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Stereo master soundtrack
17 octobre 2011, par kent1
Mis à jour : Octobre 2011
Langue : English
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Elephants Dream - Cover of the soundtrack
17 octobre 2011, par kent1
Mis à jour : Octobre 2011
Langue : English
Type : Image
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16 octobre 2011, par kent1
Mis à jour : Juin 2015
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16 octobre 2011, par kent1
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Langue : English
Type : Audio
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16 octobre 2011, par kent1
Mis à jour : Février 2013
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#3 The Safest Place
16 octobre 2011, par kent1
Mis à jour : Février 2013
Langue : English
Type : Audio
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Incrementality Testing : Quick-Start Guide (With Calculations)
26 mars 2024, par ErinHow do you know when a campaign is successful ? When you earn more revenue than last month ?
Maybe.
But how do you know how much of an impact a certain campaign or channel had on your sales ?
With marketing attribution, you can determine credit for each sale.
But if you want a deeper look, you need to understand the incremental impact of each channel and campaign.
The way you do this ?
Incrementality testing.
In this guide, we break down what incrementality is, why it’s important and how to test it so you can double down on the activities driving the most growth.
What is incrementality ?
So, what exactly is incrementality ?
Let’s say you just ran a marketing campaign for a new product. The launch was a success. Breakthrough numbers in your revenue. You used a variety of channels and activities to bring it all together.
So, you launch a plan for next month’s campaign. But you don’t truly know what moved the needle.
Did you just hit new highs because your audience is bigger ? And your brand is greater ?
Or did the recent moves you made make a direct difference ?
This is incrementality.
Incrementality is growth directly attributed to marketing efforts beyond the overall impact of your brand. By measuring and conducting incrementality testing, you can clearly see how much of a difference each activity or channel truly impacted business growth.
What is incrementality testing ?
Incrementality testing allows marketers to gauge the effectiveness of a marketing tactic or strategy. It tells you if a particular marketing activity had a positive, negative or neutral impact on your business.
It also tells you the overall impact it can have on your key performance indicators (KPIs).
The result ?
You can pinpoint the highest-performing moves and incorporate them into your marketing workflows. You also discard marketing strategies with negligible, neutral or even negative impacts.
For example, let’s say you think a B2B LinkedIn ads campaign will help you reach your product launch goals. An incrementality test can tell you if the introduction of this campaign will help you get to the desired outcome.
How incrementality testing works
Before diving into your testing phase, you must clearly identify your KPIs.
Here are the top KPIs you should be tracking on your website :
- Ad impressions
- Website visits
- Leads
- Sales
The exact KPIs will depend on your marketing goals. You’re ready to move forward once you know your key performance indicators.
Here’s how incrementality testing works step-by-step :
1. Define a test and control group
The first step is to define a test group and control group.
- A test group is a segment of your target audience that’s exposed to the marketing campaign.
- A control group is a segment that isn’t.
Keep in mind that both groups have similar demographics and other relevant characteristics.
2. Execute your campaign
The second step is to run the marketing campaign on the test group. This can be a Facebook ad, LinkedIn ad or email marketing campaign.
It all depends on your goals and your primary channels.
3. Measure outcomes
The third step is to measure the campaign’s impact based on your KPIs.
Let’s say a brand wants to see if a certain marketing move increases its leads. The test can tell them the number of email sign-ups with and without the campaign.
4. Compare results
Next, compare the test group results with the control group. The difference in outcomes tells you the impact of that campaign. You can then use this difference to inform your future marketing strategies.
With Matomo, you can easily track results from campaigns — like conversions.
Our platform lets you quickly see what channels are getting the best results so you can gain insights into incrementality and optimise your strategy.
Try Matomo for Free
Get the web insights you need, without compromising data accuracy.
Why it’s important to conduct incrementality tests
The digital marketing industry is constantly changing. Marketers need to stay on their toes to keep up. Incrementality tests help you stay on track.
For example, let’s say you’re selling laptops. You can increase your warranty period to three years to see the impact on sales. An incrementality test will tell you if this move will boost your sales (and by how much).
Now, let’s dive into the reasons why you need to consistently conduct incrementality tests :
Determine the right tactics for success
Identifying the best action to grow your business is a challenge every marketer faces.
The best way to identify marketing tactics is by conducting incrementality testing. These tactics are bound to work since data back them. As a result, you can optimise your marketing budget and maximise your ROIs.
It lets you run multiple tests to identify the most impactful strategy between :
- An email marketing strategy
- A social media strategy
- A PPC ad
For instance, an incrementality test might suggest email marketing will be more cost-effective than an ad campaign. What you can do is :
- Expose the test group to the email marketing campaign and then compare the results with the control group
- Expose the test group to the ad campaign and then compare its results with the control group
Then, you can calculate the difference in results between the two marketing campaigns. This lets you focus on the strategy with a better ROI or ROAS potential.
Accurate data
Marketing data is powerful. But getting accurate data can be challenging. With incrementality testing, you get to know the true impact of a marketing campaign.
Plus, with this testing strategy, you don’t have to waste your marketing budget.
With Matomo, you get 100% accurate data on all website activities.
Unlike Google Analytics, Matomo doesn’t rely on inaccurate data sampling — limiting the amount of data analysed.
Try Matomo for Free
Get the web insights you need, without compromising data accuracy.
Get the most out of your marketing investment
Every business owner wants to maximise their return on investment. The ROI you get mainly depends on the marketing strategy.
For instance, email marketing offers an ROI of about 40:1 with some sources even reporting as high as 72:1.
Incrementality testing helps you make informed investment decisions. With it, you can pinpoint the tactics that are most likely to bring the highest return. You can then focus your resources on them. It also helps you stay away from low-performing strategies.
Increase revenue
It’s safe to say that the goal behind every marketing effort is a revenue boost. The higher your revenue, the more profits you generate. However, for many marketers, it’s an uphill battle.
With incrementality testing, you can boost your revenue by focusing your efforts in the right direction.
Get more traffic
Incrementality testing tells you if a particular strategy can help you drive more traffic. You can use it to get more high-quality leads to your website or landing pages and double down on high-traffic strategies to increase those leads.
How to test incrementality
Developing an implementation plan is crucial to generate accurate insights from an incrementality test. Incrementality testing is like running a science experience. You need to go through several stages. Each stage is important for generating accurate results.
Here’s how you test incrementality :
Define your goals
Get clarity on what you want to achieve with this campaign. Which KPIs do you want to test ? Is it the return on your overall investment (ROI), return on ad spend (ROAS) or something else ?
Segment your audience
Selecting the right audience segment is crucial to getting accurate insights with an incrementality test. Decide the demographics and psychographics of the audience you want to target. Then, divide this audience segment into two sub-parts :
- Test group (people you’ll expose to the marketing campaign)
- Control group (people who won’t be exposed to the campaign)
These groups are a part of the larger segment. This means people in both groups will have similar attributes.
Launch the test at the right time
Before the launch, decide on the length of the test. Ideally, it should be at least one week. Don’t run any other campaigns in this window, as it can interfere with the results.
Analyse the data and take action
Once the campaign is over, measure the results from both groups. Compare the data to identify incremental lift in your selected KPIs.
Let’s say you want to see if this campaign can boost your sales. Check to see if the test group responded differently than the control group. If the sales equal your desired outcome, you have a winning strategy.
Not all incrementality tests result in a positive incremental lift ; Some can be neutral, indicating that the campaign didn’t have any effect. Some can even indicate a negative lift, which means your core group performed better than the test group.
Lastly, take action based on the test findings.
Incrementality test examples
You can use incrementality testing to identify gaps and growth opportunities in your strategy.
Here’s an example :
Let’s say a company runs an incrementality test on a YouTube marketing strategy for sales. The results indicate that the ROI was only $0.10, as the company makes $1.10 for every $1.00 spent. This alarms the marketing department and helps them optimise the campaign for a higher ROI.
Here’s another practical example :
Let’s say a retail business wanted to test the effectiveness of its ad campaign. So, the retailer optimises its ad campaign after conducting an incrementality test on a test and control group. As a result, they experienced a 34% incremental increase in sales.
How to calculate incrementality in marketing
Once you’ve aggregated the data, it’s time to calculate. There are two ways to calculate incrementality :
Incremental profit
The first one is incremental profit. It tells you how much profit you can generate with a strategy (If any). With it, you get the actual value of a marketing campaign.
It’s calculated with the following formula :
Test group profit – control group profit = incremental profit
For example, let’s say you’re exposing a test group to a paid ads campaign. And it generates a profit of $3,000. On the other hand, the control group generated a $2,000 profit.
In this case, your incremental profit will be $1,000 ($3,000 – $2,000).
However, if the paid ads campaign generates a $2,000 profit, the incremental profit would be zero. Essentially, you’re generating the same profit as before, which means the campaign doesn’t work. Similarly, a marketing strategy is no good if it generates lower profits than the control group.
Incremental lift
Incremental lift measures the difference in the conversions you generate with each group.
Here’s the formula :
(Test – Control)/Control x 100 = Lift
So, let’s say the test group and control group generated 2,000 and 1,000 conversions, respectively.
The incremental lift you’ll get from this incrementality test would be :
(2,000 – 1,000)/1,000 x 100 = 100
This turns out to be a 100% incremental lift.
How to track incrementality with Matomo
Incrementality testing lets you use a practical approach to identify the best marketing path for your business.
It helps you develop a hyper-focused approach that gives you access to accurate and practical data.
With these insights, you can confidently move forward to maximise your ROI since it helps you focus on high-performing tactics.
The result is more revenue and profit for your business.
Plus, all you need to do is identify your target audience, divide them into two groups and run your test. Then, the results will be compared to determine if the marketing strategy offers any value.
Conducting incrementality tests may take time and expertise.
But, thanks to Matomo, you can leverage accurate insights for your incrementality tests to ensure you make the right decisions to grow your business.
See for yourself why over 1 million websites choose Matomo. Try it free for 21-days now. No credit card required.
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21 day free trial. No credit card required.
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What is a Cohort Report ? A Beginner’s Guide to Cohort Analysis
3 janvier 2024, par ErinHandling your user data as a single mass of numbers is rarely conducive to figuring out meaningful patterns you can use to improve your marketing campaigns.
A cohort report (or cohort analysis) can help you quickly break down that larger audience into sequential segments and contrast and compare based on various metrics. As such, it is a great tool for unlocking more granular trends and insights — for example, identifying patterns in engagement and conversions based on the date users first interacted with your site.
In this guide, we explain the basics of the cohort report and the best way to set one up to get the most out of it.
What is a cohort report ?
In a cohort report, you divide a data set into groups based on certain criteria — typically a time-based cohort metric like first purchase date — and then analyse the data across those segments, looking for patterns.
Date-based cohort analysis is the most common approach, often creating cohorts based on the day a user completed a particular action — signed up, purchased something or visited your website. Depending on the metric you choose to measure (like return visits), the cohort report might look something like this :
Note that this is not a universal benchmark or anything of the sort. The above is a theoretical cohort analysis based on app users who downloaded the app, tracking and comparing the retention rates as the days go by.
The benchmarks will be drastically different depending on the metric you’re measuring and the basis for your cohorts. For example, if you’re measuring returning visitor rates among first-time visitors to your website, expect single-digit percentages even on the second day.
Your industry will also greatly affect what you consider positive in a cohort report. For example, if you’re a subscription SaaS, you’d expect high continued usage rates over the first week. If you sell office supplies to companies, much less so.
What is an example of a cohort ?
As we just mentioned, a typical cohort analysis separates users or customers by the date they first interacted with your business — in this case, they downloaded your app. Within that larger analysis, the users who downloaded it on May 3 represent a single cohort.
In this case, we’ve chosen behaviour and time — the app download day — to separate the user base into cohorts. That means every specific day denotes a specific cohort within the analysis.
Diving deeper into an individual cohort may be a good idea for important holidays or promotional events like Black Friday.
Of course, cohorts don’t have to be based on specific behaviour within certain periods. You can also create cohorts based on other dimensions :
- Transactional data — revenue per user
- Churn data — date of churn
- Behavioural cohort — based on actions taken on your website, app or e-commerce store, like the number of sessions per user or specific product pages visited
- Acquisition cohort — which channel referred the user or customer
For more information on different cohort types, read our in-depth guide on cohort analysis.
How to create a cohort report (and make sense of it)
Matomo makes it easy to view and analyse different cohorts (without the privacy and legal implications of using Google Analytics).
Here are a few different ways to set up a cohort report in Matomo, starting with our built-in cohorts report.
Cohort reports
With Matomo, cohort reports are automatically compiled based on the first visit date. The default metric is the percentage of returning visitors.
Changing the settings allows you to create multiple variations of cohort analysis reports.
Break down cohorts by different metrics
The percentage of returning visits can be valuable if you’re trying to improve early engagement in a SaaS app onboarding process. But it’s far from your only option.
You can also compare performance by conversion, revenue, bounce rate, actions per visit, average session duration or other metrics.
Change the time and scope of your cohort analysis
Splitting up cohorts by single days may be useless if you don’t have a high volume of users or visitors. If the average cohort size is only a few users, you won’t be able to identify reliable patterns.
Matomo lets you set any time period to create your cohort analysis report. Instead of the most recent days, you can create cohorts by week, month, year or custom date ranges.
Cohort sizes will depend on your customer base. Make sure each cohort is large enough to encapsulate all the customers in that cohort and not so small that you have insignificant cohorts of only a few customers. Choose a date range that gives you that without scaling it too far so you can’t identify any seasonal trends.
Cohort analysis can be a great tool if you’ve recently changed your marketing, product offering or onboarding. Set the data range to weekly and look for any impact in conversions and revenue after the changes.
Using the “compare to” feature, you can also do month-over-month, quarter-over-quarter or any custom date range comparisons. This approach can help you get a rough overview of your campaign’s long-term progress without doing any in-depth analysis.
You can also use the same approach to compare different holiday seasons against each other.
If you want to combine time cohorts with segmentation, you can run cohort reports for different subsets of visitors instead of all visitors. This can lead to actionable insights like adjusting weekend or specific seasonal promotions to improve conversion rates.
Try Matomo for Free
Get the web insights you need, without compromising data accuracy.
Easily create custom cohort reports beyond the time dimension
If you want to split your audience into cohorts by focusing on something other than time, you will need to create a custom report and choose another dimension. In Matomo, you can choose from a wide range of cohort metrics, including referrers, e-commerce signals like viewed product or product category, form submissions and more.
Then, you can create a simple table-based report with all the insights you need by choosing the metrics you want to see. For example, you could choose average visit duration, bounce rate and other usage metrics.
If you want more revenue-focused insights, add metrics like conversions, add-to-cart and other e-commerce events.
Custom reports make it easy to create cohort reports for almost any dimension. You can use any metric within demographic and behavioural analytics to create a cohort. (You can explore the complete list of our possible segmentation metrics.)
We cover different types of custom reports (and ideas for specific marketing campaigns) in our guide on custom segmentation.
Create your first cohort report and gain better insights into your visitors
Cohort reports can help you identify trends and the impact of short-term marketing efforts like events and promotions.
With Matomo cohort reports you have the power to create complex custom reports for various cohorts and segments.
If you’re looking for a powerful, easy-to-use web analytics solution that gives you 100% accurate data without compromising your users’ privacy, Matomo is a great fit. Get started with a 21-day free trial today. No credit card required.
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21 day free trial. No credit card required.
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A Comprehensive Guide to Robust Digital Marketing Analytics
30 octobre 2023, par ErinFirst impressions are everything. This is not only true for dating and job interviews but also for your digital marketing strategy. Like a poorly planned resume getting tossed in the “no thank you” pile, 38% of visitors to your website will stop engaging with your content if they find the layout unpleasant. Thankfully, digital marketers can access data that can be harnessed to optimise websites and turn those “no thank you’s” into “absolutely’s.”
So, how can we transform raw data into valuable insights that pay off ? The key is web analytics tools that can help you make sense of it all while collecting data ethically. In this article, we’ll equip you with ways to take your digital marketing strategy to the next level with the power of web analytics.
What are the different types of digital marketing analytics ?
Digital marketing analytics are like a cipher into the complex behaviour of your buyers. Digital marketing analytics help collect, analyse and interpret data from any touchpoint you interact with your buyers online. Whether you’re trying to gauge the effectiveness of a new email marketing campaign or improve your mobile app layout, there’s a way for you to make use of the insights you gain.
As we go through the eight commonly known types of digital marketing analytics, please note we’ll primarily focus on what falls under the umbrella of web analytics.
- Web analytics help you better understand how users interact with your website. Good web analytics tools will help you understand user behaviour while securely handling user data.
- Learn more about the effectiveness of your organisation’s social media platforms with social media analytics. Social media analytics include user engagement, post reach and audience demographics.
- Email marketing analytics help you see how email campaigns are being engaged with.
- Search engine optimisation (SEO) analytics help you understand your website’s visibility in search engine results pages (SERPs).
- Pay-per-click (PPC) analytics measure the performance of paid advertising campaigns.
- Content marketing analytics focus on how your content is performing with your audience.
- Customer analytics helps organisations identify and examine buyer behaviour to retain the biggest spenders.
- Mobile app analytics track user interactions within mobile applications.
Choosing which digital marketing analytics tools are the best fit for your organisation is not an easy task. When making these decisions, it’s critical to remember the ethical implications of data collection. Although data insights can be invaluable to your organisation, they won’t be of much use if you lose the trust of your users.
Tips and best practices for developing robust digital marketing analytics
So, what separates top-notch, robust digital marketing analytics from the rest ? We’ve already touched on it, but a big part involves respecting user privacy and ethically handling data. Data security should be on your list of priorities, alongside conversion rate optimisation when developing a digital marketing strategy. In this section, we will examine best practices for using digital marketing analytics while retaining user trust.
Clear objectives
Before comparing digital marketing analytics tools, you should define clear and measurable goals. Try asking yourself what you need your digital marketing analytics strategy to accomplish. Do you want to improve conversion rates while remaining data compliant ? Maybe you’ve noticed users are not engaging with your platform and want to fix that. Save yourself time and energy by focusing on the most relevant pain points and areas of improvement.
Choose the right tools for the job
Don’t just base your decision on what other people tell you. Take the tool for a test drive — free trials allow you to test features and user interfaces and learn more about the platform before committing. When choosing digital marketing analytics tools, look for ones that ensure compliance with privacy laws like GDPR.
Don’t overlook data compliance
GDPR ensures organisations prioritise data protection and privacy. You could be fined up to €20 million, or 4% of the previous year’s revenue for violations. Without data compliance practices, you can say goodbye to the time and money spent on digital marketing strategies.
Don’t sacrifice data quality and accuracy
Inaccurate and low-quality data can taint your analysis, making it hard to glean valuable insights from your digital marketing analytics efforts. Regularly audit and clean your data to remove inaccuracies and inconsistencies. Address data discrepancies promptly to maintain the integrity of your analytics. Data validation measures also help to filter out inaccurate data.
Communicate your findings
Having insights is one thing ; effectively communicating complex data findings is just as important. Customise dashboards to display key metrics aligned with your objectives. Make sure to automate reports, allowing stakeholders to stay updated without manual intervention.
Understand the user journey
To optimise your conversion rates, you need to understand the user journey. Start by analysing visitors interactions with your website — this will help you identify conversion bottlenecks in your sales or lead generation processes. Implement A/B testing for landing page optimisation, refining elements like call-to-action buttons or copy, and leverage Form Analytics to make informed, data-driven improvements to your forms.
Continuous improvement
Learn from the data insights you gain, and iterate your marketing strategies based on the findings. Stay updated with evolving web analytics trends and technologies to leverage new growth opportunities.
Why you need web analytics to support your digital marketing analytics toolbox
You wouldn’t set out on a roadtrip without a map, right ? Digital marketing analytics without insights into how users interact with your website are just as useless. Used ethically, web analytics tools can be an invaluable addition to your digital marketing analytics toolbox.
The data collected via web analytics reveals user interactions with your website. These could include anything from how long visitors stay on your page to their actions while browsing your website. Web analytics tools help you gather and understand this data so you can better understand buyer preferences. It’s like a domino effect : the more you understand your buyers and user behaviour, the better you can assess the effectiveness of your digital content and campaigns.
Web analytics reveal user behaviour, highlighting navigation patterns and drop-off points. Understanding these patterns helps you refine website layout and content, improving engagement and conversions for a seamless user experience.
Concrete CMS harnessed the power of web analytics, specifically Form Analytics, to uncover a crucial insight within their user onboarding process. Their data revealed a significant issue : the “address” input field was causing visitors to drop off and not complete the form, severely impacting the overall onboarding experience and conversion rate.
Armed with these insights, Concrete CMS made targeted optimisations to the form, resulting in a substantial transformation. By addressing the specific issue identified through Form Analytics, they achieved an impressive outcome – a threefold increase in lead generation.
This case is a great example of how web analytics can uncover customer needs and preferences and positively impact conversion rates.
Ethical implications of digital marketing analytics
As we’ve touched on, digital marketing analytics are a powerful tool to help better understand online user behaviour. With great power comes great responsibility, however, and it’s a legal and ethical obligation for organisations to protect individual privacy rights. Let’s get into the benefits of practising ethical digital marketing analytics and the potential risks of not respecting user privacy :
- If someone uses your digital platform and then opens their email one day to find it filled with random targeted ad campaigns, they won’t be happy. Avoid losing user trust — and facing a potential lawsuit — by informing users what their data will be used for. Give them the option to consent to opt-in or opt-out of letting you use their personal information. If users are also assured you’ll safeguard personal information against unauthorised access, they’ll be more likely to trust you to handle their data securely.
- Protecting data against breaches means investing in technology that will let you end-to-end encrypt and securely store data. Other important data-security best practices include access control, backing up data regularly and network and physical security of assets.
- A fine line separates digital marketing analytics and misusing user data — many companies have gotten into big trouble for crossing it. (By big trouble, we mean millions of dollars in fines.) When it comes to digital marketing analytics, you should never cut corners when it comes to user privacy and data security. This balance involves understanding what data can be collected and what should be collected and respecting user boundaries and preferences.
Learn more
We discussed a lot of facets of digital marketing analytics, namely how to develop a robust digital marketing strategy while prioritising data compliance. With Matomo, you can protect user data and respect user privacy while gaining invaluable insights into user behaviour. Save your organisation time and money by investing in a web analytics solution that gives you the best of both worlds.
If you’re ready to begin using ethical and robust digital marketing analytics on your website, try Matomo. Start your 21-day free trial now — no credit card required.
Try Matomo for Free
21 day free trial. No credit card required.