You are reading this sentence right now, understanding every word, and your brain is doing something extraordinary – processing symbols into meaning in fractions of a second. That happens because of the cerebrum, the brain’s largest and most complex structure. Accounting for roughly two-thirds of the brain’s total weight, the cerebrum is the seat of conscious thought, voluntary movement, sensory perception, memory, emotion, and language. Every conversation you have, every decision you make, every emotion you feel – all of it traces back to this structure sitting at the top of your skull.

Table of Contents

What exactly is the cerebrum?

The cerebrum is the uppermost region of the brain, sitting in front of and on top of the brainstem, with the cerebellum tucked below it at the back. According to Cleveland Clinic, it handles the brain functions that allow us to interact with the environment and define who we are as individuals – from thoughts and decisions to voluntary actions and sensory awareness. Its outer surface, the cerebral cortex, is a layer of grey matter only a few millimeters thick but deeply folded into ridges (gyri) and grooves (sulci). These folds give the cortex a surface area of about 2,000 square centimeters, a design that packs enormous processing power into the limited space of the skull. Beneath this grey matter lies white matter – bundles of myelinated nerve fibers that carry signals between different regions.

The cerebrum also contains several subcortical structures: the hippocampus (critical for memory formation and retrieval), the basal ganglia (involved in motor control and procedural learning), and the olfactory bulb (the entry point for smell). The thalamus, sitting just beneath the cerebrum, acts as a relay station – sorting sensory input and routing it to the appropriate cortical areas, with the exception of smell, which bypasses the thalamus entirely and goes directly to the cerebrum.

The two hemispheres: mirror images with different roles

A deep groove called the longitudinal fissure divides the cerebrum into a left and a right hemisphere. Despite looking like near-mirror images of each other, these hemispheres are connected and communicate through the corpus callosum – a thick band of white matter fibers that integrates signals between the two sides. This connection is essential: without it, the two hemispheres cannot coordinate, a fact demonstrated dramatically in patients who had their corpus callosum surgically cut to treat severe epilepsy.

The cerebrum is contralaterally organized: the right hemisphere controls and processes signals from the left side of the body, while the left hemisphere handles the right side. This is why a stroke in the right hemisphere can cause weakness or paralysis on the left side of the body, and vice versa.

The two hemispheres also show functional specialization. In general, the left hemisphere governs speech, language comprehension, arithmetic, and writing, while the right hemisphere handles creativity, spatial reasoning, and artistic and musical interpretation. Notably, the left hemisphere is dominant for language and hand use in about 92% of people. However, it is important to note that most complex brain functions are distributed across both hemispheres – popular claims about people being purely “left-brained” or “right-brained” oversimplify what the neuroscience actually shows.

The four lobes and their functions

Each hemisphere is divided into four lobes by prominent grooves. Each lobe controls specific functions, though they constantly work in concert with one another.

Frontal lobe

The largest lobe, located behind the forehead, the frontal lobe is responsible for motor function, language production, executive functions, attention, memory, affect, personality, self-awareness, and social and moral reasoning. It houses the primary motor cortex, which controls voluntary body movements, and – crucially for communication – it contains Broca’s area.

Parietal lobe

Sitting behind the frontal lobe and toward the top of the head, the parietal lobe processes sensory information from the body – touch, temperature, pain, and spatial awareness. The parietal lobes help interpret sensory input and process taste, texture, and temperature. This lobe also plays a key role in integrating visual and spatial information, helping you judge distances and navigate your environment. It is also where Wernicke’s area partially extends, aiding in language comprehension.

Temporal lobe

Located on the sides of the brain near the temples, the temporal lobe is heavily involved in processing auditory information, understanding spoken language, and storing long-term memories. The hippocampus, along with the temporal lobe, helps manage and store memories and retrieves them when needed. Wernicke’s area, which is central to language comprehension, is primarily located in the posterior part of this lobe.

Occipital lobe

At the very back of the brain sits the occipital lobe, which is dedicated almost entirely to visual processing. The occipital lobes process images from the eyes and connect them to images stored in memory, allowing you to recognize faces, read text, and interpret the visual world around you.

Broca’s area: the brain’s speech producer

Broca’s area is located in the posterior part of the inferior frontal gyrus of the left hemisphere – specifically at Brodmann areas 44 and 45. Its primary functions include language production, sentence grammar and fluency, gesture production, and language repetition. It coordinates the fine motor movements required to form words and shapes them into grammatically structured speech.

The area was identified by French physician Paul Broca in the 1860s after he observed two patients who had lost the ability to speak coherently following damage to this specific region. When Broca’s area is damaged, the result is Broca’s aphasia – also called expressive aphasia. It is a non-fluent aphasia where the person retains meaningful content in their speech but may omit articles, prepositions, and grammatical function words, producing what is often described as “telegraphic speech.” The person typically knows what they want to say but cannot get the words out smoothly. Comprehension, however, remains relatively intact.

Wernicke’s area: the brain’s language decoder

While Broca’s area drives speech production, Wernicke’s area handles the comprehension side. Located in the posterior portion of the superior temporal gyrus of the left hemisphere, Wernicke’s area is the receptive language center of the brain – responsible for understanding both spoken and written language. It receives input from the auditory cortex and assigns meaning to the words we hear.

Carl Wernicke identified this region in the 1870s after observing patients who could speak fluently but whose words made no meaningful sense. Damage to Wernicke’s area results in Wernicke’s aphasia – a receptive aphasia where speech remains fluent and rhythmically normal, but comprehension is severely impaired and the content is often meaningless or filled with invented words. The person speaks at length but the output is incoherent – a pattern sometimes called “word salad.”

Importantly, modern neuroimaging research shows that Wernicke’s area is not a single, uniform region. Researchers have distinguished three sub-areas within Wernicke’s area: one that responds to spoken words and sounds, one that activates when hearing others speak or recalling word lists, and a third more closely linked to producing speech than perceiving it. This reflects the broader understanding that language in the brain is a distributed network, not a simple two-region system.

How Broca’s and Wernicke’s areas work together

Broca’s area and Wernicke’s area do not operate in isolation. They are connected by a bundle of nerve fibers called the arcuate fasciculus. This white matter tract facilitates the transmission of information between the two regions, enabling the seamless integration of language comprehension and production. When you hear a question and formulate a response, Wernicke’s area decodes the incoming language, and Broca’s area constructs and articulates the reply – all through this connecting pathway.

Damage specifically to the arcuate fasciculus, leaving both Broca’s and Wernicke’s areas intact, produces a third condition called conduction aphasia: the person can understand language and produce speech, but is specifically impaired in repeating phrases spoken by someone else. This elegant dissociation reveals just how precisely organized the cerebrum’s language network is.

If damage affects both areas simultaneously, global aphasia can result – where all aspects of speech and language are severely disrupted, leaving a person able to say only a few words and understand only the most basic phrases.

The cerebrum and sensory interpretation

Beyond language, the cerebrum is the brain’s primary sensory integration center. The cerebral cortex is responsible for integrating sensory impulses, directing motor activity, and controlling higher intellectual functions. Sensory neurons from the body carry information to the thalamus, which then relays it to the appropriate regions of the cerebral cortex for interpretation. Touch goes to the parietal cortex, sound to the temporal cortex, and vision to the occipital cortex. Only smell bypasses this relay and goes directly into the cerebrum via the olfactory bulb.

The motor cortex, located just in front of the central sulcus in the frontal lobe, sends commands for voluntary movement back out to the body – again, in a contralateral pattern. The level of cortical space devoted to a body part corresponds not to its physical size but to the precision of its movements: the hands, face, and tongue, for instance, occupy a disproportionately large portion of the motor cortex because of the fine motor control they require.

When the cerebrum is damaged

Because the cerebrum governs such a wide range of functions, damage to it – whether from stroke, traumatic brain injury, tumors, or neurodegeneration – can produce highly varied effects depending on the location and extent of the injury. An aneurysm of the anterior cerebral artery, for example, can cause contralateral lower limb numbness and weakness, while an aneurysm of the middle cerebral artery can affect the face and upper limb on the opposite side. Language disorders like aphasia, memory impairments, personality changes, and movement deficits all fall within the possible consequences of cerebral damage – a reflection of how central this structure is to virtually everything that makes us human.

In neurodegenerative diseases such as Alzheimer’s, language functioning may be relatively preserved early on, but it typically declines substantially in mid-to-late stages, often affecting word retrieval, fluency, and comprehension – again mirroring the pattern of language areas being among the regions eventually compromised.

What do you think? Given that Broca’s area handles speech production while Wernicke’s area handles comprehension, does it surprise you that someone with Wernicke’s aphasia can speak fluently yet not understand others – or their own words? And considering that the cerebrum governs nearly every conscious function, what does that tell us about how fragile yet resilient our sense of self really is?

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References
  1. https://www.britannica.com/science/cerebrum
  2. https://my.clevelandclinic.org/health/body/23083-cerebrum
  3. https://www.ncbi.nlm.nih.gov/books/NBK549789/
  4. https://www.physio-pedia.com/Cerebrum
  5. https://mayfieldclinic.com/pe-anatbrain.htm
  6. https://www.hopkinsmedicine.org/health/conditions-and-diseases/anatomy-of-the-brain
  7. https://www.ncbi.nlm.nih.gov/books/NBK551718/
  8. https://www.mayoclinic.org/diseases-conditions/epilepsy/in-depth/brain/art-20546821
  9. https://www.ncbi.nlm.nih.gov/books/NBK526096/
  10. https://www.simplypsychology.org/wernickes-area.html
  11. https://pmc.ncbi.nlm.nih.gov/articles/PMC11491986/
  12. https://socialsci.libretexts.org/Bookshelves/Psychology/Biological_Psychology/Biopsychology_(OERI)_-_DRAFT_for_Review/15:_Language_and_the_Brain/15.02:_Broca's_Area_Wernicke's_Area_and_Additional_Language-Processing_Areas_in_the_Brain
  13. https://memory.ucsf.edu/brain-health/speech-language

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Neuropsychology

1 Introduction, Definition and Description of Neuropsychology

  1. Introduction to Neuropsychology
  2. Historical Perspective of Neuropsychology
  3. Central Nervous System
  4. Definition and Concept of Neuropsychology
  5. Neuropsychological Test Selection

2 Neuropsychology and other Disciplines

  1. Neuropsychology and Neuroscience
  2. Cognitive Neuropsychology and Neuroscience
  3. Biological Psychology and Neuropsychology
  4. Cognitive Psychology and Neuropsychology
  5. Neurobiology and Neuropsychology

3 Historical Perspective of Neuropsychology

  1. Trephanation
  2. Ancient Egyptian
  3. Ancient Greek
  4. The Cell Doctrine
  5. Phrenology
  6. Localisation

4 Domains of Neuropsychology

  1. Clinical Neuropsychology
  2. Experimental Neuropsychology
  3. Attention
  4. Motor Function
  5. Language
  6. Learning and Memory
  7. Visual Perception and Constructional Ability
  8. Executive Functions

5 Neuropsychology Methods

  1. Examining Tissue
  2. Lesions and Ablation
  3. Electrical Stimulation
  4. Neurochemical Manipulations
  5. Electrical Recording
  6. In-Vivo Imaging

6 Neuropsychological Assessment and Screening

  1. Neuropsychological Assessment of Infants and Young Children
  2. Advances in Neurodiagnostic Techniques
  3. Neuropsychological Assessment of Older Children
  4. Neuropsychological Assessment of Adults
  5. Validity and Reliability
  6. Neuropsychological Screening of Adults

7 Neuropsychology Test Batteries

  1. Neuropsychological Assessment
  2. The Nervous System and Behaviour
  3. Neuropsychological Examination
  4. Goals of Neuropsychological Assessment
  5. The Luria-Nebraska Neuropsychological Battery
  6. The Halstead-Reitan Neuropsychological Battery
  7. The NIMHANS Neuropsychological Battery

8 Behavioural Neuropsychology, Brain Fitness and Activities that Promote Brain Fitness

  1. Neuropsychology
  2. Behavioural Neuropsychology
  3. Brain and Behaviour
  4. Brain Fitness
  5. Brain Training
  6. Activities for Improving Specific Cognitive Domains

9 Brain Size and Devaluation, Genes, Brain and Behaviour

  1. Brain Size
  2. Male-Female Brain Differences
  3. Indicators of Biological Basis of Behaviour
  4. Human Brain and Human Behaviour
  5. Genes Brain and Behaviour
  6. Genes Influence Behaviour and Attitudes

10 The Brain

  1. The Brain
  2. The Forebrain
  3. The Midbrain
  4. The Hindbrain
  5. The Neurons or the Brain Cells
  6. Functions of the Brain

11 The Cerebrum and the Cerebral Hemispheres and their Functions

  1. The Cerebrum and the Cerebellum
  2. The Brain Stem
  3. The Diencephalon
  4. The Cerebrum
  5. The Cerebral Cortex and Functional Areas
  6. The Cerebellum
  7. The Limbic System
  8. The Forebrain
  9. Lobes of the Brain

12 Cerebral Lobes and the Limbic System

  1. The Lobes of the Brain
  2. The Frontal Lobe
  3. The Occipital Lobe
  4. The Parietal Lobe
  5. The Temporal Lobe
  6. The Limbic System

13 Brain Behaviour Relationship, Consiousness and Mind Brain Relationship

  1. Brain-Behaviour Relationship
  2. Mind-Brain Relationship
  3. Consciousness

14 Consciousness and Neuro Chemical Process and Higher Cerebral Functions

  1. Consciousness
  2. Neurochemical Process
  3. Neurons and Neurotransmission
  4. Neurochemical Process and Higher Cerebral Functions

15 Neurobiological and Neuropsychological Aspects in the Development of Memory, Emotion and Consciousness

  1. Neurobiological and Neuropsychological Aspects of Memory
  2. Anatomy of the Hippocampus
  3. Emotion
  4. Consciousness

16 Nervous System Diseases

  1. Cerebral Ischemia
  2. Migraine Stroke
  3. Cerebral Hemorrhage
  4. Angiomas and Aneurysms
  5. Epilepsy: Focal and Generalised Seizures
  6. Headaches: Migraine and Tension
  7. Infections: Viral, Bacterial, Mycotic
  8. Disorders of Motor Neurons and the Spinal Cord
  9. Disorders of Sleep: Narcolepsy and Insomnia