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Birdsong follows a fundamental law of human language

Birdsong follows a fundamental law of human language A fundamental law of human language has now been found in both songbirds and whales By Cody Cottier edited by Allison Parshall The twittering oโ€ฆ

Birdsong follows a fundamental law of human language
Scientific American โ€” 7 August 2026
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A fundamental law of human language has now been found in both songbirds and whales

The twittering of songbirds may bear little resemblance to human speech, but new research on Bengalese finches shows that their vocalizations do follow a fundamental structural principle found in all languages. Zipfโ€™s law states that a handful of wordsโ€”or, in this case, chirps, whistles and trillsโ€”occur frequently, while most are rare. Specifically, the most common word (โ€œthe , โ€ in English) appears roughly twice as often as the second-most common (โ€œofโ€), three times as often as the third most common (โ€œandโ€), and so on.

This peculiar frequency distribution was also documented last year in humpback whale song , meaning it has emerged in at least three evolutionary lineages that are separated by millions of years. Though these wordlike units in songbirds and whales probably donโ€™t convey specific meaning in the way that human words do, these discoveries challenge the notion that human language is wholly unique, says Simon Kirby, a cognitive scientist at the University of Edinburgh and a co-author of both the whale and songbird studies. โ€œWe suddenly have these unrelated species that do something similar to what humans do,โ€ he says. โ€œThis gives us a new dividing line, a new way of carving up communication systems in the world.โ€

The dividing line, as Kirby sees it, lies between species that learn their vocal signals culturally and those whose calls are genetically built-in. Much like language, the songs of humpbacks and many songbirds get transmitted from one generation to the next. Because so-called Zipfian word distribution is known to help human infants pick up language from the adults around them, it stands to reason that similar patterns may aid learning in young birds and whales, too.

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Itโ€™s not clear why Zipfian distribution is easier to learn; maybe the few common words (or chirps) serve as familiar anchor points, allowing listeners to draw boundaries around neighboring words. โ€œIf youโ€™re hearing this stream of sound, you donโ€™t know where the edges [of words] are,โ€ Kirby explains. โ€œBut [once] youโ€™ve recognized something, then that gives you a way in.โ€

The researchers themselves faced this very problem when they analyzed birdsong. How do you tell one unit from the next if you donโ€™t speak finch? But they applied the same method they had developed for parsing whale song. This was a simple algorithm inspired by how babies are thought to parse language: listen for uncommon sound transitions , which are more likely to occur between words than within them. The team sliced up a few hundred samples of birdsong at those transitions and measured how often each of the segmented units appeared. The results, published today in Science Advances, closely matched Zipfโ€™s law, just as with humans and humpbacks. Next the researchers plan to look for more parallels with human language, beyond just Zipfโ€™s law, that may facilitate learning in these species.

Other potential explanations for Zipfian distribution in animal communication donโ€™t involve cultural transmission. Richard Futrell, a computational linguist at the University of California, Irvine, who was not involved in the new study, notes that โ€œthere are a million different things that can give rise to Zipfโ€™s law.โ€ It crops up in earthquake magnitudes, solar flare intensities and city population sizes, to name a few. Still, Futrell adds, Kirby and his colleagues โ€œare incrementally building up this case that thereโ€™s [a] connection between Zipfโ€™s law and learning.โ€

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