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By monitoring the serial number, we know the message loss rate for every sensor.
The message loss rate in this experiment should be caused by network traffic overhead, interferences, shading, and message collisions.
For the dynamic changes network structure, if we use the simple-copy to transfer the message, the worst case is that the nodes with messages may never meet with the destination nodes resulting in great message loss rate.
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If a node cannot handle such incoming network traffic and cause output message loss, the loss rate should be increased with the message rate.
The message loss ratio is defined for a receiving station as the number of dropped messages during a transmission.
Thus, one of the main contributions in the solution detailed later is that it allows, with an optimized number of transmissions, to decode all received combined messages independently of the loss rate.
Besides, we also observe that the packet loss rate increases with message size.
Firstly, the results on message delay may not reflect on the results of loss rate.
Figures 13 and 14 present the impact of the mean messages size on the delays and the service packets loss rate.
Packet loss rate: It refers to the ratio of the aborted messages to the total number of messages during the transmission of each hop.
We consider four important metrics to compare the performance of our social-based forwarding strategy with the above routing schemes: Packet loss rate: It refers to the ratio of the aborted messages to the total number of messages during the transmission of each hop.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com