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This is going to cover one way of configuring an SSL passthrough using HAProxy.  This guide is intended to be a reference document, and administrators looking to configure an SSL passthrough should make sure the end solution meets both their company's business and security needs.   Why use SSL Passthrough instead of SSL Termination? The main reason for ThingWorx would be if a company requires encrypted communication internally, as well as externally.  With SSL Termination, the request between the load balancer and the client is encrypted.  But the load balancer takes on the role to decrypt and passes that back to the server.  With SSL Passthrough, the request goes through the load balancer as is, and the decryption happens on the ThingWorx Application server.   What you will need to continue with this guide:   HAProxy installed A working ThingWorx application server (Guide to getting one setup can be found here) Tomcat configured for ssl NOTE : Always contact your Security team and make sure you have a certificate that meets your business policy For this tutorial, I created a self-signed certificate following along with the below guide.  If you have already obtained a valid certificate, then you can just skip over the step of creating it, and follow along with the Tomcat portion https://www.ptc.com/en/support/article?n=CS193947 Once configured, restart Tomcat and verify it is working by navigating to https://<yourServer>:<port>/Thingworx   With ThingWorx running as SSL and HAProxy installed, we just need to make sure the HAProxy configuration is setup to allow SSL traffic through.  We use 'mode tcp' to accomplish this.   On your HAProxy machine, open /etc/haproxy/haproxy.cfg for editing.  While most of this can be customized to fit your business needs, some variation of the highlighted portions below need to be included in your final configuration:   global         log /dev/log    local0         log /dev/log    local1 notice         chroot /var/lib/haproxy         stats socket /run/haproxy/admin.sock mode 660 level admin         stats timeout 30s         user haproxy         group haproxy         daemon           # Default SSL material locations         ca-base /etc/ssl/certs         crt-base /etc/ssl/private           # Default ciphers to use on SSL-enabled listening sockets.         # For more information, see ciphers(1SSL). This list is from:         #  https://hynek.me/articles/hardening-your-web-servers-ssl-ciphers/         # An alternative list with additional directives can be obtained from         #  https://mozilla.github.io/server-side-tls/ssl-config-generator/?server=haproxy         ssl-default-bind-ciphers ECDH+AESGCM:DH+AESGCM:ECDH+AES256:DH+AES256:ECDH+AES128:DH+AES:RSA+AESGCM:RSA+AES:!aNULL:!MD5:!DSS         ssl-default-bind-options no-sslv3   defaults         log global          option tcplog          mode tcp          option http-server-close          timeout connect 1s          timeout client  20s          timeout server  20s          timeout client-fin 20s          timeout tunnel 1h          errorfile 400 /etc/haproxy/errors/400.http          errorfile 403 /etc/haproxy/errors/403.http          errorfile 408 /etc/haproxy/errors/408.http          errorfile 500 /etc/haproxy/errors/500.http          errorfile 502 /etc/haproxy/errors/502.http          errorfile 503 /etc/haproxy/errors/503.http          errorfile 504 /etc/haproxy/errors/504.http         frontend https          bind *:443          mode tcp          default_backend bk_app           backend bk_app          mode tcp          server TWXAPP01  <twxapp01IP>:<port>         In this example, the user would connect to https://<loadbalancer>/Thingworx and the load balancer would forward the requests to https://<twxapp01IP>:<port>/Thingworx   That’s it!   A couple of side notes:   The load balancer port the clients connect to does not need to be the same as the ThingWorx port the load balancer will forward to If working in a Highly Available configuration, each ThingWorx Application server needs to have its own certificate configured If HAProxy seems unstable, try updating to the latest release If it is on the latest release according to the Unix repository, check https://www.haproxy.org/ and see if there is a later stable release.  There have been some issues where Ubuntu's latest update in the repository is actually a few years old
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One of the interesting features of ThingWorx Analytics Manager is its ability to run distributed models created in Excel (and more of course).  Most people having been tasked with understanding data have built models in Excel and have sometimes built quite complex models (or even applications) with it.   The ability to tie these models to real data coming from various systems connected through ThingWorx and operationalise their execution is a really simple way for people to leverage their existing work and I.P. on a connected analytics journey.   To demonstrate this power and ease of implementation, I created a sample data set with historical data, traffic profile, and a simple anomaly detection model to execute with Analytics Manager.  (files are attached)   The online help center was quite helpful in explaining the process of Creating the Excel Workbook, however I got stuck at the XML mapping stage.  The Analytics and Excel documentation both neglect to mention one important detail -- you must be using the Windows version of Excel in order to get the XML Source functionality (and I use Mac).  Once using Windows, it was easy to do - here is a video of the XML mapping part of the process (for the inputs and results).   
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Hello everyone,   Following a recent  experience, I felt it was important to share my insights with you. The core of this article is to demonstrate how you can format a Flux request in ThingWorx and post it to InfluxDB, with the aim of reporting the need for performance in calculations to InfluxDB. The following context is renewable energy. This article is not about Kepware neither about connecting to InfluxDB. As a prerequisite, you may like to read this article: Using Influx to store Value Stream properties from... - PTC Community     Introduction   The following InfluxDB usage has been developed for an electricity energy provider.   Technical Context Kepware is used as a source of data. A simulation for Wind assets based on excel file is configured, delivering data in realtime. SQL Database also gather the same data than the simulation in Kepware. It is used to load historical data into InfluxDB, addressing cases of temporary data loss. Once back online, SQL help to records the lost data in InfluxDB and computes the KPIs. InfluxDB is used to store data overtime as well as calculated KPIs. Invoicing third party system is simulated to get electricity price according time of the day.   Orchestration of InfluxDB operations with ThingWorx ThingWorx v9.4.4 Set the numeric property to log Maintain control over execution logic Format Flux request with dynamic inputs to send to Influx DB  InfluxDB Cloud v2 Store logged property Enable quick data read Execute calculation Note: Free InfluxDB version is slower in write and read, and only 30 days data retention max.     ThingWorx model and services   ThingWorx context Due to the fact relevant numeric properties are logged overtime, new KPIs are calculated based on the logged data. In the following example, each Wind asset triggered each minute a calculation to get the monetary gain based on current power produced and current electricity price. The request is formated in ThingWorx, pushed and executed in InfluxDB. Thus, ThingWorx server memory is not used for this calculation.   Services breakdown CalculateMonetaryKPIs Entry point service to calculate monetary KPIs. Use the two following services: Trigger the FormatFlux service then inject it in Post service. Inputs: No input Output: NOTHING FormatFlux _CalculateMonetaryKPI Format the request in Flux format for monetary KPI calculation. Respect the Flux synthax used by InfluxDB. Inputs: bucketName (STRING) thingName (STRING) Output: TEXT PostTextToInflux Generic service to post the request to InfluxDB, whatever the request is Inputs: FluxQuery (TEXT) influxToken (STRING) influxUrl (STRING) influxOrgName (STRING) influxBucket (STRING) thingName (STRING) Output: INFOTABLE   Highlights - CalculateMonetaryKPIs Find in attachments the full script in "CalculateMonetaryKPIs script.docx". Url, token, organization and bucket are configured in the Persitence Provider used by the ValueStream. We dynamically get it from the ValueStream attached to this thing. From here, we can reuse it to set the inputs of two other services using “MyConfig”.   Highlights - FormatFlux_CalculateMonetaryKPI Find in attachments the full script in "FormatFlux_CalculateMonetaryKPI script.docx". The major part of this script is a text, in Flux synthax, where we inject dynamic values. The service get the last values of ElectricityPrice, Power and Capacity to calculate ImmediateMonetaryGain, PotentialMaxMonetaryGain and PotentialMonetaryLoss.   Flux logic might not be easy for beginners, so let's break down the intermediate variables created on the fly in the Flux request. Let’s take the example of the existing data in the bucket (with only two minutes of values): _time _measurement _field _value 2024-07-03T14:00:00Z WindAsset1 ElectricityPrice 0.12 2024-07-03T14:00:00Z WindAsset1 Power 100 2024-07-03T14:00:00Z WindAsset1 Capacity 150 2024-07-03T15:00:00Z WindAsset1 ElectricityPrice 0.15 2024-07-03T15:00:00Z WindAsset1 Power 120 2024-07-03T15:00:00Z WindAsset1 Capacity 160   The request articulates with the following steps: Get source value Get last price, store it in priceData _time ElectricityPrice 2024-07-03T15:00:00Z 0,15 Get last power, store it in powerData _time Power 2024-07-03T15:00:00Z 120 Get last capacity, store it in capacityData _time Capacity 2024-07-03T15:00:00Z 160 Join the three tables *Data on the same time. Last values of price, power and capacity maybe not set at the same time, so final joinedData may be empty. _time ElectricityPrice Power Capacity 2024-07-03T14:00:00Z 0,15 120 160 Perform calculations gainData store the result: ElectricityPrice * Power _time _measurement _field _value 2024-07-03T15:00:00Z WindAsset1 ImmediateMonetaryGain 18 maxGainData store the result: ElectricityPrice * Capacity lossData store the result: ElectricityPrice * (Capacity – Power) Add the result to original bucket   Highlights - PostTextToInflux Find in attachments the full script in "PostTextToInflux script.docx". Pretty straightforward script, the idea is to have a generic script to post a request. The header is quite original with the vnd.flux content type Url needs to be formatted according InfluxDB API     Well done!   Thanks to these steps, calculated values are stored in InfluxDB. Other services can be created to retrieve relevant InfluxDB data and visualize it in a mashup.     Last comment It was the first time I was in touch with Flux script, so I wasn't comfortable, and I am still far to be proficient. After spending more than a week browsing through InfluxDB documentation and running multiple tests, I achieved limited success but nothing substantial for a final outcome. As a last resort, I turned to ChatGPT. Through a few interactions, I quickly obtained convincing results. Within a day, I had a satisfactory outcome, which I fine-tuned for relevant use.   Here is two examples of two consecutive ChatGPT prompts and answers. It might need to be fine-tuned after first answer.   Right after, I asked to convert it to a ThingWorx script format:   In this last picture, the script won’t work. The fluxQuery is not well formatted for TWX. Please, refer to the provided script "FormatFlux_CalculateMonetaryKPI script.docx" to see how to format the Flux query and insert variables inside. Despite mistakes, ChatGPT still mainly provides relevant code structure for beginners in Flux and is an undeniable boost for writing code.  
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Learn how to use the DBConnection building block to create your own DB tables in ThingWorx.
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Video Author:                     Asia Garrouj Original Post Date:            March 31, 2017 Applicable Releases:        ThingWorx Analytics 7.4 to 8.1   Description: This video is the second part of a two part video series walking thru the configuration of Analysis Event which is applied for Real-Time Scoring.  This second video will walk you thru the configuration of Analysis Event for Real Time Scoring and validating that a predictions job has been executed based on new input data.    
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Video Author:                     Polina Osipvoa Original Post Date:            June 10, 2016 Applicable Releases:        ThingWorx   Description: This is a video tutorial on creating a Media Entity, and importing and displaying an image.      
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Video Author:                     Polina Osipova Original Post Date:            June 10, 2016   Description: This is a video tutorial on configuring properties for a Thing, and using "Manage Bindings" to bind properties to a Thing.      
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Video Author:                     Polina Osipova Original Post Date:            June 10, 2016   Description: This is a video tutorial on adding State Formatting in a Mashup using State Definitions.      
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Original Post Date:     June 6, 2016 Description: This tutorial video will walk you through the installation process for the PostgreSQL-based version of the ThingWorx Platform in a Windows environment.  All required software components will be covered in this video.    
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Video Author:                     Stefan Taka Original Post Date:            June 6, 2016   Description: This tutorial video will walk you through the installation process for the Neo4j based version of the ThingWorx Platform in a Windows environment.  All required software components will be covered in this video.      
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Video Author:                     Christophe Morfin Original Post Date:            October 2, 2017 Applicable Releases:        ThingWorx Analytics 8.1   Description:​ In this video we will walk thru the installation steps of ThingWorx Analytics Server 8.1.  This covers the Native Linux installation though the steps will be similar for a docker installation on Windows or Linux.    
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Video Author:                     Christophe Morfin Original Post Date:            September 26, 2017 Applicable Releases:        ThingWorx Analytics 8.0 & 8.1   Description:​ This video shows the commands to execute to deploy the training and results microservices as docker container.  This is based on Docker Toolbox to highlight the specific settings required on Toolbox.    
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Video Author:                     Christophe Morfin                Original Post Date:            June 14, 2017 Applicable Releases:        ThingWorx Analytics 8.0 & 8.1   Description: In this video we show: How to deploy the microservices via jar files How to setup ThingWorx to use these microservices for anomaly detection    
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Video Author:                     Asia Garrouj Original Post Date:            June 13, 2017 Applicable Releases:        ThingWorx Analytics 8.0   Description: This video is the third of a 3 part series walking you through how to setup ThingWatcher for Anomaly Detection. In this second video you will learn how to use the the Anomaly Mashup to visualize data received from a remote device.    
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Video Author:                     Asia Garrouj Original Post Date:            June 13, 2017 Applicable Releases:        ThingWorx Analytics 8.0   Description: This video is the second of a 3 part series walking you through how to setup ThingWatcher for Anomaly Detection. In this second video you will learn how to use the "Discover UI" from the NextGen Composer to bind simulated data coming thru KEPServer for Anomaly Detection.    
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Video Author:                      Asia Garrouj Original Post Date:            June 13, 2017 Applicable Releases:        ThingWorx Analytics 8.0   Description: This video is the first of a 3 part series walking you through how to setup ThingWatcher for Anomaly Detection. In this first video you will learn the basics of how to establish connectivity between KEPServer and the ThingWorx Platform.    
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Video Author:                     Christophe Morfin Original Post Date:            June 2, 2017 Applicable Releases:        ThingWorx Analytics 7.4 to 8.1   Description: In this video we show a simple mashup and services in order to display the ThingPredictor's real time scoring results.  
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Video Author:                     Mohammed Amine Chehaibi Original Post Date:            April 25, 2017 Applicable Releases:        ThingWorx Analytics 52.x to 8.0   Description: In this video, you will learn how to: Execute a “Signals” Job Retrieve the results of the “Signals” Job Execute a “Training Model” Job Retrieve the results of the “Training Model” Job    
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Video Author:                     Christophe Morfin Original Post Date:            March 31, 2017 Applicable Releases:        ThingWorx Analytics 7.4 to 8.1   Description: This video walks you through the use of Analysis Replay to execute analysis events on historical data.    
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