Siemens V 4.0 manual Generated files for BS2000/OSD hosts, Runtime option

Models: V 4.0

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Generated files

6.6.3 Generated files for BS2000/OSD hosts

6.6.3.1Development option

The development variant of the command procedure KDCDF generates assembler source files for the following program parts:

GinaRoot

OwnMsgs

The script KDCDF automatically calls a file assembly routine and writes the objects created to an LMS library as the LLM elements GINART and OWNMSGS. The LMS library has the name TP_application_name.LIB. From there they must be linked to the T-ORB applica- tion. A different library name to the TP application name can be selected via a call param- eter of the KDCDF script.

The name of the Resource Manager manufacturer from the RMXA statement is incorpo-

rated into the GinaRoot source. If this statement is modified,

GinaRoot must be regen-

erated and the application must be linked once more.

❍ ❍ ●

6.6.3.2Runtime option

gina.config

A file GINA.CONFIG.TP_application_name is generated for each T-ORB application

(TA_APPLICATION) and static T-ORB/client application (APPLICATION). It acts as a direc- tory for addressable applications. Among other things, the file also contains intervals for an application-specific timer and for controlling events.

Configuration data for the transaction monitor

If the kdcdf script was created with the runtime option config -r, it generates a file KDCA and possibly other elements of KDCFILE. This data is configuration data for openUTM. The kdcdf script must be called in the directory where the KDCA file will reside when the appli- cation is running. MAX statements in the configuration description can be used to influence which files other than KDCA are generated [27].

KDCA must also exist as a DMS file under BS2000/OSD. To avoid naming conflicts, the file name is prefixed with the string GINA and the TP application name from the configuration description, i.e. GINA.TP_application_name.KDCA.

If the file KDCA already exists when kdcf is called, it is backed up under the name old/KDCA (UNIX) or old\KDCA (WindowsNT) or

OLD.GINA.TP_application_name.KDCA (BS2000/OSD).

GINA V4.0 System Administrator Guide – September 2000

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Siemens V 4.0 manual Generated files for BS2000/OSD hosts, Runtime option

V 4.0 specifications

Siemens V 4.0 is an advanced digital platform designed to enhance operational efficiency and streamline processes in various industries. It embodies the principles of Industry 4.0, leveraging cutting-edge technologies to create a more connected, intelligent, and automated manufacturing environment. This platform integrates data-driven insights and advanced analytics to facilitate informed decision-making and improve productivity.

One of the main features of Siemens V 4.0 is its ability to provide end-to-end visibility across the manufacturing value chain. By connecting machines, production lines, and supply chains through the Internet of Things (IoT), Siemens V 4.0 enables real-time monitoring and control. This connectivity allows companies to identify bottlenecks, reduce downtime, and enhance overall operational performance.

Another key technology embedded in Siemens V 4.0 is artificial intelligence (AI). AI algorithms analyze vast amounts of data generated throughout the production process, enabling predictive maintenance and optimizing production schedules. By anticipating equipment failures and streamlining operations, businesses can achieve significant cost savings and minimize disruptions.

Siemens V 4.0 also emphasizes the importance of automation and robotics. By integrating robotic process automation (RPA) into manufacturing workflows, companies can achieve higher levels of efficiency while reducing human error. This automation not only speeds up production times but also allows workers to focus on more complex tasks that require human ingenuity.

Additionally, Siemens V 4.0 supports advanced simulation and digital twin technology. Through the creation of virtual models of physical assets, manufacturers can simulate different scenarios, identify risks, and optimize design processes before implementation. This capability accelerates innovation while minimizing waste and resource consumption.

Another important characteristic of Siemens V 4.0 is its scalability. The platform can be tailored to meet the unique needs of various industries, from automotive to pharmaceuticals. This flexibility ensures that companies of all sizes can leverage its capabilities, driving global competitiveness.

In conclusion, Siemens V 4.0 is revolutionizing the manufacturing landscape through its comprehensive suite of features, including IoT connectivity, AI-driven insights, automation, and digital twin technology. By adopting this platform, businesses can transition toward more efficient and sustainable operations, ultimately preparing them for the future of industrial production.