1460729337-979c82ab-7f78-4d8b-b7a0-ba55f558e142

1. A computer-implementable method for remapping child references when parent reference updates are processed, the method comprising:
creating a table that is used to store List Of Value (LOV) reference updates that need to be processed for remapping;
creating triggers to populate the table dynamically as the LOV reference updates occur;
extracting object mapping definitions from a definition repository;
storing extracted object mapping definitions into a control table in memory;
capturing LOV reference updates dynamically as they occur and populating the updates in the table via the triggers;
matching the extracted object mapping definitions with the LOV reference updates; and
remapping child references of parent LOV data using matched object mapping definitions.
2. The method of claim 1, wherein each trigger causes only one LOV reference update to populate the table.
3. The method of claim 1, wherein the LOV updates are processed in a Siebel Enterprise environment.
4. The method of claim 3, wherein remapping child LOV references for modified parent LOV data is based on a specific object configuration of a particular Siebel instance.
5. A system comprising:
a processor;
a data bus coupled to the processor;
a memory coupled to the data bus; and
a computer-usable medium embodying computer program code, the computer program code comprising instructions executable by the processor and configured for:
creating a table that is used to store List Of Value (LOV) reference updates that need to be processed for remapping;
creating triggers to populate the table dynamically as the LOV reference updates occur;
extracting object mapping definitions from a definition repository;
storing extracted object mapping definitions into a control table in memory;
capturing LOV reference updates dynamically as they occur and populating the updates in the table via the triggers;
matching the extracted object mapping definitions with the LOV reference updates; and
remapping child references of parent LOV data using matched object mapping definitions.
6. The system of claim 5, wherein each trigger causes only one LOV reference update to populate the table.
7. The system of claim 5, wherein the LOV updates are processed in a Siebel Enterprise environment.
8. The system of claim 7, wherein remapping child LOV references for modified parent LOV data is based on a specific object configuration of a particular Siebel instance.
9. A computer-usable medium embodying computer program code, the computer program code comprising computer executable instructions configured for:
creating a table that is used to store List Of Value (LOV) reference updates that need to be processed for remapping;
creating triggers to populate the table dynamically as the LOV reference updates occur;
extracting object mapping definitions from a definition repository;
storing extracted object mapping definitions into a control table in memory;
capturing LOV reference updates dynamically as they occur and populating the updates in the table via the triggers;
matching the extracted object mapping definitions with the LOV reference updates; and
remapping child references of parent LOV data using matched object mapping definitions.
10. The computer-useable medium of claim 9, wherein each trigger causes only one LOV reference update to populate the table.
11. The computer-usable medium of claim 9, wherein the LOV updates are processed in a Siebel Enterprise environment.
12. The computer-usable medium of claim 11, wherein remapping child LOV references for modified parent LOV data is based on a specific object configuration of a particular Siebel instance.
13. The computer-useable medium of claim 9, wherein the computer program code is deployed to a client computer from a server at a remote location.
14. The computer-useable medium of claim 9, wherein the computer program code is provided by a service provider to a customer on an on-demand basis.

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 medical probe assembly for delivering energy to a patient’s body, the probe assembly comprising:
an elongate member having a distal region and a proximal region and defining a lumen therebetween;
an energy delivery device associated with said distal region of said elongate member, said energy delivery device comprising a protrusion; and
a temperature sensor associated with said protrusion.
2. The probe assembly of claim 1, further comprising a means of delivering a fluid to, and removing said fluid from, at least a portion of said probe assembly.
3. The probe assembly of claim 2, wherein the means of delivering and removing fluid comprises at least two tubular members disposed within said lumen.
4. The probe assembly of claim 2, wherein said at least two tubular members are located adjacent each other.
5. The probe assembly of claim 2, further comprising at least two flexible tubular members associated with said proximal region of said elongate member, wherein said at least two flexible tubular members are coupled to said at least two tubular members.
6. The probe assembly of claim 1, wherein said temperature sensor is selected from the group consisting of a thermocouple, a thermistor, a thermometer and an optical fluorescent sensor.
7. The probe assembly of claim 5, wherein said temperature sensor is a thermocouple and wherein said protrusion is a component of said thermocouple.
8. The probe assembly of claim 1, further comprising at least one secondary temperature sensor.
9. The probe assembly of claim 7, further comprising at least one thermal insulator for thermally insulating one or more of said temperature sensor and said at least one secondary temperature sensor.
10. The probe assembly of claim 1, further comprising at least one radiopaque marker.
11. The probe assembly of claim 1, further comprising at least one visible marker.
12. The probe assembly of claim 1, further comprising at least one tactile marker.
13. The probe assembly of claim 1, further comprising an active shape control mechanism for directing at least a portion of said distal region of said elongate member as it is advanced through said patient’s body.
14. The probe assembly of claim 2, further comprising a flow impeding structure for restricting circulation of said fluid to said portion of said probe assembly.
15. A medical probe assembly for delivering energy to a patient’s body, the probe assembly comprising:
an elongate member having a distal region and a proximal region and defining a lumen therebetween;
an energy delivery device associated with said distal region of said elongate member, said energy delivery device comprising a protrusion;
a temperature sensor associated with said protrusion; and
at least two tubular members disposed adjacent each other within said lumen for delivering a fluid to, and removing said fluid from, at least a portion of the probe assembly.
16. The probe assembly of claim 15, further comprising at least one marker selected from the group consisting of a radiopaque marker, a visible marker and a tactile marker.
17. A system for delivering energy to a patient’s body, comprising:
an energy source; and
at least two probe assemblies, each probe assembly comprising an elongate member having a distal region and a proximal region and defining a lumen therebetween, an energy delivery device associated with said distal region of said elongate member, said energy delivery device comprising a protrusion, and a temperature sensor associated with said protrusion.
18. The system of claim 17, further comprising:
an apparatus coupled to at least two of the probe assemblies, said apparatus operable to reduce a temperature of the probe assemblies to which it is coupled; and
a controller operable to control an operation of said apparatus with respect to each of said probe assemblies to which it is coupled, wherein the operation of said apparatus for one probe to which said apparatus is coupled is independent of the operation of said apparatus for any other probe to which said apparatus is coupled.
19. A method of treating tissue of a patient’s body, the method comprising:
providing an energy source and first and second probe assemblies, wherein each of the probe assemblies comprises an elongate member having a distal region and a proximal region and defining a lumen therebetween, an energy delivery device associated with said distal region of said elongate member, said energy delivery device comprising a protrusion, and a temperature sensor associated with said protrusion;
inserting said energy delivery devices of said first and second probe assemblies into spaced-apart treatment sites for said tissue;
delivering energy from said energy source to said tissue through said energy delivery devices; and
measuring a temperature using at least one of the temperature sensors.
20. The method of claim 19, further comprising a step of controlling the delivery of energy based on the temperature measured by said at least one of the temperature sensors.