is computed in response to a plurality of the phase errors generated for a plurality of the second sectors leading the selected sector;
positioning the read element over the second track on the disk and the write element over a third track on the disk;
synchronizing the PLL to the second sectors using the correction value; and
writing a third sector to the third track using the PLL, and saving a phase error corresponding to the third sector.
2. The method as recited in claim 1, wherein the correction value is at least partially computed according to:
\u03b1\u25a1e(t+m)
where \u03b1 is a constant and e(t+m) is the phase error generated for one of the second sectors leading the selected sector by m sectors.
3. The method as recited in claim 1, wherein the correction value is at least partially computed according to:
\u03b10\u25a1e(t)+\u03b11\u25a1e(t+1)+ . . . \u03b1N\u25a1e(t+N)
where \u03b1-\u03b1N are a plurality of constants and e(t+m) is the phase error generated for one of the second sectors leading the selected sector by m sectors.
4. The method as recited in claim 3, wherein the constants \u03b1-\u03b1N are selected to stabilize the PLL while attenuating phase error propagation from track-to-track.
5. A disk drive comprising:
(a) a disk;
(b) a head actuated over the disk, wherein the head comprises a read element and a write element; and
(c) control circuitry operable to servo write the disk by:
positioning the read element over a first track on the disk and positioning the write element over a second track on the disk;
synchronizing a phase locked loop (PLL) to first sectors previously written on the first track;
writing second sectors to the second track using the PLL, and saving a plurality of phase errors corresponding to the second sectors;
computing a correction value corresponding to a selected one of the second sectors, wherein the correction value is computed in response to a plurality of the phase errors generated for a plurality of the second sectors leading the selected sector;
positioning the read element over the second track on the disk and the write element over a third track on the disk;
synchronizing the PLL to the second sectors using the correction value; and
writing a third sector to the third track using the PLL, and saving a phase error corresponding to the third sector.
6. The disk drive as recited in claim 5, wherein the correction value is at least partially computed according to:
\u03b1\u25a1e(t+m)
where \u03b1 is a constant and e(t+m) is the phase error generated for one of the second sectors leading the selected sector by m sectors.
7. The disk drive as recited in claim 5, wherein the correction value is at least partially computed according to:
\u03b10\u25a1e(t)+\u03b11\u25a1e(t+1)+ . . . \u03b1N\u25a1e(t+N)
where \u03b1-\u03b1N are a plurality of constants and e(t+m) is the phase error generated for one of the second sectors leading the selected sector by m sectors.
8. The disk drive as recited in claim 7, wherein the constants \u03b1-\u03b1N are selected to stabilize the PLL while attenuating phase error propagation from track-to-track.
9. Control circuitry for use in a disk drive, the disk drive comprising a disk and a head actuated over the disk, wherein the head comprises a read element and a write element, the control circuitry operable to servo write the disk by:
positioning the read element over a first track on the disk and positioning the write element over a second track on the disk;
synchronizing a phase locked loop (PLL) to first sectors previously written on the first track;
writing second sectors to the second track using the PLL, and saving a plurality of phase errors corresponding to the second sectors;
computing a correction value corresponding to a selected one of the second sectors, wherein the correction value is computed in response to a plurality of the phase errors generated for a plurality of the second sectors leading the selected sector;
positioning the read element over the second track on the disk and the write element over a third track on the disk;
synchronizing the PLL to the second sectors using the correction value; and
writing a third sector to the third track using the PLL, and saving a phase error corresponding to the third sector.
10. The control circuitry as recited in claim 9, wherein the correction value is at least partially computed according to:
\u03b1\u25a1e(t+m)
where \u03b1 is a constant and e(t+m) is the phase error generated for one of the second sectors leading the selected sector by m sectors.
11. The control circuitry as recited in claim 9, wherein the correction value is at least partially computed according to:
\u03b10\u25a1e(t)+\u03b11\u25a1e(t+1)+ . . . \u03b1N\u25a1e(t+N)
where \u03b1-\u03b1N are a plurality of constants and e(t+m) is the phase error generated for one of the second sectors leading the selected sector by m sectors.
12. The control circuitry as recited in claim 11, wherein the constants \u03b1-\u03b1N are selected to stabilize the PLL while attenuating phase error propagation from track-to-track.

1460728820-0e05f6d0-91dd-4713-8f1b-82a9706c27b2

What is claimed is:

1. A particle size distribution measuring apparatus comprising:
a storage medium storing validation data for validating the performance of a particle size distribution measuring apparatus, and
a control unit for providing validation help function which successively reads a validation procedure from the validation data and successively carries out control of the particle size distribution measuring apparatus according to a measuring procedure requiring no operation by an operator in the validation procedure while providing instruction to the operator for providing a work procedure requiring an operation by the operator.
2. The particle size distribution measuring apparatus according to claim 1, and wherein the control unit includes a warning function of pointing out the operator’s mistake in the work procedure to the operator, and teaching a validation work according to a correct work procedure.
3. The particle size distribution measuring apparatus according to claim 1, wherein the control unit includes a speech output section for outputting an instruction to the operator by an audio signal.
4. The particle size distribution measuring apparatus according to claim 1, wherein the control unit has a monitor screen for displaying an instruction to the operator.
5. The particle size distribution measuring apparatus according to claim 1, further including an automatic charger for successively charging a standard sample used for the validation work in the particle size distribution measuring apparatus.
6. The particle size distribution measuring apparatus according to claim 1, wherein the control unit includes a judgment function of comparing an inspection result obtained from the validation work with a performance standard of the particle size distribution measuring apparatus, and making a judgment whether the comparative result is within a predetermined performance standard range.
7. The particle size distribution measuring apparatus according to either of claim 1, wherein the control unit includes a recording function of recording the inspection result obtained by the validation work.
8. In an improved particle size distribution measuring apparatus having a measuring section for receiving a sample, a source of light for irradiating the sample and sensors for measuring the light after irradiating the sample, the improvement comprising:
a validation unit for determining the accuracy of measurements when a predetermined standard is irradiated in the measuring section; and
an instructing unit for providing instruction to an operator as the validation unit performs the measurements of the predetermined standard.
9. The particle size distribution measuring apparatus of claim 8 further including an automatic sample standard unit for inserting the predetermined standard into the measuring section.
10. The particle size distribution measuring apparatus of claim 8 further including a speaker wherein the instructions are generated as audible speech to the operator.

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 process for controlling an electronic power component comprising a piloting process for piloting an opening and a closing of the electronic power component, said piloting process having a plurality of steps for controlling an application of a succession of different commutation voltages on a control electrode of the electronic power component between an instant when said piloting process begins and an instant when either the opening and the closing of the electronic power component should be completed, wherein passage from one commutation voltage to a successive commutation voltage in said piloting process is effected automatically as soon as a corresponding condition of passage is satisfied, said piloting process including the steps of:
reading a value of at least one operational parameter characteristic of a reaction of the electronic power component in response to a commutation voltage,
verifying, based on the values read, whether the reaction of the electronic power component to the commutation voltage is produced within a predetermined time for the commutation voltage,
if the reaction of the electronic power component is produced within the predetermined time for the commutation voltage, allowing said piloting process to continue to a successive commutation voltage, and
if the reaction of the electronic power component is not produced within the predetermined time for the commutation voltage, interrupting said piloting process and triggering off a process for safeguarding the integrity of the electronic power component.
2. The process of claim 1, wherein at least one condition of passage from the commutation voltage to the successive commutation voltage in said piloting process is a function of the value read for said at least one operational parameter, and verifying whether the reaction of the electronic power component to the commutation voltage is produced within the predetermined time for the commutation voltage includes verifying that said at least one condition of passage is satisfied before said predetermined time for the commutation voltage has elapsed.
3. The process of claim 2, wherein said piloting process further includes the step of verifying that every condition of passage between each commutation voltage of said succession of different commutation voltages of said piloting process is satisfied before a predetermined time common to every condition of passage has elapsed.
4. The process of claim 3, wherein said predetermined time common to every condition of passage is counted from the instant when said piloting process begins and is representative of a maximum time to effect commutation of the electronic power component.
5. The process of claim 1, wherein said at least one operational parameter is a voltage between a collector electrode and an emitter electrode of the electronic power component.
6. The process of claim 1, wherein said at least one operational parameter is a voltage on the control electrode of the electronic power component.
7. The process of claim 1, wherein said piloting process further includes the step of controlling an application on the control electrode of a braking voltage adapted to brake commutation of the electronic power component.
8. The process of claim 7, wherein said braking voltage has a value that is strictly included between values of voltages for maintaining the electronic power component in a closed state and in an open state.
9. The process of claim 7, wherein said piloting process is a process for piloting the closure of the electronic power component, and wherein a condition of passage between the step of controlling the application of said braking voltage and a following step is satisfied if a voltage between a collector electrode and an emitter electrode of the electronic power component is less than a first predetermined threshold.
10. The process of claim 9, wherein said piloting process begins with the step of controlling the application of said braking voltage.
11. The process of claim 7, wherein said piloting process is a process for piloting the opening of the electronic power component, and wherein a condition of passage between a preceding step and the step of controlling the application of said braking voltage is satisfied if a voltage between a collector electrode and an emitter electrode of the electronic power component is higher than a second predetermined threshold.
12. The process of claim 11, wherein said second predetermined threshold has a value that corresponds to half of a voltage to be commuted.
13. The process of claim 11, wherein the preceding step before the step of controlling the application of said braking voltage is a step for controlling an application of a voltage having a value lower than a value of said braking voltage.
14. The process of claim 11, wherein a condition of passage between the step of controlling the application of said braking voltage and a following step is satisfied if the voltage between the collector electrode and the emitter electrode of the electronic power component attains a maximum.
15. A system for controlling an electronic power component, said system is adapted to execute a piloting process for piloting an opening and a closing of the electronic power component, said piloting process having a plurality of steps for controlling an application of a succession of different commutation voltages on a control electrode of the electronic power component between an instant when said piloting process begins and an instant when either the opening and the closing of the electronic power component should be completed, wherein passage from one commutation voltage to a successive commutation voltage in said piloting process is automatically effected as soon as a corresponding condition of passage is satisfied, said system comprising:
a computer connecting to a piloting unit for supplying the succession of different commutation voltages to the electronic power component,
means for reading a value of at least one operational parameter characteristic of a reaction of the electronic power component in response to a commutation voltage and for inputting the value to said computer,
wherein said computer includes means for verifying based on the input of the value to the computer, whether the reaction of the electronic power component to the commutation voltage is produced within a predetermined time for the commutation voltage,
and if the reaction of the electronic power component is produced within the predetermined time for the commutation voltage, then permitting said piloting process to continue to a successive commutation voltage, and
if the reaction of the electronic power component is not produced within the predetermined time for the commutation voltage, then interrupting said piloting unit to and trigger off a process for safeguarding an integrity of the electronic power component.
16. The system of claim 15, wherein at least one condition of passage from one commutation voltage of said piloting process to a successive commutation voltage is a function of the values read for said at least one operational parameter, and wherein said computer further includes means for verifying that said at least one condition of passage is satisfied before the predetermined time for the commutation voltage has elapsed to verify whether the reaction of the electronic power component to the commutation voltage is produced within the predetermined time for the commutation voltage.
17. The system of claim 16, wherein said computer further includes means for verifying that every condition of passage between each commutation voltage of said succession of different commutation voltages of said piloting process is satisfied before a predetermined time common to every condition of passage has elapsed.
18. The system of claim 15, further comprising a data recording support having instructions adapted to be executed by the computer to execute said piloting process.