Date: Thu, 28 Mar 2024 09:34:17 +0000 (UTC)
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Subject: Exported From Confluence
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Introduction
This page provides a general description of key services that are likely=
to be required in environments using openEHR solutions.The i=
ntention of defining these interfaces is so that:
- openEHR application developers can safely assume a 'standard' =
API, regardless of which implementation they use (with the usual caveats to=
do with particular unavoidable peculiarities of each type of implementatio=
n technology, i.e. java / .Net / other);
- back-end system implementers know what interfaces they need to expose i=
n order to enable middleware and application developers;
- healthcare enterprises engaged in system procurement can rely on a stan=
dardised middleware 'bus' definition when purchasing, ensuring the environm=
ent they build is always open.
Propo=
sed Development Process
It is expected that the service and API definitions eventually agreed as=
openEHR specifications will be initially inspired by service=
interfaces used in real openEHR implementations, and will ev=
olve as a result of direct community input.
Relationship to published Standards and Specifications
It is a priority within openEHR to ensure that all artefac=
ts without exception are mutually consistent, and this includes services in=
terfaces. Another priority is good design. While respecting these ideals, i=
t is clearly useful and important to a) be able to support services in wide=
use elsewhere, and b) to re-use good design features of previously defined=
standards. Where possible, a de jure standard would be =
re-engineered in the most minimal possible way for use within open=
EHR. Doing this has two effects: it provides a service that is guarant=
eed to work properly within an openEHR environment, and it al=
so provides a definition that can be easily wrapped by a thin layer to prov=
ide compliance to the original standard. Things that would typically change=
across this layer would include data types and other low level details.
So far not much work has been done on evaluating extant standards with r=
espect to openEHR needs, however based on current knowledge, =
it is expected that the following standards would be candidates for re-use =
in openEHR:
- Terminology: HL7/OMG CTS II. This emerging standard do=
es not distinguish between operational environment deployments of terminolo=
gy, where the terminologies are required to be read-only and be high-availa=
bility / QoS, and authoring environments, where creation, modification and =
other authoring functions are required.
- Demographics / identity: IHE PIX, PDQ; HL7/OMG EIS.
- Security: IHE ATNA and others.
- EHR: HL7/OMG RLUS.
The IHE technical specifications can be found here. The IHE approach is to define 'profiles' for specific in=
teraction use cases, and then define messages based on one or more existing=
standards. If and where such profiles were to be used in openEHR, the approach would be to develop a new profile that fits the general =
IHE design intention, where the latter makes sense for openEH=
R. Note that in general, no published standards properly support the idea o=
f knowledge-enabled information, although the HL7/RLUS standard does includ=
e a 'semantic signifier' concept which may be mappable to openEHR archetypes.
Another useful source of architectural concepts can be found in the Micr=
osoft Connected=
Health Framework (CHF) 2nd edition, which describes a service oriented=
health computing framework. Aspects of this are included as candidates in =
various places in these pages.
Service Arch=
itecture
General Structu=
re
There is no single overall service architecture for a given deployment e=
nvironment. Any final deployment is heavily dependent on usage requirements=
, distribution architecture and so on. The general approach to service defi=
nition in e-health tends to reflect two dimensions strongly:
- levels of distribution / federation - enterprise, cross-enterprise, reg=
ional, .....
- levels of business abstraction, from information to business process
These dimensions can be illustrated as follows:
Operation=
al Environment
We can distinguish among a number of broad environment types in which se=
rvices could be deployed. The first is the 'operational health information =
environment', in which all services are oriented toward management of healt=
h information (health records and related) within a typical clinical enviro=
nment. The following diagram depicts a set of openEHR-related=
services for such an environment. These are clearly a subset of all possib=
le services that might be found within a realistic HIS environment. The ser=
vices are in three categories, plus a middleware API that provides access f=
or an application. The service groups are:
- EHR & demographics services: services providing co=
re health information;
- infrastructure services: connections to key parts of t=
he computing infrastrructure, including security and identity;
- knowledge services: shown on the right hand side - the=
se services are for deploying terminology, archetypes, t=
emplates and other knowledge artefacts within the runtime environment (cf k=
nowledge services within an authoring environment, which are designed to en=
able authors to modify the knowledge assets).
=
span>
=
Knowledge engineering environment
Within knowledge authoring environments, the concerns are different, and=
accordingly, the services reflect this. The following diagram shows some o=
f the services relevant to openEHR in such an environment.
Within this environment, we distinguish the service types:
- Publisher Knowledge Manager Service: a service for man=
aging openEHR knowledge artefacts, including archetypes, temp=
lates, terminology ref-sets, and queries.
- Terminology authoring service: a service oriented to s=
upporting the many functions required to build and maintain a terminology, =
such as SNOMED CT, ICDx, LOINC, ICPC and others.
Other environm=
ents
Other environments for which specific services are likely to be required=
include clinical study and reporting, and other secondary use situations; =
ICU and other specialist acute care environments and so on.
Virtual EHR =
API (vEHR)
The 'virtual EHR' is a service layer designed for application use - it i=
s the primary way an application connects to back-end services. It abstract=
s away specific locations and other details of service deployment, and make=
s use of other services to perform various requests on behalf of an applica=
tion.
Key function groups within this service include:
- Session management: obtaining a secure session;
- Data Creation and update: functions to allow the creat=
ion and modification of health records, Compositions within health records;=
- Data Retrieval: functions related to retrieval of exis=
ting data
- by trait / index
- query
- population query.
The following figure shows the difference between the application / vEHR=
interaction, and vEHR / EHR interaction.
=
p>
Demographi=
c Resolution
One of the functions of the vEHR middleware is to enable demographic and=
EHR information to be seamlessly be brought together, typically via the us=
ed of the EHR/subject x-ref service, as shown in the following figure:
Specifications
This page contains the emerging&nbs=
p;openEHR specifications for the vEHR. They are based on work done=
by commercial and non-commercial implementers.
EHR Service
The openEHR EHR service is a true back-end service via whi=
ch patient EHRs can be stored, retrieved and queried. It has a coarse-grain=
ed data access interface, consisting of functions like commit_contribution(=
), get_composition() and so on. An openEHR service supports v=
ersioning, and can be thought of as being like an intelligent versioned EHR=
form of a typical version management repository such as Subversion, GIT et=
c.
Demographic S=
ervice
This openEHR service provides access to versioned demograp=
hic data based on the openEHR demographic model. This service=
can be deployed in at least two ways. The first is where there is an exist=
ing Master Patient Index (MPI) or other similar demographics service, and t=
he openEHR demographics service acts as a facade whose data a=
re created by importation from the MPI.In this mode, the key service functi=
ons are to do with batch-loading data, retrieval and querying.
The second mode is standalone, where the service functions for data crea=
tion and modification are also required.
The function of this service is similar to the EHR service, except that =
its data is demographic rather than EHRs.
In some environments, this service will not be required, since =
openEHR EHRs can carry direct references to demographic entities via t=
he PARTY_PROXY.external_ref attribute.
EHR / Subject Cross-reference Service
This service provides a mapping from EHR identifiers (openEHR e=
hr_id) to one or more subject identifiers. It can be used to avoid any subj=
ect identifiers appearing in EHRs managed in the EHR service, as well as to=
manage correlations across identification systems.
Audit Log Servic=
e
This service provides a way to persist an indelible, non-repudiable log =
of all read and write accesses to EHR and demographic information.
Distribut=
ed EHR Location
In a distributed environment where EHRs for a given person might exist i=
n multiple EHR services, or in one of a number of servers. The EHR/subject =
X-ref service can be used to register location information, enabling applic=
ations using the vEHR layer to obtain patient records regardless of where t=
hey exist. This could be used to support clustering environments (in other =
words, as a scalability solution), and also federated environments (a distr=
ibuted deployment). The following figure illustrates this use of the X-ref =
service.
=
span>
Ope=
rational Knowledge Services
Enter=
prise Knowledge Service
This service provides access to openEHR templates and arch=
etypes, in operational and potentially in source form. These artefacts are =
available in identified releases, enabling controlled access to specific re=
leases of archetypes and templates.
Terminology S=
ervice
The terminology service deployed in the enterprise is concerned with pro=
viding high-availability access to terminologies and terminology ref-sets. =
Terminologies include the large terminologies such as SNOMED CT, ICDx, ICPC=
, LOINC, as well as local institutional terminologies. Terminology ref-sets=
can be built against any terminology. The versions both of any terminology=
and any ref-set can be specified, with the default being the latest.
Integration =
Services
Infrastru=
cture Services
Identity Service=
This service interfaces with the environment's user identification facil=
ities, allowing applications to find out about users.
Security Service=
This service provides a standard way for openEHR applicati=
ons to interact with various security services, in order for applications t=
o authenticate and gain authorisation for various kinds of access.
Knowledge Authoring & Publishing Services
Knowledg=
e Manager Service
Terminology=
Service
EN ISO 12967 (Health Informatics- Service Architecture)
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