Snyder, M.R. (22-24 June 1995) Functional equivalence to prey orientation in the waterstrider with an artificial neural network. Canadian Society for Brain, Behaviour, and Cognitive Science, pp. 95-96.

Waterstriders orientate toward the source of surface vibrations by discrete rotational movements. We describe here an artificial neural network that simulates this behaviour and compare the results to published data (Murphey 1971). A backpropagation network with six input units, one corresponding to each leg (vibration receptor) of the waterstrider, and two output units corresponding to the elicited angle of rotation, was used. The network was trained with a full compliment of legs to rotate towards the point source of a surface vibration. It was subsequently tested with all receptors present and a variety of legs amputated (combinations of 1, 2, or 3 removed from the right side). To simulate an amputation the appropriate input unit's connections with the output units were severed.

When tested with all receptors present a linear relationship was found to exist between the desired and obtained rotational angles. Amputation of one or two receptors resulted in marked deviation from linearity within the angular range of detection corresponding to that of the amputated receptor(s), while amputtion of three receptors resulted in the network rotating contralaterally to all vibrations originating ipsolaterally to the amputated side. All trials produced results that corresponded qualitatively to Murphey's (1971) data indicating rotation is largely dependent on the first remaining receptor to be stimulated by a vibration. We conclude that an extremely simple artificial neural network is capable of qualitatively simulating the orientation of behaviour of waterstriders to surface vibrations.

R.K. Murphey (1971) Sensory aspects of the control of orientation to prey by the waterstrider, Gerris remigis. Z. vergl. Physiol., 72: 168-185.


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Michael R. Snyder <msnyder@psych.ualberta.ca>