Showing posts with label Bovidae. Show all posts
Showing posts with label Bovidae. Show all posts

Monday, 15 June 2026

Bison which killed woman in South Dakota to be relocated.

A Bison which killed a 70-year-old Canadian woman in Custer State Park, South Dakota, is to be relocated to another area. The incident happened on 18 May, when the woman and her husband encountered a group of five Bison bulls on the Grace Coolidge Trail, which runs through the park. At this time the bulls were about 500 m ahead of the couple, who allowed them to move off before following. A little while later the couple encountered the Bison again, though this time they were only about 15 m away. The couple waited for them to move before starting to follow, but this time moved while the Animals were still in site, causing one of the bulls to turn and charge.

Bison in Custer State Park, South Dakota. Wikimedia Commons.

The initial charge resulted in the woman being thrown about two metres in the air, sustaining serious injuries to the leg and abdomen. The Bison then stood over the injured woman for about 15 minutes while her husband hid behind a tree and called the local sheriff's office. During this time the woman remained conscious, and was able to talk to her husband. The bull eventually wandered off, after which the husband approached the woman, but this caused the Animal to turn and charge again, this time throwing her about three meters into the air and causing fatal injuries. After this the Bison walked off, and the husband attempted to perform CPR, being joined shortly after by first aid-trained park staff, but it was impossible to save her. The death was the first Bison-related fatality in the park for 21 years.

Following the incident, rumours began to circulate that the park authorities planned to euthanize the Bison, leading to a public outcry, and many people contacting the South Dakota Governor’s Office, the South Dakota Game, Fish, and Parks and Custer State Park, asking for the Animal to be spared. On Wednesday 10 June the Rosebud Sioux Tribe Game, Fish and Parks announced that they were willing to rehome the bull and take care of its welfare. 

Bison are large animals, the American Bison can reach 1.8 m in length and weigh around 900 kg, and have notoriously unpredictable tempers, often appearing placid and indifferent to their surroundings, and then charging without warning. They can reach speeds of 35 km per hour, and both sexes have horns, which can make unexpected charging highly dangerous.

North America is thought to have been home to about 50 million Bison at the beginning of the nineteenth century, a number that fell to less than a thousand individuals by the middle of the twentieth century due to over-hunting, not just for the purpose of food, but as part of a conscious effort to change the landscape from one amenable to traditional, Native American, lifestyles to a landscape suitable to European-style farming. However since the mid-twentieth century conservation efforts and breeding programs have reversed this decline, with the population now about 530 000 across the continent, including around 40 000 in South Dakota.

See also...

Sunday, 29 December 2024

Late Pleistocene-Early Holocene faunal remains from the Waterfall Bluff Rock Shelter in the Mpondoland region of Eastern Cape Province, South Africa.

A number of coastal archaeological sites across Southern Africa provide an excellent record of faunal and Hominin interactions during Pleistocene interglacial periods and the Holocene, but a much poorer record of the same during glacial periods, when sealevels were lower, with the effect that most coastal settlements during these intervals would be below modern sealevels. The Waterfall Bluff Rock Shelter in the Mpondoland region of Eastern Cape Province, appears to be an exception to this, with an archaeological record which begins during Marine Isotope Stage 3 (roughly 39 000 to 29 000 years ago) to the Early Holocene (about 8000 years ago), and includes the Last Glacial Maximum, and the glacial/interglacial transition at the end of the Pleistocene. This site has yielded the remains of Fish, Shelfish, and Marine Mammals, which demonstrate that the hunter-gatherer populations using the rock shelter were utilizing coastal resources even during the Last Glacial Maximum.

In a paper published in the South African Journal of Science on 4 December 2024, Sandee Oster and Jerome Reynard of the School of Geography, Archaeology and Environmental Studies at the University of the Witwatersrand, Hayley Cawthra of the African Centre for Coastal Palaeoscience at Nelson Mandela University, and the Minerals and Energy Unit at the South African Council for Geoscience, Irene Esteban, also of the African Centre for Coastal Palaeoscience at Nelson Mandela University, and of the Archaeological and Archaeometric Research Unit and Institute of Archaeology at the University of Barcelona, Justin Pargeter of the Department of Anthropology at New York University, and the Rock Art Research Institute at the University of the Witwatersrand, and Erich Fisher, again of the African Centre for Coastal Palaeoscience at Nelson Mandela University, and of the Evolutionary Studies Institute at the University of the Witwatersrand, the Interdisciplinary Center for Archaeology and the Evolution of Human Behavior at the University of Algarve, and the Institute of Human Origins at Arizona State University, present a preliminary analysis of the fauna at the Waterfall Bluff Rock Shelter, and discuss the implications of this for the local palaeoenvironmental and palaeoecological conditions, and how this would have affected the subsistence activities of hunter-gatherer populations in the area.

Eastern Mpondoland, defined as the area between the mouths of the Mthatha and Umtamvuna rivers, has a diverse landscape with a number of deeply incised plateaus, and areas of sourveld grassland, forest vegetation and bushveld, with patches of Southern Coastal Forest, Southern Mistbelt Forest and Scarp Forest. This area has a diverse fauna including woodland species such as bushbuck, Tragelaphus scriptus, Blue Duiker, Philantomba monticola, and Grey Rhebok, Pelea capreolus, grassland species such as Southern Reedbuck, Redunca arundinum, Oribi, Ourebia ourebi, and Bontebok, Damaliscus pygargus,  as well as mixed environment species such as Eland, Tragelaphus oryx.

Waterfall Bluff Rock Shelter is located 24 m above sealevel, close to the Mlambomkulu River Waterfall. It has yielded an assemblage of lithic tools, predominantly made from hornfels (metamorphically altered sandstone), as well as Plant remains which have been used to demonstrate that all the vegatation types found in the area have been present since the End Pleistocene. More than 17 000 items have been recovered from the site to date, including tools, Plant, and Animal remains.

Two broad stratigraphic layers, termed Stratigraphic Aggregates, or 'StratAggs', have been determined from the rock shelter. These are somewhat homogenised internally, but apparently distinct from one-another. The oldest is the Light Brown Coarse Sands, which has been dated to between 37 600 and 12 500 years before the present. Overlying this is the Shell-Rich Clayey Sands, dated to between 11 000 and 10 500 years before the present, both of which can be sub-divided into a number of discrete sub-units, termed sub-Stratigraphic Aggregates, or 'SubAggs'.

The ages and locations of SubAggs at Waterfall Bluff. Oster et al. (2024).

The material used in Oster et al.'s study was excavated in 2016 under permit from the Eastern Cape Provincial Heritage Resources Authority, and with the support of King Zanozuko Tyelovuyo Sigcau, Nkosi Mthuthuzeli Mkwedini, and the Lambasi AmaMpondo community. Specimens were compared to reference material in the collection of the Ditsong National Museum. Where Bovid remains could not be identified they were split into four size classes, with (1) being the smallest, and including species such as Oribi, and (4) is the largest, including species such as Eland. Where the species could be determined, ungulates were categorised as grazers, browsers or mixed feeders.

The majority of the specimens came from the Early Holocene Shell-Rich Clayey Sands, with a smaller amount from the Late Pleistocene Light Brown Coarse Sands. The majority of the material was extremely fragmentary, typically less than 2 cm on the longest dimension. About 10% of the material showed signs of Human modification, such as cut or percussion marks, though only one of these modified bones could be assigned to species level, a charred astragalus with cut marks from the Early Holocene determined to come from a Blue Duiker.

The most common Animals in the sample were Bovids (the group that includes Antelopes), while the most easily identifiable remains were those of Rock Hyraxes, Procavia capensis. A single Seal-tooth was found in a Pleistocene layer dated to between 22 560 and 19 430 years before the present. This was determined to have come from a Leopard Seal, Hydrurga leptonyx, a species which today is found on Antarctic and sub-Antarctic islands, and the waters which surround these, although occasional visitors to South Africa are recorded. The presence of such a tooth in a Pleistocene layer at the Waterfall Bluff Rock Shelter could imply that during this period, when sea temperatures would have been about 3° lower that today, Leopard Seal colonies were found further north, on the South African coast, or simply that individuals occasionally visited the area, as they do today. Three Seal bone specimens were also found, a vertebra and two bone fragments, from both the Pleistocene and Holocene layers, although these could not be identified more precisely.

Leopard Seal tooth from Waterfall Bluff Rock Shelter (#CN47208, Lot 303). Oster et al. (2024).

Only two Bovid specimens could be identified from the Late Pleistocene deposits, a Common Duiker, which is an obligate woodland species, and an Eland, which is environmentally adaptable. No obligate grassland species could be identified, but with the very small sample size, it would be problematic to place much emphasis on this.

Both Fish and Seal remains were found in Late Pleistocene layers along with marine Shelfish and possible Barnacle fragments, suggesting that the area was within practical range of the coast even during periods of glaciation. This is not completely surprising as the coastal shelf is narrow on this part of the coast (i.e. at the edge of the continental shelf the seafloor is steep, so that the sealevel can drop a long way vertically without moving far horizontally), although even at this time it was probably about 8 km from the rock shelter.

In the Early Holocene, Bushbuck and Reedbuck were both common. Since these species favour riverine environments, suggesting that the Mlambomkulu River had continued to run at this time; this supports earlier findings of incisions on the (now submerged) continental shelf, which also support the presence of a river. Reedbuck also favour grassland environments, as do African Buffalo and Bontebok/Blesbok, which were also fairly common in the Holocene layers, suggesting a grassland environment was definitely present by this time. The presence of Blue Duiker and Vervet Monkeys, which are obligate woodland species, indicate that woodland was still present, hinting at an environment not much different from today.

See also...

Monday, 31 July 2023

Cattle in the rock art of Wadi Bajdha, Saudi Arabia.

Saudi Arabia covers an area of about 2 million km² with rock art known from every area of the country. A comprehensive survey of the rock art of Saudi Arabia begun in 1981 took over 15 years to complete, and recorded over 2000 sites with pre-Arabic and early Arabic inscriptions, as well as thousands of petroglyphs (images made by inscribing into a rock surface).

In a paper published in the Journal of Historical Archaeology and Anthropological Sciences on 3 July 2023, Majeed Khan and Faisal Al-Jabrin of the Antiquities Sector of the Saudi Ministry of Culture, describe a newly discovered rock art site at Wadi Bajdha in the Tabuk Region of Saudi Arabia, and discuss the implications of the images discovered there.

The art is located in a deep valley surrounded by mountains to the northwest of the city of Tabuk, where water collected during the rainy season. The site has historically been visited seasonally by Bedouin herders, and may have, at times, hosted permanent settlements.

The rock art is located on a vertical rock face on the side of a hill, which appears to contain images from different periods. The oldest figures on this panel appear to be a group of Cattle with short horns and flat humps. These Cows appear to be different from both the long-horned Oxen depicted at the Neolithic sites of Jubbah and Shuwaymis, and the high-humped Indian Zebu-like Cattle depicted in the Najran area of southern Saudi Arabia. Khan and Al-Jabrin suggest that this art represents the second phase of Cattle domestication in Saudi Arabia, following the Neolithic long-horned Oxen phase.

The rock art gallery at Wadi Bajdha in the Tabuk Region, in north of Saudi Arabia. Khan & Al-Jabrin (2023).

The rock art of Saudi Arabia is highly diverse, and appears to have been produced in a range of contexts with different purposes and meanings. Neolithic images appear to show Oxen as both Animals hunted as prey, and as sacred or possibly Divine Animals. Chalcolithic images have been interpreted to show Oxen as mythical creatures, deities, and sacrificial Animals. With this in mind, Khan and Al-Jabrin are careful to compare the Wadi Bajdha rock art to rock art from other locations, before drawing any conclusions about its meaning.

An open air temple, where Cows are depicted with idoliform images possibly deities or gods, located in Wadi Damm northwest of Tabuk. Believed to be evidence of Cow worship in Arabia. Khan & Al-Jabrin (2023).

Archaeological evidence and rock art depictions both suggest that Wild Cattle, Bos primigenius, were present in Arabia as both wild and domestic Animals during the Neolithic. At sites such as Shuwaymis, Jubbah, Hanakiya, large numbers of Oxen are depicted, with flat backs and exaggerated horns. These resemble European Wild Cattle, Bos primigenius, an Animal not known after the Neolithic climate shift, which occurred about 7900 years ago in northern Arabia, and led to a shift from a cool, humid climate to a hot, arid one.

Long-horned flat-back Oxen from the  Neolithic Shuwaymis site in the north of Saudi Arabia. Evidence of the presence of Wild Oxen in Arabia. Khan & Al-Jabrin (2023).

Petroglyphs of Cattle in Saudi Arabia represent at least three separate climatic phases, which each phase associated with images of different sizes, styles, and execution techniques, which has enabled the development of a chronology for such art, which links Animal type to climate shifts.

Earliest known image of Long-horned Cow, Bos primigenius, from Saudi Arabia dated to about 9000 BC. This image located at the Neolithic Jubbah, site in the north of the country. Superimposed on the Cow is a Camel figure of much later period. There is a difference of several thousand years between the two Animals; representing two climatic phases; cool and humid (Cow) and hot and dry conditions (Camel). Khan & Al-Jabrin (2023).

The style of the rock petroglyphs at Wadi Bajdha suggests that the art dates from the Chalcolithic Period, about 3500 BC. At this time people in the area had domesticated Cows and Goats, and engaged in small-scale hunting along with the hunting of Ibex. Camels did not appear in Arabia until the Bronze Age (along with Date Palms), and are absent from the Wadi Bajdha art. 

A pregnant Cow. A small baby can be seen inside the mother Cow, a firm indication of a domesticated Cow. Domesticated small horned and flat back Cattle are found on several sites in northern and southern Arabia representing the middle phase of Chalcolithic domesticated Cows, around 3500 BC. Khan & Al-Jabrin (2023).

The left corner of the Wadi Bajdha panel depicts a number of large, Chalcolithic-style Cows, as well as several Ibex, and some Horse riders with lances. These appear to have been made by artists from different periods, who took care not to overlap the art, as well as some tribal symbols. Battles between riders armed with lances was common among Bedouin tribes into the recent past.

The third phase in the art gallery represented by Camel and pre-Arabic Thamudic inscriptions in addition to Horse riders with long lances in fighting attitude drawn by the people representing the last phase of rock art in this gallery. Khan & Al-Jabrin (2023).

The Wadi Bajdha art shows apparently domesticated Cattle, including a pregnant female with a baby inside, but no images of Camels, suggesting that this art is Chalcolithic in origin. The site is likely to have has good living conditions during this interval, supporting a permanent or semi-permanent population, who presumably left as the climate continued to get hotter and drier. Many other rock art sites in Saudi Arabia show similar combinations of Human and Animal figures, and appear to have been abandoned after short periods of occupation. This suggests that the population of Saudi Arabia has been largely nomadic for much of its history, inhabited by groups who moved regularly depending on the availability of water. 

See also...

Follow Sciency Thoughts on Facebook.

Follow Sciency Thoughts on Twitter.


Saturday, 7 January 2023

Understanding the message behind Europe's Upper Palaeolithic cave art.

Prior to about 37 000 years ago, cave art in Europe consisted largely of patterns of hand-prints, rectangles, and dots. After this time, a wealth of engraved and painted images swept across the continent, depicting the Animals of the Late Pleistocene with a realism that still impresses modern artists. Almost all of these artworks depict large herbivorous Animals, thought to have been important food sources for hunters on the Eurasian Steppes. In most cases it is easily possible to tell what species is being depicted, and even what time of year the image was portraying. The paintings on the walls of the Lascaux Cave in southwest France show a sequence of rutting Animals which can be interpreted as an ethological calendar (calendar of Animal behaviour), and at other sites the presence of Cervids (Deer) with antlers, and the aggressive postures of these Animals, have been interpreted as depiction of a particular season.

However, this cave art does not just depict Animals, alongside these images are frequent abstract marks, mostly dots and lines, but including other shapes such as 'Y's. These marks are usually either directly adjacent to the Animal images, or actually overlie them, suggesting a strong connection between the two. Similar marks have been found carved onto bones, dating from the onset of the European Upper Palaeolithic (roughly equivalent to the African Middle Stone Age) onwards, and are generally thought to have had a recording function. It has been generally assumed that such marks are numeric, and probably recording periods of time, but their exact message has remained unclear. 

Previous studies have found that 66% of the Animal depictions in Upper Palaeolithic European cave art are associated with other symbols, although these vary in form, and probably convey a variety of messages. It is also likely, given the long chronological range and wide geographical area over which these symbols are found, that more than one form of symbolic recording is present. 

In a paper published in the Cambridge Archaeological Journal on 5 January 2023, independent researchers Bennett Bacon, Azadeh Khatiri, and James Palmer, together with Tony Freeth of the Department of Mechanical Engineering at University College London, Paul Pettitt of the Department of Archaeology at the University of Durham, and Robert Kentridge of the Department of Psychology at the University of Durham and the Canadian Institute for Advanced Research programme in Brain, Mind and Consciousness, focus on two clear and simple patterns found in many of these depictions: Animals found associated with rows of dots and/or lines (which are presumed to be functionally the same) and branching 'Y' symbols. 

These symbols are found throughout the European Upper Palaeolithic, although most common from the later portion of this period, possibly implying that they became more common over time. Bennet et al. consider the meaning of the Animal depictions to be unambiguous, but consider the lines, dots, and 'Y' symbols to be potentially interpretable, and related to the ethology of the Animals they are found close to. The basis for this assumption is that the dots and lines in these sequences represent numbers, and that the combination of numbers and recognisable Animals gives the basis for deciphering messages tens of thousands of years ago.

Examples of animal depictions associated with sequences of dots/lines. (a) Aurochs: Lascaux, late period; (b) Aurochs: La Pasiega, late; (c) Horse: Chauvet, late (we differ in opinion with the Chauvet team, for whom it would be early); (d) Horse: Mayenne-Sciences, early; (e) Red Deer: Lascaux, late; (f) Salmon: Abri du Poisson, early; (g) Salmon (?): Pindal, late; (h) Mammoth: Pindal, early. Bacon et al. (2022).

It is now generally accepted that the regular marks left by Upper Palaeolithic peoples represent a form of counting, and therefore the storage of information outside of the brain. The processing of numbers can be done in several ways; by subitisation, or simply recognising small groups of objects at a glance (e.g. six tins in a box), by cardinality, or counting objects (twenty sheep in a field), or by ordinality, being able to place objects within a sequence (the third house in a row). Experimentally these have been shown to be distinct skills, carried out in different parts of the brain, and children have been shown to develop these skills in order as they develop, starting with subitisation and progressing to ordinality. 

In 1991, Alexander Marshack suggested that the dots and lines seen in Upper Palaeolithic art were numbers, most likely representing periods of time. In his view, each dot or line was likely to represent a day, with the sequences of pictures they were associated with being lunar calendars. The lunar calendar theory failed to win many supporters within the academic community, but the concept of the representations as a simple way of recording events outside the mind did gain wider acceptance. 

The grouping of engraved marks on bones and antlers from the Upper Palaeolithic has led to the conclusion that these marks were being used to store information, and that this information was most likely numeric. This has in turn led to the suggestion by cognitive archaeologist Karenleigh Overmann  that once Humans had begun to collect numerical data, it was almost inevitable that they would apply this to time, and in particular the seasons, important phenomena in the lives of people so closely dependent on nature.

The sequences of dots and lines found adjacent to Palaeolithic Animal images fit the same criteria for representing numbers as the carvings on bones and antlers, and are consistently arranged in lines horizontal to the orientation of the Animal images (which are often on ceilings). These sequences vary in length, but appear to have been recording numbers using the additive principle, where an extra mark represents an increase by one (as in the Roman numerals, I, II, III; or the Chinese 一, 二, 三).

In the 1990s archaeologist Carole Fritz assembled a database of 90 symbols used on portable objects associated with the Late Palaeolithic Magdalenian Culture, collected from the Dordogne and Pyranees, and including linear marks, dashes, angular signs, arc shapes, broken lines, dots, various impact marks and combinations and repetitions thereof. These symbols were used consistently at sites associated with the Magdalenian Culture, with no discernible variations over space and time. Based upon this, Fritz concluded that these marks represented a method of storing information recognised across the Magdalenian Culture, although the exact meaning implied remained obscure.

Hunting appears to have been an important source of nutrition to Upper Palaeolithic peoples, with the most important prey species being Horses, Bovids, Cervids, Caprids, Proboscideans, Birds, and aquatic Animals. Modern populations of these Animals show strong seasonal patterns of behaviour, with cycles of mating and birthing, and seasonal migrations in the spring and autumn. During this seasonal cycle, many of these Animals shift between large and small groups, and are present on different parts of the landscape.

Zooarchaeological studies have revealed a similar seasonality in the behaviour of these Animals during the Pleistocene, and it seems likely that a knowledge of migration patterns and breeding cycles would have been key information to Upper Palaeolithic hunters dependent on these Animals for survival. As such, it is unsurprising that these Animals were a central preoccupation for these people, and that images of them dominate their art. Furthermore, at sites such as Lascaux Cave depict these Animals in such detail that their pelage, hair, antler growth, gregarious and aggressive behaviour and other indications of rutting can be used to show that their breeding behaviour was also of great interest. Many of the Animal images at Lascaux are associated with symbols; for example a row of swimming Stags, generally interpreted as an autumn migration scene, is accompanied by a row of seven red dots, while a mating scene with male and female Aurochs in their summer coat is marked with four black dots. At a scene from the slightly later Font de Gaume Cave two Reindeer stags are depicted with locked antlers, and marked with a set of eight dots.

Bacon et al. accept the premise that the sequences of dots and lines associated with the Upper Palaeolithic Animal images are saying something about the Animals in the images with which they are associated. Furthermore, they accept that these are abstract representations, rather than parts of the images, noting that several different taxa are consistently annotated with the same number of dots, but on different parts of their anatomies. Given this consistency, they also accept that the message conveyed by the dots is numerical in nature, being either cardinal or ordinal.

Working from this, they assume that the objective was to convey some form of useful numeric information about specific prey Animals to future readers. Given this, it seems unlikely that they were recording the number of Animals sighted, the time at which they were sighted, or even the number of Animals killed. It is likely, however, that they would have wanted to record information about migrations, times when Animals could be relied upon to form aggregations, and times when Animals were most vulnerable to attacks by hunters (i.e. mating and birthing). Working from these assumptions, Bacon et al. propose that the timing of such events is the most logical numerical information to have been juxtaposed with the Animal images.

If Upper Palaeolithic people were able to record numbers using the additive principle, then it is quite likely that the rows of dots or lines seen on their art represent amounts of time. Furthermore, the number of dots or lines associated with an Animal image is never particularly high (and never higher than thirteen), so if each dot or line represents a single unit of time, then that unit is almost certainly a lunar month, since this is one of the few units which would have been obvious to pre-agricultural people. Based upon this, Bacon et al. believe that the dots and lines present in Upper Palaeolithic images represent lunar months, presenting information about the behaviour of Animals on a seasonal calendar. 

If this is correct, then the calendar being used by these people must have had an established beginning; a time of year against which the tallies could be counted, giving the people using it a point to count from. Most historical calendars have their roots in astronomical observations, counting from the solstices and equinoxes. These give accurate dating systems usable by agriculturalists, but are difficult to observe, and likely to have been of limited use to Palaeolithic hunters. Rather, these people lived in a world dominated by meteorological events, and seasonal cycles in temperature and the behaviour of Plants and Animals. One seasonal event which Bacon et al. believe would have been hard for Palaeolithic peoples to miss would have been the annual spring thaw. This is widely referred to using the French term bonne saison by zooarchaeologists, marking a period when rivers unfroze, snow melted, and the world began to turn green. This would not have occurred everywhere at the same time, with spring coming several weeks earlier in southern Europe than in the north, but would have provided a useful starting point for a yearly calendar used by people needing to track the migrations and mating habits of Animals, but not exchange accurate date information with distant communities. 

One of the problems for peoples wanting to record time in the ancient world was that the solar year cannot be divided into an exact number of lunar months (there are approximately 12.37 lunar months in one solar year). This led to the development of a variety of complex calendars, with periodic adjustments being made to bring the solar and lunar cycles into alignment. None of this is likely to have mattered much to Upper Palaeolithic peoples counting from the bonne saison, who could have just counted the lunar months from each spring thaw into the depths of winter, when it would have become irrelevant. 

Bacon et al. therefore theorise that the sequences of dots and lines in Upper Palaeolithic art represent lunar months after the bonne saison. Therefore, if an Animal is represented along with a sequence of three dots, then the intent was to imply some important feature of that Animal's life cycle happened three months after the spring thaw. This is technically an interval calendar, recording that events happened a certain period after the bon saison, rather than a true calendar recording accurate dates.

Furthermore, Bacon et al. note that many of the sequences contain a 'Y' symbol in the midst of a series of dots or lines, which they believe represents a significant event in the life cycle of these Animals, and reason must be one of four possible annual occurrences, spring migration, mating, birthing, or autumn migration. 

The 'Y' symbol is one of the most commonly depicted symbols in Upper Palaeolithic art, and therefore presumably has an important meaning. Bacon et al. note that the position of this symbol within sequences varies between Animal taxa, but remains constant for each taxon, implying that it is carrying species specific data, and that that data appears to be ordinal in nature, within an ordinal sequence. Thus the total number of symbols potentially records one piece of information, with the position of the 'Y' symbol conveying a second. Bacon et al. further propose that, given the known biology of the Animals involved, the 'Y' symbol is most likely to represent birthing.

In order to test this hypothesis Bacon et al. compiled a database of Animal symbols with associated symbol sequences, and compared these to known data on the reproduction and migration of their modern relatives, and information about Pleistocene Animals established by previous zooarchaeological studies. Having eliminated any dubious or ambivalent sequences from the record, Bacon et al. were left with 256 sequences containing a 'Y' symbol and 606 sequences which did not.  The majority of these sequences came from France and Spain, although some came from further east. Chronologically, the images span the whole of the Late Upper Palaeolithic, although the majority come from the end of this period. 

Bacon et al. initially divided their data into two chronological sections, the Early and Middle Upper Palaeolithic Aurignacian and Gravettian cultures, and the Late Upper Palaeolithic Solutrian and Magdalenian cultures, but surprisingly no difference could be found between these datasets, suggesting that, contrary to expectations, the same data-recording system seems to have persisted in Europe for over 20 000 years. 

For the sake of convenience, Bacon et al. sorted some of the Animals depicted into groups, such as Cervids, Caprids, Birds, and Fish, while others were retained as separate species, i.e. Bison, Aurochs, Horses, Mammoths and Rhinos. Other species, such as Snakes and Wolverines, were present, but in very low numbers, and were excluded from the dataset, as were images of Humans.

In order to make the comparison, Bacon et al. converted the expected birthing season for the Animals into months relative to the Pleistocene bonne saison. Thus, assuming the bonne saison started around the start of May, the birthing season for European Bison, typically August, should be 3 or 4. Such a calendar is necessarily approximate, given that it is based upon seasonal events which might themselves vary from year to year, and will certainly vary regionally.

Bacon et al.'s prediction was that the 'Y' symbols related to each Animal group should be clustered, rather than randomly distributed throughout the sequences, and that these clusters should correspond to the predicted birthing seasons of the Animals, adjusted to an ordinal calendar rooted at the bonne saison. Since this should be different for the different groups, the position of the 'Y' symbol in the sequence should also vary between groups.

This prediction proved to be true for the majority of the groups, with the 'Y' symbol being both consistent and coinciding with the predicted birthing season for Aurochs, Bison, Horses, Fand Mammoths, and less clear but still matching the prediction for Cervids. Only Caprids failed to match the prediction, with no clear pattern observable in the data for this group. No correlation could be made between the position of the 'Y' symbols and the predicted times of mating or migration. However, the observed total number of marks correlated to the predicted mating season for Aurochs, Bison, Horses, Mammoths, and probably Cervids.

The two non-Mammalian groups, Birds and Fish, showed slightly different patterns, with the 'Y' correlating with mating and the end of the line with hatching for Birds, and the 'Y' correlating with the spring migration and the end of the line with hatching in Fish; in both cases the sequence relates to the appearance of a food source.

Bacon et al.'s data provides strong statistical evidence for a correlation between the position of a 'Y' symbol in a sequence associated with an image of an Animal, and the birthing season of that Animal, as calculated on an interval lunar calendar rooted in the Pleistocene bonne saison. It also provides weaker statistical support for the total number of marks representing the mating season of the same Animals. 

The idea of Upper Palaeolithic peoples in Europe using a form of numeric notation using notches, lines, and other marks has been accepted for some time, and is no longer really controversial. Based upon this, it has also been generally assumed that other marks used by these people were recording some form of information, although the exact nature of this information has, until now, remained unclear. 

Bacon et al. propose that the symbols associated with the (unambivalent) Animal images relates directly to the biology and behaviour of those Animals, providing a key to understanding the Upper Palaeolithic notation system. This is based on the assumption that the position of a particular mark, the 'Y' symbol, within a sequence of simpler marks (dots or lines), represents a key event in the life cycle of these organisms, in this instance the birthing season, something supported by a statistical analysis of the data.

This means that these Upper Palaeolithic people had a means of preserving information which could be read back after thousands of years, by people who might have quite different languages, but understood the common notation system (we know little of the languages spoken in the Upper Palaeolithic, but they are unlikely to have remained constant for tens of thousands of years). The widespread use of this system over long periods of time and a wide geographical area suggests that it was important to record this information in a way that went beyond oral traditions (although these are likely to have also been used).

The symbols represent more than a simple tally, and Bacon et al. propose that they represent the development of a simple calendar, based upon meteorological events and the biology of important prey Animals. This would predate by many thousands of years any previously known calendar or writing system.

It is far from clear how widely the interpretation of this data would have been understood in the communities which produced it. Objects, such as bones or antlers, with tallies on them are widely known from this period, and would presumably have been present in domestic environments, carried by members of the community. However, the cave art was typically placed in deep cave environments, where it was potentially not seen by the whole community, and may have been restricted to a small number of people.

Bacon et al. do not argue that their interpretation is exclusive of the artworks having had other purposes, aesthetic or ritual, nor do they claim to have unravelled all of the meaning behind the symbols (other symbols are present in the cave art, which they have not included in this study). Furthermore, they do not assert that this notation system was used by all peoples present in Europe throughout the Upper Palaeolithic, and acknowledge that there are plenty of instances of Upper Palaeolithic art in which Animals are depicted without the presence of additional symbols of any kind.

They do however, believe they have uncovered a method of storing data about the behaviour of important prey Animals, which was used in parts of western and central Europe for a period which lasted from about 37 000 years ago to about 13 000 years ago. In this interpretation, the individual images do not represent individual Animals, but are instead representative of entire species, and the behaviour of these species as experienced by the creators of the art. 

The rows of symbols and position of marks within them represent a simple syntax combining linear and ordinal numbers to record and communicate information, a form of intellectual abstraction, something which is considered to a key achievement of modern Humans (Upper Palaeolithic peoples are universally accepted as fully Modern Humans). This ability to record a combination of information derived the behaviour of Animals, number-based information, seasonal meteorology, and lunar months, therefore represents a significant intellectual achievement. This provided a system to preserve this information that went beyond oral tradition, and enabled the comparison of data from multiple years, presumably enabling the people who collected it to make estimations about variations in natural phenomena, something hard to do with purely oral records.

This raises the question of whether this system could genuinely be called writing. The system does seem to be able to deal with discrete quantities, i.e. using numbers to say something about the Animals they are associated with, rather than just counting the numbers. Furthermore, the use of placement to determine the value of the 'Y' symbol is a precursor of the use of place to show the value of a number (as in 1, 10, 100), something previously assumed to have been a Sumerian invention. It could even be considered that the 'Y' symbol represents a verb, 'to give birth', although this is less than clear, it could simply be a noun such as  'birth' or 'birthplace'.

The common modern use of the term language implies that it has a phonetic connection to a spoken language, generally that used by the writer. This is again thought to have originated in ancient Sumer, Mesopotamia, around 3300 BC, when a system comprising a mixture of pictograms and abstract numerical symbols first appeared. These system evolved into Cuneiform, which is considered to be a script rather than a language (in the sense that the modern English and French languages are written in Latin script). A form of record-keeping using small tokens is known to have been used in the Near East in the Neolithic, during the tenth millennium BC, with the system evolving over time and being widespread in the region by the sixth millennium BC. By the fourth millennium BC these tokens appeared to have taken other, non-numeric functions, something which evolved further into the Cuneiform script of Uruk-era Sumer. 

Bacon et al. postulate that the European Upper Palaeolithic system actually conveys more information than the first Mesopotamian scripts, in that in relates the behaviour of wild Animals to a meteorologically derived calendar, whereas the earliest Mesopotamian records appear to have just recorded quantities of items. Based upon this, they argue that this system can justifiably be called a script. However, they note that the system gives no indication as to how the people using it would have described the Animals depicted, the Moon or its phases, or the bonne saison, although they do assume that these people would have been able to describe all these things orally.

The European Upper Palaeolithic recording system appears to contain no grammatical syntax, which would justify its description as a true written language, but does seem to be recording data at least as well as the proto-Cuneiform script of ancient Sumer (although, unlike the Sumerian records, this system could not be described as 'administrative documents'). 

For this reason Bacon et al. do not press the claim that this system should be seen as a language (something they see as potentially controversial, and at best semantic), but a form of proto-writing forming a step between a simple tallying system and a true writing system. They are aware that this claim is likely to be contested, and that others in the field are likely to come up with other ideas about what this system should be called. 

For the time being they restrict themselves to describing the system as a form of proto-writing, conveying a phrenological/meteorological calendar, although they welcome debate on the subject. However this system should be described, it clearly represents a system of symbolic record-keeping dating from tens of thousands of years before the earliest Sumerian writing system, making it a highly significant discovery.

See also...

Follow Sciency Thoughts on Facebook.

Follow Sciency Thoughts on Twitter.


Sunday, 28 July 2019

Charging Bison injures nine-year-old girl in Yellowstone National Park.

A nine-year-old required medical treatment after being charged by a Bison in the Yellowstone National Park this week. The unnamed girl, reported to be from Odessa, Florida, was part of a group of about 50 tourists that surrounded the adult male Bison on Monday 22 July 2019. The Bison apparently put up with the tourists for about 20 minutes before losing its temper and charging, with the girl being caught after adults managed to get out of the way.

Two images taken from a video clip of a Bison charging a nine-year-old girl the Yellowstone National Park this week. Yellowstone National Park.

Bison are large animals, the American Biron can reach 1.8 m in length and weigh around 900 kg, and have notoriously unpredictable tempers, often appearing placid and indifferent to their surroundings, and then charging without warning. They can reach speeds of 35 km per hour, and both sexes have horns, which can make unexpected charging highly dangerous.

North America is thought to have been home to about 50 million Bison at the beginning of the nineteenth century, a number that fell to less than a thousand individuals by the middle of the twentieth century due to overhunting, not just for the purpose of food, but as part of a conscious effort to change the landscape from one amenable to traditional, Native American, lifestyles to a landscape suitable to European-style farming. However since the mid-twentieth century conservation efforts and breeding programs have reversed this decline, with the population now measured in the hundreds of thousands, including around 5000 in the Yellowstone National Park.

See also...

https://sciencythoughts.blogspot.com/2019/06/muntiacus-gigas-new-specimen-of-giant.htmlhttps://sciencythoughts.blogspot.com/2018/03/giraffe-tracks-from-late-pleistocene-of.html
https://sciencythoughts.blogspot.com/2018/01/calculating-role-of-pleistocene-refugia.htmlhttp://sciencythoughts.blogspot.com/2016/10/understanding-ancestry-of-european-bison.html
https://sciencythoughts.blogspot.com/2016/08/lightning-kills-323-reindeer-in.htmlhttps://sciencythoughts.blogspot.com/2016/01/ammotragus-lervia-diet-of-barbary-sheep.html

 
 
 
 
 
 
 
Follow Sciency Thoughts on Facebook.

Monday, 24 October 2016

Understanding the ancestry of the European Bison.

The European Bison, or Wisent (Bison bonasus), is one of a very small number of megafaunal (large) animal species to have survived from the Pleistocene in northern temperate latitudes. However the origin of the European Bison is less clear than it would immediately seem, as the earliest known fossil specimens date only from the Early Holocene (i.e. less than 11 700 years ago), prior to which Europe was inhabited by a different Bison species, the Steppe Bison (Bison priscus), which ranged from Britain in the east across Europe, Asia and Beringia (the landmass between Alaska and the Russian Far East which was exposed during the Pleistocene glaciations when the sea level was lower) and into western Canada. The Steppe Bison is considered to be the ancestor of the American Bison (Bison bison), but its relationship to the modern European Bison is less clear, as the European Bison, while clearly related to the American Bison, is genetically more closely related to Cattle (Bos spp.). This could potentially be due to recent hybridization between the species, the European Bison having gone through a number of population bottlenecks as it came into conflict with Humans and domestic animals, with the population having fallen to just twelve individuals in the 1920s, but hybrids between Bison and Cattle are usually infertile, making this a somewhat doubtful hypothesis.

In a paper published in the journal Nature Communications on 18 October 2016, a team of scientists led by Julien Soubrier of the Australian Centre for Ancient DNA at the University of Adelaide describe the results of a new study of the ancestry of the European Bison, which takes into account both archaeological and genetic evidence.

Soubrier et al. sequenced DNA from 64 Bison specimens from Late Pleistocene sites (from before 50 000 years ago to about 14 000 years ago) across Europe. 38 of these specimens, from the Caucasus, Urals, North Sea, France and Italy, were found to belong to a previously unknown Bison lineage, identified as Clade X (in biology a clade is a group of organisms with a common ancestor; a clade includes all the organisms descended from that ancestor and no organisms not descended from that ancestor). Based upon the relationship between Clade X and the European Bison, the two species shared a last common ancestor about 120 000 years ago (during the Eemian Interglacial), however like the European Bison, including Ancient European Bison used in this study (and unlike the American Bison) members of Clade X appear to derive about 10% of their DNA from a Cattle (Bos sp.) ancestor.

This discovery is interesting as it rules out the possibility of recent hybridization between Modern Cattle and European Bison, instead suggesting that the species came about as the result of a hybridization between ancient Steppe Bison and the Aurochs (Bos primigenius), a large Pleistocene animal thought to have been ancestral to modern Domestic Cattle. Further examination of the Bison samples in the study revealed that they all derived their mitochodrial DNA (mtDNA) from a Bos ancestor, but none of them any Y-chromosome DNA, This implies that both the European Bison and Clade X came about as a result of a hybridization between male Steppe Bison and female Aurochs, not implausible given that in all known Bovid species males tend to capture harems of females which they defend aggressively against other males, and that while the Aurochs were big animals, Steppe Bison were even larger. However whether or not the European Bison and Clade X arose from a single hybridization event, a cluster of such events or completely unrelated events could not be determined.

Soubrier et al. further observe that two distinct morphologies of Bison are recorded in European Pleistocene cave art. A total of 820 depictions of Bison are known from European cave art (21 % of all known animal depictions from the Pleistocene of Europe), and all of these fall into two morphotypes (shapes). The first is a long-horned animal with robust forequaters and a distinct hump, that appears in art dating from before the Last Glacial Maximum, roughly between 22 000 and 18 000 years ago. The second form is a more slender animal with small, recurved, horns and a small hump, which appears in Magdalenian art, roughly between 17 000 and 12 000 years ago. These differences have previously been regarded the expression of different artistic styles, however Soubrier et al. reject this hypothesis. Two different Bison morphologies (a robust form and a slender form) have also been noted from bones dredged from beneath the North Sea).

Cave painting example of steppe Bison-like and Wisent-like morphs. (a) Reproduction from Lascaux cave (France), from the Solutrean or early Magdalenian period (about 20 000 years ago). (b) Reproduction from the Pergouset cave (France), from the Magdalenian period (less than 17 000 years ago). Soubrier et al. (2016).

The oldest specimens with a European Bison genotype dated from before 55 000 years ago, while the oldest Clade X specimen dated from 23 000 years ago, and the youngest Steppe Bison from 19 000 years ago. However all known specimens from between 50 000 and 34 000 years ago are Steppe Bison. Environmental reconstructions and stable isotope studies of remains (which can reconstruct the environments in which ancient organisms live by studying the ratios of different carbon and nitrogen isotopes in their bones) suggest that the European Bison and Steppe Bison inhabited different environments, with the Steppe Bison dwelling in cold, tundra grasslands and the European Bison favouring a warmer, more mixed environment.

Based upon this Soubrier et al. suggest that there were two distinct Bison species present in Europe for much of the Late Pleistocene. The Steppe Bison favoured cold grassland environments and expanded its range during colder periods, disappearing at the end of the Pleistocene, probably due to a mixture of a loss of much of this environment and a rising Human population armed with better hunting tools. The European Bison arose from one or more hybridization events between the Steppe Bison and the Aurochs, but was able to persist as a ecologically separate entity due to a preference for a different environment, favouring warmer landscapes with mixed vegetation. This species has also been severely pressured by expanding Human populations, but was better able to cope with the changing climate and has persisted till modern times.

See also...

http://sciencythoughts.blogspot.co.uk/2016/01/ammotragus-lervia-diet-of-barbary-sheep.htmlAmmotragus lervia: The diet of the Barbary Sheep in the Bou Hedma Mountains of Tunisia.                                                         The Barbary Sheep (or Aoudad), Ammotragus lervia, is a wild Caprid found in North Africa, from the Mediterranean as far south as the Niger and Lake...
http://sciencythoughts.blogspot.co.uk/2014/07/a-highly-specialized-musk-ox-from-late.htmlA highly specialized Musk Ox from the Late Miocene of Gansu Province, China.              In 1932 Birger Bohlin, chief palaeontologist with the explorer Sven Hedin’s Sino-Swedish Scientific Expedition to Northwest China, discovered an...
http://sciencythoughts.blogspot.co.uk/2013/08/how-fencing-tibetan-prairies-is.htmlHow fencing the Tibetan prairies is effecting the endangered Przewalski’s Gazelle. The Przewalski’s Gazelle (Procapra przewalskii) is a species of high altitude adapted Antelope, which formerly ranged across much of northwestern China and Inner Mongolia. It is now restricted to a small area around Qinghai Lake on the Tibetan Plateau, with...
Follow Sciency Thoughts on Facebook.