IP Library Patent Application 16812557
Patent Application
App. No. 16/812,557

NODE LEVEL RECOVERY FOR CLUSTERED DATABASES

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Quick Facts
Patent No.
US None
App. No.
16/812,557
Abstract

An example networked computing system for filtered node level recovery comprises a node cluster; a database; and at least one processor to perform operations comprising at least: identifying a failed node among existing nodes in the node cluster; identifying and initiating a replacement node as a new node for the node cluster; accessing at the database a logical backup of the node cluster; retrieving logical backup data of the node cluster and applying a node-level filter to identify specific rows of backup data to be restored to the new node; restoring the specific data rows to the new node; identifying new data written by applications, to the existing nodes of the node cluster, during restoration of the new node; accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and restoring the supplementary data rows to the new node.

Claims (45)

1 . A networked computing system for filtered node level recovery, the system comprising:

a node cluster;

a database;

at least one processor configured by instructions to perform operations comprising at least:

identifying a failed node among existing nodes in the node cluster;

identifying and initiating a replacement node as a new node for the node cluster;

accessing at the database a logical backup of the node cluster;

retrieving logical backup data of the node cluster and applying a node-level filter to identify specific rows of backup data to be restored to the new node;

restoring the specific data rows to the new node;

identifying new data written by applications, to the existing nodes of the node cluster, during restoration of the new node;

accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and

restoring the supplementary data rows to the new node.

2 . The networked computing system of claim 1 , wherein the specific rows of backup data include data associated with the failed node and devoid of data associated with the existing nodes of the node cluster.

3 . The networked computing system of claim 1 , wherein the supplementary backup data is included in an on-demand supplementary logical backup of the node cluster.

4 . The networked computing system of claim 3 , wherein the operations further comprise accessing the supplementary back up data included in the on-demand supplementary logical backup of the node cluster and applying the node level filter to the supplementary backup data to identify the supplementary data rows associated with the new data written by the applications during restoration of the new node.

5 . The networked computing system of claim 1 , wherein the operations further comprise iteratively accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and

iteratively restoring the supplementary data rows to the new node until the new node is synchronized with the existing nodes in the node cluster.

6 . A filtered method of node level recovery at a networked computing system including a node cluster, the method comprising:

identifying a failed node among existing nodes in the node cluster;

identifying and initiating a replacement node as a new node for the node cluster;

accessing at the database a logical backup of the node cluster;

retrieving logical backup data of the node cluster and applying a node-level filter to identify specific rows of backup data to be restored to the new node;

restoring the specific data rows to the new node;

identifying new data written by applications, to the existing nodes of the node cluster, during restoration of the new node;

accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and

restoring the supplementary data rows to the new node.

7 . The method of claim 6 , wherein the specific rows of backup data include data associated with the failed node and devoid of data associated with the existing nodes of the node cluster.

8 . The method of claim 6 , wherein the supplementary backup data is included in an on-demand supplementary logical backup of the node cluster.

9 . The method of claim 8 , wherein the operations further comprise accessing the supplementary back up data included in the on-demand supplementary logical backup of the node cluster and applying the node level filter to the supplementary backup data to identify the supplementary data rows associated with the new data written by the applications during restoration of the new node.

10 . The method of claim 6 , wherein the operations further comprise iteratively accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and

iteratively restoring the supplementary data rows to the new node until the new node is synchronized with the existing nodes in the node cluster.

11 . A non-transitory machine-readable medium including instructions, which when read by a machine, cause the machine to perform operations in a method of node level recovery as a networked computer system including a node cluster, the operations comprising at least:

identifying a failed node among existing nodes in the node cluster;

identifying and initiating a replacement node as a new node for the node cluster;

accessing at the database a logical backup of the node cluster;

retrieving logical backup data of the node cluster and applying a node-level filter to identify specific rows of backup data to be restored to the new node;

restoring the specific data rows to the new node;

identifying new data written by applications, to the existing nodes of the node cluster, during restoration of the new node;

accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and

restoring the supplementary data rows to the new node.

12 . The medium of claim 11 , wherein the specific rows of backup data include data associated with the failed node and devoid of data associated with the existing nodes of the node cluster.

13 . The medium of claim 11 , wherein the supplementary backup data is included in an on-demand supplementary logical backup of the node cluster.

14 . The medium of claim 13 , wherein the operations further comprise accessing the supplementary back up data included in the on-demand supplementary logical backup of the node cluster and applying the node level filter to the supplementary backup data to identify the supplementary data rows associated with the new data written by the applications during restoration of the new node.

15 . The medium of claim 11 , wherein the operations further comprise iteratively accessing supplementary back up data and applying the node-level filter to identify supplementary data rows to be restored to the new node; and

iteratively restoring the supplementary data rows to the new node until the new node is synchronized with the existing nodes in the node cluster.

Assignments (3)
RELEASE OF SECURITY INTEREST IN PATENT COLLATERAL AT REEL/FRAME NO. 60333/0323 Recorded Jun 13, 2025
From: GOLDMAN SACHS BDC, INC., AS COLLATERAL AGENT
To: RUBRIK, INC.
Reel/Frame 071565/0602 →
GRANT OF SECURITY INTEREST IN PATENT RIGHTS Recorded Jun 10, 2022
From: RUBRIK, INC.
To: GOLDMAN SACHS BDC, INC., AS COLLATERAL AGENT
Reel/Frame 060333/0323 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 17, 2020
From: SARKAR, PRASENJIT; THAKUR, TARUN
To: RUBRIK, INC.
Reel/Frame 052141/0495 →