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I think when inserting a new node into a heap, the amount of nodes it might passes by is logN, why is it (1 + logN), where is 1 from?

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    Because log(1) = 0 but inserting into a heap with 1 element takes a comparison – harold Feb 12 '17 at 0:54
  • Thanks for your answer. I think this should be the correct answer. – user1888955 Feb 12 '17 at 2:19
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This is necessary to account for the border case when the number of notes is 2n. A heap of n levels fits 2n-1 objects, so adding one more object starts the new level:

Heap

Black squares represent seven elements of a three-level heap. Red element is number eight. If your search takes you to the location of this last element, you end up with four comparisons, even though log28 is three.

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  • thanks for your answer But I don't understand why there are 4 comparisons. For me, it seems only 3 times even if the new added red square swims up to root (three comparisons: red line, green line and blue line, 3 times in total) – user1888955 Feb 12 '17 at 1:51
  • @user1888955 You need to compare to the root, root's child, root's grandchild, and the red node itself, to ensure that you have found the item that you are looking for. – Sergey Kalinichenko Feb 12 '17 at 1:54
  • Thank you for your quick reply :) i missed comparison on the node itself. – user1888955 Feb 12 '17 at 2:02

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