Understand your English level

Sam Colley
Reading time: 4 minutes

Learning English as a second language is a journey that can be fun and tough. A key part of this journey is knowing your current skill level. The Global Scale of English (GSE) helps learners check their skills. The GSE is a scale from 10 to 90 that measures English ability. It gives clear information about what learners can do at each level. In this blog, we’ll look at how to find out your English level using GSE scores, levels, and "I can..." statements.

Why understanding your English level matters

You may wonder, ‘Why is it important for me to know my language level’? If you start studying without knowing your skill level, you might feel overwhelmed, frustrated, or find learning too easy and be put off or not make any learning progress.
Knowing your English level helps you in many ways, such as to:

  1. Set realistic goals: Tailor your learning objectives to your current abilities.
  2. Choose appropriate materials: Select books, courses, and resources that match your proficiency.
  3. Track progress: Measure improvement over time and stay motivated.

GSE levels and what they mean

The GSE levels range from Starter to Expert, each with specific "I can..." statements that describe what you should be able to do at that level. Here’s a breakdown of each level, along with some practical examples:

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GSE 10-19: Starter – CEFR <A1

At this level, you can use and understand a small number of words and phrases.

For example: You can say hello and introduce yourself. Simple phrases like "My name is John" or "How are you?" are within your grasp.

GSE 20-29: Beginner – CEFR <A1-A1

As a beginner, you can ask and answer simple questions, write short sentences, and share personal information.

For example: You can order food and drink in a simple way. For instance, you might say, "I would like a coffee, please," or "Where is the bathroom?"

GSE 30-39: Pre-intermediate – CEFR A2+

At this stage, you can talk about everyday topics and understand the main information in conversations.

For example: You can make a hotel reservation over the phone. You might say, "I need a room for two nights," or "Do you have free Wi-Fi?"

GSE 40-49: Intermediate – CEFR B1

Intermediate learners can share their opinions, explain their reasoning, and write longer texts, such as short essays.

For example: You can describe your weekend plans. For example, "This weekend, I am going to visit my grandparents and go hiking."

GSE 50-59: High Intermediate – CEFR B1+

At this level, you can lead and participate in conversations on familiar and unfamiliar topics, and write documents expressing opinion or fact, such as reports and articles.

For example: You can make a complaint. You might say, "I am not satisfied with the service because my order was incorrect."

GSE 60-69: Pre-advanced – CEFR B1-B2

Pre-advanced learners can speak more fluently about a broad range of topics and share detailed ideas and explanations in writing.

For example: You can understand a wide range of TV shows and films. For example, you can follow the plot and dialogue of a drama series without subtitles.

GSE 70-79: Advanced – CEFR B2+-C1

At the advanced level, you can speak fluently in personal, professional, and academic contexts and understand unfamiliar topics, even colloquialisms.

For example: You can make and understand jokes using word-play. For instance, you might understand a pun or a play on words in a conversation.

GSE 80-90: Expert – CEFR C1-C2

Expert learners can talk spontaneously, fluently, and precisely, read and write documents with ease, and understand spoken English in all contexts.

For example: You can participate in fast-paced conversations on complex topics. You might discuss global economic issues or debate philosophical ideas with ease.

Assessing your English proficiency

To accurately find out your GSE level, consider taking a standardized test that provides a GSE score. Many language schools and online platforms offer assessments specifically designed to measure your English proficiency according to the GSE framework or you could try the ɫèAV Test of English (PTE) or ɫèAV English International Certificate (PEIC).

Understanding yourself to improve your English study

Understanding your English level as an ESL learner is an essential step in mastering the language. Whether you're a beginner who can recognize simple greetings or an advanced learner who can understand complex arguments in newspaper articles, the GSE provides a clear pathway for your language learning journey so you can clearly see where you stand and what you need to work on next.

Read our blog posts ‘Learning a language while working full-time’ and ‘English conversation mistakes to avoid

More blogs from ɫèAV

  • Hands typing at a laptop with symbols

    Can computers really mark exams? Benefits of ELT automated assessments

    By ɫèAV Languages

    Automated assessment, including the use of Artificial Intelligence (AI), is one of the latest education tech solutions. It speeds up exam marking times, removes human biases, and is as accurate and at least as reliable as human examiners. As innovations go, this one is a real game-changer for teachers and students. 

    However, it has understandably been met with many questions and sometimes skepticism in the ELT community – can computers really mark speaking and writing exams accurately? 

    The answer is a resounding yes. Students from all parts of the world already take AI-graded tests.  aԻ Versanttests – for example – provide unbiased, fair and fast automated scoring for speaking and writing exams – irrespective of where the test takers live, or what their accent or gender is. 

    This article will explain the main processes involved in AI automated scoring and make the point that AI technologies are built on the foundations of consistent expert human judgments. So, let’s clear up the confusion around automated scoring and AI and look into how it can help teachers and students alike. 

    AI versus traditional automated scoring

    First of all, let’s distinguish between traditional automated scoring and AI. When we talk about automated scoring, generally, we mean scoring items that are either multiple-choice or cloze items. You may have to reorder sentences, choose from a drop-down list, insert a missing word- that sort of thing. These question types are designed to test particular skills and automated scoring ensures that they can be marked quickly and accurately every time.

    While automatically scored items like these can be used to assess receptive skills such as listening and reading comprehension, they cannot mark the productive skills of writing and speaking. Every student's response in writing and speaking items will be different, so how can computers mark them?

    This is where AI comes in. 

    We hear a lot about how AI is increasingly being used in areas where there is a need to deal with large amounts of unstructured data, effectively and 100% accurately – like in medical diagnostics, for example. In language testing, AI uses specialized computer software to grade written and oral tests. 

    How AI is used to score speaking exams

    The first step is to build an acoustic model for each language that can recognize speech and convert it into waveforms and text. While this technology used to be very unusual, most of our smartphones can do this now. 

    These acoustic models are then trained to score every single prompt or item on a test. We do this by using human expert raters to score the items first, using double marking. They score hundreds of oral responses for each item, and these ‘Standards’ are then used to train the engine. 

    Next, we validate the trained engine by feeding in many more human-marked items, and check that the machine scores are very highly correlated to the human scores. If this doesn’t happen for any item, we remove it, as it must match the standard set by human markers. We expect a correlation of between .95-.99. That means that tests will be marked between 95-99% exactly the same as human-marked samples. 

    This is incredibly high compared to the reliability of human-marked speaking tests. In essence, we use a group of highly expert human raters to train the AI engine, and then their standard is replicated time after time.  

    How AI is used to score writing exams

    Our AI writing scoring uses a technology called . LSA is a natural language processing technique that can analyze and score writing, based on the meaning behind words – and not just their superficial characteristics. 

    Similarly to our speech recognition acoustic models, we first establish a language-specific text recognition model. We feed a large amount of text into the system, and LSA uses artificial intelligence to learn the patterns of how words relate to each other and are used in, for example, the English language. 

    Once the language model has been established, we train the engine to score every written item on a test. As in speaking items, we do this by using human expert raters to score the items first, using double marking. They score many hundreds of written responses for each item, and these ‘Standards’ are then used to train the engine. We then validate the trained engine by feeding in many more human-marked items, and check that the machine scores are very highly correlated to the human scores. 

    The benchmark is always the expert human scores. If our AI system doesn’t closely match the scores given by human markers, we remove the item, as it is essential to match the standard set by human markers.

    AI’s ability to mark multiple traits 

    One of the challenges human markers face in scoring speaking and written items is assessing many traits on a single item. For example, when assessing and scoring speaking, they may need to give separate scores for content, fluency and pronunciation. 

    In written responses, markers may need to score a piece of writing for vocabulary, style and grammar. Effectively, they may need to mark every single item at least three times, maybe more. However, once we have trained the AI systems on every trait score in speaking and writing, they can then mark items on any number of traits instantaneously – and without error. 

    AI’s lack of bias

    A fundamental premise for any test is that no advantage or disadvantage should be given to any candidate. In other words, there should be no positive or negative bias. This can be very difficult to achieve in human-marked speaking and written assessments. In fact, candidates often feel they may have received a different score if someone else had heard them or read their work.

    Our AI systems eradicate the issue of bias. This is done by ensuring our speaking and writing AI systems are trained on an extensive range of human accents and writing types. 

    We don’t want perfect native-speaking accents or writing styles to train our engines. We use representative non-native samples from across the world. When we initially set up our AI systems for speaking and writing scoring, we trialed our items and trained our engines using millions of student responses. We continue to do this now as new items are developed.

    The benefits of AI automated assessment

    There is nothing wrong with hand-marking homework tests and exams. In fact, it is essential for teachers to get to know their students and provide personal feedback and advice. However, manually correcting hundreds of tests, daily or weekly, can be repetitive, time-consuming, not always reliable and takes time away from working alongside students in the classroom. The use of AI in formative and summative assessments can increase assessed practice time for students and reduce the marking load for teachers.

    Language learning takes time, lots of time to progress to high levels of proficiency. The blended use of AI can:

    • address the increasing importance of formative assessmentto drive personalized learning and diagnostic assessment feedback 

    • allow students to practice and get instant feedback inside and outside of allocated teaching time

    • address the issue of teacher workload

    • create a virtuous combination between humans and machines, taking advantage of what humans do best and what machines do best. 

    • provide fair, fast and unbiased summative assessment scores in high-stakes testing.

    We hope this article has answered a few burning questions about how AI is used to assess speaking and writing in our language tests. An interesting quote from Fei-Fei Li, Chief scientist at Google and Stanford Professor describes AI like this:

    “I often tell my students not to be misled by the name ‘artificial intelligence’ — there is nothing artificial about it; A.I. is made by humans, intended to behave [like] humans and, ultimately, to impact human lives and human society.”

    AI in formative and summative assessments will never replace the role of teachers. AI will support teachers, provide endless opportunities for students to improve, and provide a solution to slow, unreliable and often unfair high-stakes assessments.

    Examples of AI assessments in ELT

    At ɫèAV, we have developed a range of assessments using AI technology.

    Versant

    The Versant tests are a great tool to help establish language proficiency benchmarks in any school, organization or business. They are specifically designed for placement tests to determine the appropriate level for the learner.

    PTE Academic

    The  is aimed at those who need to prove their level of English for a university place, a job or a visa. It uses AI to score tests and results are available within five days. 

    ɫèAV English International Certificate (PEIC)

    ɫèAV English International Certificate (PEIC) also uses automated assessment technology. With a two-hour test available on-demand to take at home or at school (or at a secure test center). Using a combination of advanced speech recognition and exam grading technology and the expertise of professional ELT exam markers worldwide, our patented software can measure English language ability.