Discourse analysis on Speak AI

The types of discourse analysis,
explained and applied.

Discourse analysis examines how language builds meaning, identity, and power in real interactions. This guide covers all seven major types, from critical discourse analysis to corpus-based methods, with the theorists, applications, and examples behind each, plus how AI can speed up transcription and coding on your own recordings.

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Types of discourse analysis covered
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Точність транскрипції
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Layers read: words, voice, visuals
Огляд

The 7 major types of discourse analysis.

Each type brings a distinct theoretical lens and set of methods. The approach you choose depends on your research questions, disciplinary background, and the kind of language data you are working with.

Power & ideology

Критичний дискурс-аналіз

Examines how language creates and maintains power relations, social inequality, and ideological control in political, media, and policy texts.

Interaction mechanics

Аналіз розмови

Studies the precise mechanics of naturally occurring talk: turn-taking, repair, and adjacency pairs, in healthcare, education, and everyday interaction.

Knowledge & power

Аналіз дискурсу Фуко

Спирається на Фуко, щоб дослідити, як дискурс конструює знання, істину та позиції суб'єкта в межах історично специфічних систем влади.

Stories & identity

Аналіз наративного дискурсу

Focuses on the stories people tell, how they structure narratives, position characters, and construct identity and meaning through storytelling.

Beyond text

Мультимодальний дискурс-аналіз

Виходить за рамки тексту, досліджуючи, як значення створюється через поєднання мови, зображення, звуку, жестів, макета та просторового дизайну.

Large-scale patterns

Корпусний дискурс-аналіз

Використовує обчислювальні інструменти для виявлення закономірностей у великих текстових колекціях, поєднуючи кількісний частотний аналіз з якісною інтерпретацією.

The free consult

Bring one recording. Leave with it coded.

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Step 1

You bring a real recording

An interview, focus group, or observational recording, whatever you review and code by hand today.

Step 2

We map your coding framework

The categories in your codebook and the theoretical lens you use, CDA, CA, or a custom scheme. Your words, your structure, not a template.

Step 3

You see it transcribed and tagged, live

Your own recording, transcribed and coded against your framework, with a plan for the rest of your corpus.

One engine, every research context

Discourse analysis for every kind of data.

The same transcription and coding engine, pointed at the recordings and texts your research actually produces.

Media & politics

Political & media discourse

News coverage, campaign materials, and policy documents scored for framing, metaphor, and power, the terrain of critical discourse analysis.

Healthcare & service

Clinical & service interaction

Doctor-patient consultations, courtroom exchanges, and customer service calls, where conversation analysis and interactional sociolinguistics meet real turn-taking.

Policy & education

Institutional & governance talk

How institutions construct categories of normality, expertise, and authority, a Foucauldian discourse analysis question applied across sociology and education.

Health & organizations

Narrative & identity research

Illness narratives, workplace origin stories, and life-history interviews, coded for structure, positioning, and the identities storytelling constructs.

Social & multimodal

Multimodal & social data

Video essays, ads, and social content where text, image, gesture, and sound combine, plus recorded interviews with real tone and energy to code.

Linguistics

Corpus & computational research

Thousands of hours of transcribed speech or millions of words of text, searched for collocation, frequency, and change over time.

Small research team reviewing a recorded focus group on a laptop together
A research team reviewing a recorded focus group together, checking coded segments against the original video.

A different approach to discourse analysis.

Discourse analysis is a qualitative research method that examines how language is used in real-world contexts to construct meaning, shape identities, exercise power, and accomplish social actions. It goes beyond what is said to analyze how and why it is said in particular ways, and what effects those language choices have. The seven types below share that starting point but diverge sharply in theory, method, and the kind of question each is built to answer.

The seven types, theorist by theorist

Each type carries its own key theorists, its own typical applications, and its own way of reading a transcript. This is the fast reference; the sections below go deeper on the two that most researchers underestimate.

  • Критичний дискурс-аналіз (КДА), Fairclough, van Dijk, Wodak. Studies political rhetoric, media bias, and policy language. Example: how metaphors of "flood" or "invasion" in immigration coverage construct people as threats rather than individuals.
  • Аналіз розмови (CA), Sacks, Schegloff, Jefferson. Studies turn-taking, repair, and adjacency pairs in healthcare, courtroom, and service talk. Example: patients repeating symptoms when they feel unacknowledged, correlating with lower satisfaction.
  • Фуко-аналіз дискурсу (FDA), Foucault, Parker, Willig. Studies how institutions construct knowledge, normality, and subject positions. Example: how the shift from "insanity" to "mental health condition" reflects changing power between medicine, patients, and society.
  • Аналіз наративного дискурсу, Labov, Riessman, Bamberg. Studies story structure, positioning, and identity in illness narratives, organizational stories, and life-history interviews. Example: cancer survivors who frame recovery as a "journey" reporting different outcomes than those who use "battle" language.
  • Мультимодальний дискурс-аналіз (MDA), Kress, van Leeuwen, Machin. Studies how text, image, sound, gesture, and layout combine in ads, social content, and video. Example: how a candidate photograph, slogan, color scheme, and campaign-ad music work together to build an identity no single mode could carry alone.
  • Корпусний дискурс-аналіз, Baker, Partington, Stubbs. Uses concordance, collocation, and keyword analysis across large text or speech collections. Example: 20 years of climate reporting tracked from "climate debate" to "climate crisis" through keyword shift.
  • Інтерактивна соціолінгвістика, Gumperz, Tannen. Studies contextualization cues, code-switching, and framing in cross-cultural and gatekeeping encounters. Example: interviewers misreading a candidate's cultural discourse strategies as a lack of qualification.
Researcher conducting a recorded interview with a participant, phone capturing audio on the table
A recorded interview captures more than the words, tone, pacing, and pauses carry meaning too.

Reading the recording, not just the transcript

Most discourse analysis still starts and stops at a text file, even when the underlying data was spoken. That leaves a gap for the types built to read interaction and multimodal meaning: conversation analysis needs the pauses, overlaps, and intonation that a plain transcript strips out, and multimodal discourse analysis needs the images, gestures, and sound a transcript never captured in the first place.

Speak AI reads recordings on three layers at once: the words spoken, the voice behind them (tone, energy, pacing, and pauses), and what is visible in the recording itself (facial expression, gesture, on-screen content). For a CA researcher, that means timestamped speaker turns without hand-notating every overlap. For an MDA researcher working with video interviews or social content, it means one coded record instead of separately logging the visual and verbal channels. A frustrated pause, a rising pitch on a key word, a hesitation before naming a competitor, all become part of the data instead of getting lost between the recorder and the page.

How to conduct discourse analysis, step by step

  • Define your research questions. Focus on how language functions, not just what is said. Many researchers sharpen this stage against a grounded theory topic list, even for studies that don't test formal hypotheses (most qualitative studies don't need one).
  • Select and collect your data. Written texts, transcribed speech, social posts, interview recordings, or policy documents. Speak AI's qualitative research platform і автоматизована транскрипція speed up collection considerably.
  • Transcribe and prepare your data. CA requires precise notation of pauses and overlaps; CDA can work with standard transcriptions. AI-powered tools like Speak's audio-to-text converter handle the first pass, which you refine for your analytical needs.
  • Conduct initial coding. Read through multiple times, letting your theoretical framework guide what you attend to. A аналізатор транскрипцій і AI-assisted qualitative coding software can surface first-pass themes before you code line by line.
  • Analyze in depth. Connect specific language choices, word choice, metaphor, grammar, rhetorical strategy, to the macro-level social processes and theory your framework predicts.
  • Interpret and write up. Present rich examples that show the evidence behind your interpretation, and include reflexivity about your own position as analyst.
Порівняння: типи дискурс-аналізу з першого погляду
ТипФокусНайкраще підходить для
Критичний дискурс-аналізВлада, ідеологія, нерівністьПолітичний дискурс, медіа-аналіз, політичні дослідження
Аналіз розмовиПочерговість, механіка взаємодіїОхорона здоров'я, освіта, повсякденні розмови
Аналіз дискурсу ФукоЗнання, влада, суб'єктні позиціїІнституційні практики, управління, ідентичність
Аналіз наративуІсторії, ідентичність, творення сенсуОхорона здоров'я, освіта, організаційні дослідження
Мультимодальний дискурс-аналізVisual, textual & spatial meaningРеклама, соціальні мережі, цифрові комунікації
Корпусний дискурс-аналізМасштабні мовні патерниМедіазнавство, історичний аналіз, криміналістика
Інтерактивна соціолінгвістикаСоціальне значення, контекстуалізаціяМіжкультурна комунікація, контроль доступу

AI tools do not replace the interpretive work that defines discourse analysis, and the theoretical judgment behind a CDA reading of a metaphor or an FDA reading of a subject position still has to come from the researcher. What changes is how much time reaches that judgment: less spent transcribing, coding first passes, and searching across files, and more spent on the analysis that actually answers your research question. Some teams also connect this workflow to an AI meeting assistant for live recruitment interviews, or Агенти ШІ to automate repetitive collection tasks.

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Engineered with you, accurate from day one.

A generic AI tool starts from zero. We shape the fields, prompts, and structure around the coding framework you already use, CDA, CA, grounded theory, or a custom scheme, then prime the workspace on your existing recordings so it is useful from the first file.

  • We map your codebook and theoretical lens into structured fields and prompts, not a generic template.
  • Your historical interviews and transcripts prime the база знань before you start coding new data.
  • Query transcripts, fields, and themes directly from Claude, ChatGPT, and Cursor through the MCP server.
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Questions we get

Different frameworks group discourse analysis differently. A common four-part grouping is critical, conversation, narrative, and Foucauldian discourse analysis. This guide covers seven, adding multimodal, corpus-based, and interactional sociolinguistics as their own distinct types, since each has its own theorists and methods.

Some teaching frameworks list five discourse types by function: narration, description, exposition, argumentation, and dialogue. That is a rhetorical classification, distinct from the seven research methodologies covered here, which classify by analytical approach rather than by the kind of text.

Foucauldian discourse analysis traces how discourse constructs knowledge, truth, and subject positions within historically specific systems of power. Rather than coding line by line, researchers trace genealogies: how a category like "mental illness" or "deviance" emerged historically and came to appear natural.

Discourse analysis is one of several qualitative analysis methods, alongside thematic analysis, grounded theory, content analysis, and narrative analysis (which also overlaps with narrative discourse analysis specifically). Many researchers combine methods, using thematic coding for a first pass before a deeper discourse or narrative reading.

Content analysis counts and categorizes explicit features of texts, themes, topics, keywords. Discourse analysis examines how meaning is constructed through language: implicit assumptions, power dynamics, and rhetorical strategy. Content analysis asks what is said; discourse analysis asks how and why it is said this way.

Yes, for the preparation work. AI tools can transcribe recordings across 100+ languages, extract keywords and sentiment, and let you query across a whole corpus with AI Chat. The interpretive and theoretical work, the part that actually makes it discourse analysis, still needs a researcher.

From a recording to a coded transcript.

Book a free consult, bring a real interview or focus group recording, and watch it transcribed and coded against your framework before the meeting ends. Consults include early access to new features, an extended trial, and implementation credits. Prefer to start alone? A free інструмент для аналізу тексту can extract initial themes from a single file first.

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