1460918395-6dd18e7b-b3f9-4ff7-82fd-652d332edfed

1. A method, comprising:
establishing a first logical copy of a data group in a source storage at a first point-in-time, wherein the first logical copy maintains data to reconstruct the data group as of the first point-in time after the data group has been updated following the first-point-in time, wherein the first logical copy further indicates updates to the data group after the first point in time;
copying the data group from the source storage to the target storage;
indicating regions of the data group updated at the storage after establishing the first logical copy in a change list;
applying the updates in the change list to the data group at the source storage to provide the data group at the target storage as of a second point in time;
establishing a second logical copy of the data group in the source storage at the second point-in-time, wherein the second logical copy maintains data to reconstruct the data group as of the second point-in-time after the data group has been updated following the second point-in-time, wherein the second logical copy further indicates updates to the data group after the second point-in-time; and
establishing a third logical copy of the data group in the target storage at the second point-in-time, wherein the third logical copy maintains data to reconstruct the data group at the target storage as of the second point-in-time after the data group has been updated following the second point-in time, wherein the third logical copy further indicates updates to the data group at the target storage after the second point-in-time.
2. The method of claim 1, wherein the data group at the target storage mirrors the source storage data group as of the second point-in-time.
3. The method of claim 2, wherein a backup program invokes a logical copy program to establish the first and second logical copies of the data group at the source storage, and wherein the backup program records updates to the data group to indicate the regions of the data group that have been updated and to save the indicated regions in the change list, and wherein the backup program transfers the updates indicated in the change list to the target storage.
4. The method of claim 2, wherein the logical copies on the source and target storages are established by a source and target snapshot copy programs, wherein the source and target snapshot programs are from different vendors and use different implementations of snapshot technology to establish the logical copies.
5. The method of claim 1, further comprising:
receiving an update to the data group in the source storage after the first point-in-time;
determining whether the data to update in the source storage has been updated subsequent to the second point-in-time;
copying the data to update to the second logical copy in response to determining that the data to update has not been updated subsequent to the second point-in-time;
applying the received update to the data group in the source storage in response to copying the data to update; and
applying the received update to the data group in the source storage in response to determining that the data to update has been updated subsequent to the second point in time.
6. The method of claim 1, further comprising:
establishing an additional logical copy of the data group in the source storage at an additional point-in-time following a previous point-in-time at which a previous logical copy of the data group at the source storage was made;
indicating regions of the data group updated at the storage after establishing the additional logical copy; and
saving the indicated regions of the data group updated between the previous and additional point-in-time to an additional change list.
7. The method of claim 1, further comprising:
using a logical copy on one of the source storage or target storage as of a selected point-in-time to recover the data group as of the selected point-in-time.
8. The method of claim 3, wherein the backup program invokes the logical copy program to establish the third logical copy of the data group at the target storage.
9. The method of claim 1, further comprising:
processing a request to recover the data group as of the second point-in-time;
determining whether the data group can be recovered from a logical copy on the source storage;
recovering the data group as of the second point-in-time from the second logical copy and the data group on the source storage in response to determining that the data group can be recovered from the logical copy on the source storage; and
recovering the data group as of the second point-in-time from the third logical copy and the data group on the target storage in response to determining that the data group cannot be recovered from the logical copy on the source storage.

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 suppressing de-passivation aging of microelectronic circuits having dielectricsemiconductor interfaces, the method comprising: providing said microelectronic circuits of said dielectricsemiconductor interfaces, which dangling bonds present in said dielectricsemiconductor interfaces and in which said dangling bonds have been passivated by chemically combining said dangling bonds with hydrogen species during fabrication process of said microelectronic circuits to form a semiconductor-hydrogen species bonds, wherein said interface being subsequently subjected to the aging processes of electrical stress andor radiation causing said semiconductor-hydrogen species bonds to be broken and thereby causing said hydrogen species to diffuse away from said interface via said interstitial channels of said dielectric; filling said interstitial channels of said dielectric with a small atomic diameter inert gas, and thereby suppressing said de-passivation aging by confining said hydrogen species at said interfaces by said filling of said interstitial channels with said small atomic diameter inert gas.
2. The method of claim 1, wherein said small atomic diameter inert gas is selected from a group consisting of He, Ne, or Ar.
3. The method of claim 1, wherein said filling said interstitial channels of said dielectric with said small atomic diameter inter gas further comprises a step of adding a diffusion barrier to said dielectric to encapsulate said inert gas filled dielectric to thereby minimize the out diffusion of said inert gas from said dielectric.
4. The method of claim 1, wherein said small atomic diameter inert gas is introduced into said interstitial channels of said dielectric during said fabrication process by ion implantation of said small atomic diameter inert gas to a depth such that the implanted gas lies entirely within the thickness of said dielectric.
5. The method of claim 1, wherein said small atomic diameter inert gas is introduced into the interstitial channels of said dielectric by ultrasonic jet injection of said gas into said dielectric.
6. The method of claim 1, wherein said small atomic diameter inert gas is introduced into the interstitial channels of said dielectric by exposing said dielectric to said inert gas at a pressure of from 2 to 2000 atmospheres after said fabrication process.