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dido:public:ra:1.2_views:3_taxonomic:4_data_tax:05_lifecycle:start [2022/03/20 22:59]
char ToDo checked: New Section -- review
dido:public:ra:1.2_views:3_taxonomic:4_data_tax:05_lifecycle:start [2022/05/27 19:51] (current)
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 The **Data Lifecycle** covers the stages a particular piece of data transitions through from its initial generation or capture to its eventual archival and/or deletion at the end of its useful life. [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​data_management]] is the coordination and administration of all data associated with a project, program or effort. Data Management includes the metadata as well as the individual pieces of data as it progresses through the Data Lifecycle. Data management follows a [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​data_strategy]],​ which includes the required business rules, especially those captured in any governing Legal Documents such as the Charter, By-Laws, and policy and Procedures. Figure {{ref>​dataLifecycle}} reflects the major stages in the Data Lifecycle: The **Data Lifecycle** covers the stages a particular piece of data transitions through from its initial generation or capture to its eventual archival and/or deletion at the end of its useful life. [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​data_management]] is the coordination and administration of all data associated with a project, program or effort. Data Management includes the metadata as well as the individual pieces of data as it progresses through the Data Lifecycle. Data management follows a [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​data_strategy]],​ which includes the required business rules, especially those captured in any governing Legal Documents such as the Charter, By-Laws, and policy and Procedures. Figure {{ref>​dataLifecycle}} reflects the major stages in the Data Lifecycle:
  
-  - **Create** - The data is created, captured, copied from other sources+  - **Create** - The data is created, captured, ​and copied from other sources
   - **Store** - The data is stored into a [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​datastore]] (i.e., [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​database]],​ [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​dom | Document]], Files, etc.)   - **Store** - The data is stored into a [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​datastore]] (i.e., [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​database]],​ [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​dom | Document]], Files, etc.)
   - **Use** - The Data is actually used, accessed and referenced by an ongoing business process. Often a  [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​data_management_platform]] is a non-datastore specific way to access data.   - **Use** - The Data is actually used, accessed and referenced by an ongoing business process. Often a  [[dido:​public:​ra:​xapend:​xapend.a_glossary:​d:​data_management_platform]] is a non-datastore specific way to access data.
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 [[https://​whatis.techtarget.com/​definition/​data-life-cycle]] [[https://​whatis.techtarget.com/​definition/​data-life-cycle]]
 )) defines only six stages for the Data Lifecycle: )) defines only six stages for the Data Lifecycle:
-  - **Generation** or **capture**:​ In this phase, data comes into an organization,​ usually through data entry, acquisition from an external source or signal reception, such as transmitted sensor data. +  - **Generation** or **capture**:​ In this phase, data comes into an organization,​ usually through data entry, acquisition from an external sourceor signal reception, such as transmitted sensor data. 
-  - **Maintenance**:​ In this phase, data is processed prior to its use. The data may be subjected to processes such as integration,​ scrubbing and extract-transform-load (ETL).+  - **Maintenance**:​ In this phase, data is processed prior to its use. The data may be subjected to processes such as integration,​ scrubbingand extract-transform-load (ETL).
   - **Active use**: In this phase, data is used to support the organization’s objectives and operations.   - **Active use**: In this phase, data is used to support the organization’s objectives and operations.
   - **Publication**:​ In this phase, data isn’t necessarily made available to the broader public but is just sent outside the organization. Publication may or may not be part of the life cycle for a particular unit of data.   - **Publication**:​ In this phase, data isn’t necessarily made available to the broader public but is just sent outside the organization. Publication may or may not be part of the life cycle for a particular unit of data.
-  - **Archiving**:​ In this phase, data is removed from all active production environments. It is no longer processed, used or published but is stored in case it is needed again in the future.+  - **Archiving**:​ In this phase, data is removed from all active production environments. It is no longer processed, usedor published but is stored in case it is needed again in the future.
   - **Purging:​** In this phase, every copy of data is deleted. Typically, this is performed on data that is already archived.   - **Purging:​** In this phase, every copy of data is deleted. Typically, this is performed on data that is already archived.
  
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 [[dido:​public:​ra:​1.2_views:​3_taxonomic:​4_data_tax:​05_lifecycle:​start| Return to Top]] [[dido:​public:​ra:​1.2_views:​3_taxonomic:​4_data_tax:​05_lifecycle:​start| Return to Top]]
  
-The main differences betwen a generic Data Lifecycle and a DIDO Data Lifecycle is that in the idealized DIDO Data Lifecycle the **Destory** and **Archive** stages are non-existent or modified. See Figure {{ref>​didoLidecycle}}. ​+The main differences betwen a generic Data Lifecycle and a DIDO Data Lifecycle is that in the idealized DIDO Data Lifecycle the **Destroy** and **Archive** stages are non-existent or modified. See Figure {{ref>​didoLidecycle}}. ​
  
 <figure didoLidecycle>​ <figure didoLidecycle>​
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 </​figure>​ </​figure>​
  
-However, because the data within a DIDO is theoretically immutable and no data is ever lost, the panacea of "​unlimited"​ data storage is being challeneged. There are different ways that the size of the ledgers can be managed. One way is to have diferent ​kinds of nodes with each node containing differing amounts of data. See section [[dido:​public:​ra:​1.2_views:​3_taxonomic:​3_node_tax:​start]].+However, because the data within a DIDO is theoretically immutable and no data is ever lost, the panacea of "​unlimited"​ data storage is being challenged. There are different ways that the size of the ledgers can be managed. One way is to have different ​kinds of nodes with each node containing differing amounts of data. See section [[dido:​public:​ra:​1.2_views:​3_taxonomic:​3_node_tax:​start]].
  
 <figure nodeTaxonomy>​ <figure nodeTaxonomy>​
dido/public/ra/1.2_views/3_taxonomic/4_data_tax/05_lifecycle/start.1647831586.txt.gz · Last modified: 2022/03/20 22:59 by char