'Long Leif' siblings go indoors as Detroit Lakes troll artist stages first museum exhibit 



ISHØJ, Denmark (AP) — For more than a decade, Danish recycling artist Thomas Dambo has scattered wooden troll sculptures around the world. He has created almost 200 in 19 countries.

Now the poet and former hip-hop artist is bringing a collection of fairy tale-inspired creations in from the cold for his first museum exhibit.

“The Garbage Man,” at the Arken Museum of Contemporary Art on the outskirts of Copenhagen, tells the story of a group of mischievous trolls who secretly move into the museum, take it over and redesign it.

“They build and leave a giant human made of trash … as a lesson for the humans to behave better and don’t put their trash where everybody else lives,” Dambo said at his studio near the Danish capital.

The 46-year-old artist started spreading his trolls back in 2014, when he built two sculptures for a Danish music festival.

Danish recycling artist Thomas Dambo poses for a photograph in his new exhibit
Danish recycling artist Thomas Dambo poses for a photograph in his new exhibit "The Garbage Man" at Arken Museum of Contemporary Art in Ishoj, Denmark, May 14.
James Brooks | AP

Two years later, he hid six giant trolls in wooded areas around Copenhagen. The project went viral, drawing millions of viewers online.

“I was like, if I tell a story that combines them all, then when I’ve done this (for) 10 years, I will probably have made over 100 sculptures and … I have made the world into my stage,” he said.

Twelve years on, Dambo has made almost 200. The artist and his team build about 25 new trolls annually. “Long Leif,” the tallest at 13 meters (43 feet) high, stands in Detroit Lakes, Minnesota.

Usually, Dambo’s work is as much treasure hunt as exhibit. His fairy-tale creations are tucked away in forests, mountains, jungles and grasslands around the world, discoverable using an online “Troll Map.”

a tall wooden sculpture of a troll
At 36 feet tall, Long Leif is the largest of the nearly 140 troll sculptures Thomas Dambo has built around the world. He was debuted to a select few on June 6, 2024 in a wooded area near Detroit Lakes.
Dan Gunderson | MPR News 2024

There is “Little Lisa” hidden in a German forest, and “Happy Kim” lounging in a South Korean botanical garden.

Children clamber and adults gasp as they find the trolls. Dambo estimates about 5 million people visit his works annually.

“The sculptures bring people out to experience things that they would otherwise have been too lazy or maybe not creative enough to go and visit,” he said. “My trolls, they bring people to all these small, little corners of the world.”

Each of Dambo’s trolls has a unique name and design. In the Arken exhibit, which opens Sunday and will be on show until Nov. 29, his new works are based on friends he had when growing up.

They have “personalities of a late teenage, young 20s type of group of boys that are causing havoc, and the type of gang that would break into a museum and fill it up with trash,” Dambo said.

a wooden troll head
The head of a wooden troll built by Danish artist Thomas Dambo.
Dan Gunderson | MPR News

Trolls often appear in Scandinavian folklore, but Dambo said he chose to work with the mythical creatures as a vehicle to convey messages on waste and recycling.

The recycling artist’s sculptures are made almost entirely from waste and discarded materials, such as wooden pallets, old furniture and whisky barrels.

He said a museum exhibit means he can experiment with materials that wouldn’t survive outdoors, including discarded electronics, cardboard and clothes, lots of them.

In one corner, a troll named “Dyna Dee” dozes on a 6-meter (nearly 20-foot) mound of discarded clothing from a local recycling organization.

Dambo hopes museum visitors will leave with an urge to buy less.

“It’s not really about recycling, it’s about you probably have enough clothes in your cabinet to wear for the rest of your life,” he said. “This is not my recycling project, this is my stop buying stuff project.”



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Looker Data Actions – Table of Content

What is Looker?

Looker is an enterprise for BI- Business Intelligence tool, embedded analytics, and a data application platform. Looker became a part of google cloud in 2020, and from then, Looker provides users to create and share insightful visualisations of the data. It is a web-based or on-premise tool. It collects, visualises, and analyses data, but starting with Looker requires heavy effort as we have to format and model data in a particular way with LookML; it can not process data and create reports independently. Google cloud’s & Looker data analytics platform will provide options to deliver value with robust and new insights.

What are Looker Data Actions?

Looker actions is a data activation tool that analyses data in real-time, and data activation is a method to turn insights into actions. With Looker API calls, users can perform tasks in other tools, and LookML triggers an API call in a particular field. Data activation is generally done by picking up clean and modifying data from the data house and sending it back to business teams like marketing or sales.

Looker actions mainly focus on sending data back to business users, and they get real-time data and act accordingly. Looker tools support work within other tools too. Tools like slack, updating values, warning team members in tools, sending emails, and automating them are the popular ones that are used.

Why Data Actions?

Looker data actions helps in achieving the following things for an ease.They are:

  • One can easily update salesforce records form a single page.
  • You can easily manage the support tickets.
  • You can easily tag an dpritoize the github issues.
  • You can easily monitor the adword spend.
  • Enable the trigger tailored emails on command.

Looker takes an advanced approach to analytics, making it simple to build dependable data applications that enable any user to explore, analyze, and comprehend the data they require.

Data Actions, which are based on our extensive APIs, allow users to perform tasks across nearly any other application from a single Looker interface. Stop forcing your team to switch between tabs and tools to complete routine tasks.

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Looker Data Actions:

Using Looker’s standard tools, you can move through your workflow quickly. Looker Actions enables us to create and act on your data. From interacting with your users to revamping records in any of the application domains you use, you can do it all.

Here is the list of looker data actions. They are:

Slack:

Notify your team of changes in activity directly from Slack.By directly injecting data into conversations, you can directly answer important questions.Custom commands that query Looker directly through Slack can be distributed to the rest of your company.

Segment

Looker email cohorts can be easily managed by sending lists to Marketo, Hubspot, Airship, and other services.With the click of a button, you can activate win-back and upsell campaigns.

Twilio:

Ad-hoc sends allow you to quickly send a text message to any phone number in your database from Looker. It doesn’t matter if you’re sharing your knowledge by sending data or simply creating a custom message on the fly.Schedule text messages – sharing insights with customers is an effective way to build relationships. Schedule data delivery to those who require it the most at your preferred interval. Use the Twilio Action to set up text alerts to easily notify customers when something happens, such as a delay in an order or an outage on their instance.

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Zapier:

With the Tray Action, users will be able to seamlessly integrate Looker queries into their daily workflows. Upload data to a cloud storage solution, distribute reports via an email list for the team, or even send reports to customers. Use this Action for a variety of scenarios with Zapier’s extensive integration list, the sky’s the limit.

Salesforce:

As you progress through the sales cycle, update the contract value of each new deal.

Twilio:

Use Twilio to send promotions, customer satisfaction surveys, and other notifications to customers.

Exavault:

Schedule the SFTP delivery of Looker dashboards, visualizations, or data to ExaVault. Avoid email size restrictions and ensure that your Looker data reaches the people and systems that need to process and analyze it. The following are some examples of use cases for this Action:

  • Sending daily sales and inventory automatically
  • Reports are automatically sent to colleagues and partners.
  • Schedule data collection to ExaVault.

Amazon Sagemaker:

Using machine learning algorithms on Looker data, use Amazon Sagemaker to predict, forecast, or classify data points.This Action allows you to send the results of a Looker query to XGBoost or Linear Learner to train a model for regression or classification, or to perform predictions on the results of a Looker query using a previously trained model. The Action is made up of three parts:

  • Amazon Sagemaker Train: XGBoost – uses the output of a Looker query to train an ML model with the XGBoost algorithm for regression, binary, or multiclass classification.
  • Amazon Sagemaker Train: Linear Learner – uses the output of a Looker query to train an ML model with the Linear Learner algorithm for regression, binary, or multiclass classification.
  • Amazon Sagemaker Infer : operates a batch inference job against the output of a Looker query using an existing Sagemaker ML model for target prediction.

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SendGrid:

  • Ad-hoc sends allow you to quickly send an email from Looker to any email address in your database. Whether it’s sharing your knowledge by sending data or simply creating a custom message on the fly.
  • Schedule emails – sharing insights with customers is an effective way to build relationships. Deliver scheduled data to those who need it the most at the interval you specify.
  • Email alerts – using the SendGrid Action to easily notify customers when something happens, whether it’s a delay in an order or an outage on their instance.

High touch :

Reverse ETL has features lacking in Looker Actions and reduces the barrier between them. High touch is one of the alternatives to Data Actions, and reverse ETL copy’s data from analytics platforms or data warehouses to operational systems of record. Hightouch clears the problem by leveraging Reverse ETL, which transforms data from the data warehouse and synchronises it back to the native tools of businesses like Marketo, amplitude, Hubspot, iterable, salesforce, Google sheets, etc.

With hightouch, users can map attributes like purchases and emails to any field. It saves money and time by synchronising data at specific locations and ensures that no duplicate data is present. In Looker Actions, there is a limit on updating end tools, but in Hightouch, we are free to update any field and can send data in batches, unlike in looker Actions. High touch directly integrates with LookML and Looker, and it benefits companies to connect directly with Looker and view their reports.

Auger.AI:

This Action also reduces the workload of each data scientist because anyone in a company can run and deploy a predictive model with a few clicks. To create an accurate predictive model, use this Action with any labeled dataset, such as:

  • Forecast inventory to better balance supply and demand Predict equipment failures to perform preventative maintenance
  • Estimate headcount and employee turnover, as well as customer churn.
  • Determine the credit risk of customers for loans and financial transactions.

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DataRobot:

This Action also reduces the workload of each data scientist because anyone in an organization can run and deploy a predictive model with a few clicks. Utilize this Action to:

  • Determine which customers are likely to be repeat buyers.
  • Learn what user characteristics make certain account profiles a churn risk.
  • Investigate which factors, such as region and age, lead to higher sales.

Airtable

Looker Airtable Action transfers data from Looker to your Airtable spreadsheets. Using this Action, you can create and update Airtable spreadsheets for a variety of purposes, including:

  • Developing and maintaining lists of customer segments.
  • Every order and its details should be listed on your eCommerce site on a daily basis.
  • Keeping track of any backend infrastructure issues as they arise.
  • Keeping a list of customers who have been affected by high-severity issues.

 What are the problems with Looker Data Actions?

Looker’s premium features created a revolution in Business Intelligence tools and have provided many solutions in BI. Every software has its drawbacks, and Looker is not exceptional, but its advantages make it one of the best tools in BI and have a strong premise.

Large data volumes can not be handled upto the mark by Looker Actions. Data differencing or diffing will not take place in Looker Actions. Diffing is a method used to check if there are any changes in data before sending it to another system or application. Looker’s Data modelling, unique coding language (Look ML), and data matching capabilities are constrained to use. Companies have to duplicate their data into LookML, and companies with native tools or current data models cannot transform their data.

Many companies rely on SQL to modify their data. LookML is partially built on SQL, and users are needed to learn an entirely new language. It is expensive and time-consuming for businesses that are not yet using Looker. There are also some effective and easy tools to transform data ex. DBT, which is fully developed on SQL and automatically updates models. Developers and engineers can quickly transform, orchestrate and model their data.

Developers and engineers can use it to orchestrate, transform, and model their dataLooker Actions lack batching capacity for many destinations. Looker Action will send all the records irrespective of their duplicates. If a massive amount of data is to transform, it may fail because of the rate limit issue.

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Conclusion

In the above blog post all the looker data actions are explained, you can select your interested action to perform  the business operations. Had any doubts, please drop your queries in the comments section, our experts will get back to you shortly.

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