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    How Large Area Imagery Can Be Used to Quantify Growth of a Complex Branching Coral Species

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    Species of branching Acropora, once dominant, complex coral species, have experienced major decline over the last several decades due to physical and anthropogenic disturbances. Following this decline, species of Acropora have been a direct focus of coral monitoring and restoration efforts across the Caribbean, in hopes of recovering populations of these threatened species. Measuring growth in the field presents countless challenges, including inaccuracy and imprecision of measurements due to intricate branching morphologies, the amount of time a diver can spend underwater measuring aspects of coral health, and unpredictable diving conditions. Here we used large-scale 3D imagery derived using Structure from Motion photogrammetric techniques to quantify branching Acropora species across multiple reef terrace sites on Palmyra Atoll. We estimated branch density (number of branches per thicket) and various metrics of linear and areal size of colonies within imagery which facilitates a direct comparison of commonly used metrics to track growth. We were able to monitor growth based on initial size through larger thicket form for six Acropora thickets through multiple time points from 2012-2019. The use of large area imaging technology provides a permanent record and a powerful tool to quantify growth using a variety of metrics, not constrained by in situ logistics. Gaining access to and perfecting methods that account for accurate size and growth measurements for reef accretion can hold the key to long-term successful ecological monitoring and restoration efforts

    Balancing the dilution and oddity effects: decisions depend on body size.

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    Grouping behaviour, common across the animal kingdom, is known to reduce an individual's risk of predation; particularly through dilution of individual risk and predator confusion (predator inability to single out an individual for attack). Theory predicts greater risk of predation to individuals more conspicuous to predators by difference in appearance from the group (the 'oddity' effect). Thus, animals should choose group mates close in appearance to themselves (eg. similar size), whilst also choosing a large group.We used the Trinidadian guppy (Poecilia reticulata), a well known model species of group-living freshwater fish, in a series of binary choice trials investigating the outcome of conflict between preferences for large and phenotypically matched groups along a predation risk gradient. We found body-size dependent differences in the resultant social decisions. Large fish preferred shoaling with size-matched individuals, while small fish demonstrated no preference. There was a trend towards reduced preferences for the matched shoal under increased predation risk. Small fish were more active than large fish, moving between shoals more frequently. Activity levels increased as predation risk decreased. We found no effect of unmatched shoal size on preferences or activity.Our results suggest that predation risk and individual body size act together to influence shoaling decisions. Oddity was more important for large than small fish, reducing in importance at higher predation risks. Dilution was potentially of limited importance at these shoal sizes. Activity levels may relate to how much sampling of each shoal was needed by the test fish during decision making. Predation pressure may select for better decision makers to survive to larger size, or that older, larger fish have learned to make shoaling decisions more efficiently, and this, combined with their size relative to shoal-mates, and attractiveness as prey items influences shoaling decisions
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