Irregular galaxy
Galaxies without regular shape, often chaotic and gas-rich.
An irregular galaxy lacks the distinct, regular shape of a spiral or elliptical galaxy. It does not fit into the standard Hubble sequence classes, often appearing chaotic with no nuclear bulge or spiral arm structure. Unlike other galaxies, irregulars have no axis of symmetry in their blue-light distribution, and this lack of structure means they have few density waves. This makes them ideal for studying star formation without the influence of such waves.
About a quarter of all galaxies are thought to be irregulars, and a large portion of the Local Group consists of them, mostly distant dwarf irregulars. Irregular galaxies are divided into two subcategories, plus dwarf types. Some were once spiral or elliptical galaxies deformed by uneven gravitational forces, while others may be young galaxies transitioning between spiral and elliptical forms. They often contain abundant gas and dust, though this is not always true for dwarf irregulars. Galaxy collisions can also create them.
Irregular galaxies are typically small, about one-tenth the mass of the Milky Way, though large exceptions like UGC 6697 exist. Their small size makes them vulnerable to environmental effects, such as collisions with larger galaxies or intergalactic clouds.
**Types**
There are three major types of irregular galaxies:
- **Irr-I (Irr I):** Shows some structure but not enough to fit cleanly into the Hubble sequence. Subtypes with some spiral structure are called **Sm galaxies**; those without are called **Im galaxies**. - **Irr-II (Irr II):** Appears to have no structure that fits the Hubble sequence, often shaped by collisions or mergers. - **dI-galaxy (dIrr):** A dwarf irregular galaxy with a luminosity below 10⁸ L☉. These are considered important for understanding galaxy evolution, as they have low metallicity, relatively high gas levels, and resemble the earliest galaxies in the Universe. They may be local, more recent versions of the faint blue galaxies seen in deep-field surveys, and they contain high amounts of dark matter.
Irregular galaxies are classified as late-type, alongside spiral galaxies, in contrast to early-type elliptical galaxies. Some irregulars, especially Magellanic types, are small spiral galaxies being distorted by a larger neighbor’s gravity.
**Magellanic Clouds**
The Magellanic Cloud galaxies were once classified as irregulars. The Large Magellanic Cloud has been reclassified as type SBm (barred Magellanic spiral). The Small Magellanic Cloud remains classified as an irregular of type Im, though it contains a bar structure.
**Star Formation**
Star formation in irregular galaxies is common and varied, with some having rates comparable to spiral galaxies. The processes are the same as in other galaxy types, but the origins of star formation here are more influenced by random gas movement, massive stars, and unusually common giant HII regions affecting the interstellar medium. This is because they lack the density waves that contribute to star formation in spirals.
- proportion_of_all_galaxies
- Approximately 3–5% (including peculiar galaxies)
- typical_mass
- 0.1% to 1% of the Milky Way's mass
Lore & Background
Irregular galaxies are broken down into three major types. An Irr-I galaxy features some structure but not enough to place it cleanly into the Hubble sequence; subtypes with some spiral structure are called Sm galaxies, and those without are called Im galaxies. An Irr-II galaxy does not appear to feature any structure that can place it into the Hubble sequence, and is often shaped via collision or merger. A dI-galaxy, or dwarf irregular galaxy, has a luminosity below 10^8 solar luminosities. This type is now thought to be important to understand the overall evolution of galaxies, as they tend to have a low level of metallicity and relatively high levels of gas, and are thought to be similar to the earliest galaxies that populated the Universe.
Reader's Guide
Irregular galaxies are significant because their absence of structure leads to little density waves, making them prime areas to study star formation without the effects of density waves. Star formation in irregular galaxies is both common and varied, with some having rates comparable to spiral galaxies. The processes of star formation are the same as in other types of galaxies, but the origins of star formation in irregular galaxies are perhaps more influenced by the random movement of gas, as well as the effects of massive stars and the unusually common giant HII regions on the interstellar medium. Some irregular galaxies were once spiral or elliptical galaxies but were deformed by an uneven external gravitational force, or may be young galaxies between spiral and elliptical status. Irregular galaxies may also be formed in galaxy collisions. The Magellanic Cloud galaxies were once classified as irregular galaxies; the Large Magellanic Cloud has since been re-classified as type SBm, while the Small Magellanic Cloud remains classified as an irregular galaxy of type Im, although it does contain a bar structure.
Did You Know?
- Irregular galaxies do not fall into any of the regular classes of the Hubble sequence.
- Collectively they are thought to make up only about 3–5% of all galaxies in the nearby universe.
- Dwarf irregular galaxies typically contain abundant amounts of gas and dust, making them gas-rich.
- Dwarf irregular galaxies are thought to be similar to the earliest galaxies that populated the Universe.
Morphology and the Limits of the Hubble Sequence
Unlike the orderly spirals and smooth ellipses that dominate the Hubble classification scheme, irregular galaxies resist neat categorization. They lack a central bulge, show no spiral arm traces, and possess no axis of symmetry in their blue-light distribution. Their appearance is often described as chaotic and sporadic. Within this broad category, astronomers have carved out meaningful subtypes. An Irr-I galaxy retains some internal structure—enough to hint at organization but not enough to slot it cleanly into the Hubble sequence. Those with faint spiral hints are labeled Sm, while those without any spiral signature become Im. The Irr-II class represents the most extreme case: galaxies showing essentially no recognizable structure, frequently shaped by violent collisions or mergers. Dwarf irregulars, or dIrr galaxies, are defined by a luminosity threshold below ten to the eighth times the Sun's output. All irregulars are grouped as late-type objects, standing alongside spirals in contrast to the early-type ellipticals.
Origins, Formation, and Environmental Vulnerability
Irregular galaxies are far from rare outliers; collectively they account for roughly one quarter of all known galaxies, and they constitute a substantial fraction of the Local Group, where most appear as distant dwarf irregulars. Their origins are varied and often violent. Some were once orderly spirals or ellipses that became distorted by an uneven external gravitational pull, while others may represent young systems still transitioning between spiral and elliptical configurations. Galaxy collisions are another well-established pathway to irregularity, and the resulting shapes often carry the scars of such encounters. Because most irregulars are small—typically around one-tenth the mass of the Milky Way—they are especially vulnerable to environmental disturbances, including encounters with massive neighboring galaxies and sweeps through intergalactic gas clouds. Many harbor abundant reservoirs of gas and dust, though this is not a universal trait, particularly among the dwarf irregular subclass.
Star Formation Without Density Waves
Star formation in irregular galaxies is both frequent and diverse, with some systems producing new stars at rates rivaling those of mature spirals. The fundamental physics of star birth remains the same everywhere, yet the triggers differ. Because irregulars lack the density waves that help organize gas in spiral arms, their star-forming regions are shaped more by the random turbulent motion of interstellar gas, the feedback from massive young stars, and the unusually prevalent giant HII regions that punctuate the interstellar medium. This very absence of density-wave structure makes irregulars ideal laboratories for studying star formation in a more natural state, free from the organizing influence of spiral dynamics. Dwarf irregulars, in particular, are prized by cosmologists: their low metallicity and high gas content make them resemble the earliest galaxies that seeded the Universe, and they may serve as nearby analogs of the faint blue galaxies detected in deep-field surveys. These small systems also carry surprisingly large fractions of dark matter.
The Magellanic Clouds and the Spectrum of Irregularity
The Magellanic Clouds offer a fascinating case study in how galaxy classification can shift with deeper observation. The Large Magellanic Cloud, long catalogued as an irregular, has since been reclassified as a barred Magellanic spiral (SBm), revealing an underlying ordered structure that was previously obscured. Its smaller companion, the Small Magellanic Cloud, still carries the Im designation despite containing a bar structure, illustrating how even partial order can leave a galaxy in the irregular category. More broadly, the so-called Magellanic type encompasses small spiral galaxies whose shapes are being progressively distorted by the gravitational pull of a larger neighbor, blurring the line between spiral and irregular. These cases remind us that morphology is a snapshot of a galaxy's dynamic history rather than a fixed identity.
Frequently Asked Questions
What is an irregular galaxy?
An irregular galaxy is a galaxy that defies the neat categories of the Hubble sequence, showing no central bulge, no spiral arms, and no smooth elliptical outline. Instead of a tidy structure, it presents as a lopsided, disorganized collection of stars and gas.
How common are irregular galaxies in the universe?
They account for roughly 3–5% of all nearby galaxies once peculiar types are folded into the tally. The Local Group is a notably poor example, since most of its members are dwarf ellipticals and dwarf spheroidals rather than irregulars.
What do irregular galaxies actually look like?
They appear as chaotic, asymmetric clumps with no recognizable arms or core, often packed with nebulae and ionized gas. Think of a smudged watercolor rather than the pinwheel or football shapes you see in spiral and elliptical galaxies.
How big are irregular galaxies compared to the Milky Way?
Most are dwarf-sized, carrying only about 0.1% to 1% of the Milky Way's total mass. That makes them far smaller and fainter than our own galaxy, often visible only to large telescopes.
Why do astronomers care about irregular galaxies?
Their messy shapes frequently signal a recent gravitational encounter or merger, giving researchers a live look at how galaxies evolve. Their abundant gas also means active star formation is underway, making them natural laboratories for studying how new stars are born.
More in Astronomy & Space 1-24
Spotted an error? Know more?
This is a living reference — every entry is fact-audited, and reader corrections feed straight into our audit queue. Suggest an edit · See this site's audit record
